BEE Star Rating & Registration for LED Lamps in India: Luminous Efficacy, IS 16102 and the Complete Star Label Process

India replaced hundreds of millions of incandescent and CFL bulbs with LEDs in less than a decade, and in doing so turned lighting into one of the country’s great energy-efficiency success stories. The Bureau of Energy Efficiency (BEE) sits at the centre of that story. Its star label on the back of an LED bulb tells the buyer, in a single glance, how much useful light the lamp produces for every watt it draws. For anyone who manufactures, assembles, or imports LED lamps for the Indian market, a valid BEE Star Label and registration — held alongside the separate BIS certification — is the gateway to selling legally. LED lamps are one of the categories where compliance is most frequently misunderstood, because two different approvals apply to the very same product and people confuse them constantly. BIS certification under IS 16102 governs the safety, performance, and quality of the lamp. The BEE star label governs only its energy efficiency, measured through luminous efficacy in lumens per watt. Both are required; neither substitutes for the other. A brand that secures one and assumes it is covered for the other will be stopped — at customs for imports, or on the shelf for domestic products. This guide explains the BEE side of LED lamp compliance in full: why the star label is required, how luminous efficacy determines the rating, how BEE and BIS fit together, the step-by-step registration process, the documents needed, realistic timelines and costs, and the mistakes that most often trip up first-time applicants. Why BEE Certification Applies to LED Lamps BEE Star Labelling runs under the Energy Conservation Act, 2001, administered by the Bureau of Energy Efficiency under the Ministry of Power. Self-ballasted LED lamps — the standard screw-in and bayonet retrofit bulbs that dominate household and commercial lighting — carry a BEE star label rated by luminous efficacy. The label communicates energy efficiency to the consumer and allows genuine comparison between products: the more lumens a lamp delivers per watt, the higher its star rating. The category covers the mainstream self-ballasted LED lamp products that most brands sell into retail and e-commerce, and the star label works hand in hand with the mandatory BIS registration for the same lamps. In practice, an LED bulb reaching an Indian shelf legally is carrying two things: a BIS registration demonstrating it is safe and meets IS 16102, and a BEE star rating demonstrating how efficient it is. Retailers and marketplaces increasingly check for both, and buyers actively use the star rating to choose between competing bulbs at similar price points. Luminous Efficacy: The Metric Behind the Stars For lighting, the efficiency metric is luminous efficacy, expressed in lumens per watt (lm/W). It answers the question every lighting buyer implicitly asks: for the electricity this bulb consumes, how much light do I actually get? A lamp that produces more lumens per watt is more efficient, wastes less energy as heat, and costs less to run over its life. BEE translates luminous efficacy into star bands. As an illustration of how the banding works, a widely referenced version of the LED star plan set a minimum luminous efficacy threshold around 79 lm/W and arranged the stars roughly as follows: one star for efficacy at or above about 68 and below 79 lm/W; two stars for 79 to below 90; three stars for 90 to below 105; four stars for 105 to below 120; and five stars for 120 lm/W and above. These specific values illustrate the principle rather than a permanent rulebook — BEE revises the thresholds over time as LED technology improves, so every applicant should confirm the star bands in force under the current notification before designing to a target rating. The underlying logic never changes: higher lumens per watt equals more stars. Because the rating hinges entirely on measured lumens and measured watts, the accuracy of the photometric test report is decisive. A lamp marketed at a headline lumen figure that its measured output does not support will not achieve the expected star rating, and inflated efficacy claims are exactly the kind of discrepancy that testing is designed to catch. It is also worth understanding what luminous efficacy does not capture, because it shapes how you position a product. Efficacy says nothing about colour temperature (warm vs cool white), colour rendering (how natural colours look under the light), or lumen maintenance (how well the lamp holds its brightness over thousands of hours). Those attributes are governed by the quality and performance requirements under the BIS side of compliance and by your own product design, not by the BEE star. A brand aiming for a high star rating should therefore be careful not to chase lumens per watt in a way that compromises colour quality or longevity, since the consumer ultimately judges the bulb on the light it produces, not on the number on the label. The best-selling LED lamps pair a strong star rating with good colour rendering and stable output — the star gets them onto the comparison shortlist, and the light quality wins the repeat purchase. Different lamp formats within a range — candle bulbs, high-wattage lamps, and downlight retrofits — can each post different efficacy figures even when they share a driver platform, because optical and thermal design vary. That means each format generally needs its own photometric evidence, and a brand should not assume that a strong result on one wattage automatically carries the same star across the whole family. How BEE and BIS Fit Together for LED Lamps This is the single most important thing for an LED brand to internalise, so it is worth stating plainly. LED lamps require two separate approvals: BIS certification under IS 16102 — the BIS standard covering LED lamp safety, performance, and quality. This is a mandatory registration; no LED lamp can be manufactured, imported, or sold in India without it. The BEE star label — rating energy efficiency by luminous efficacy. This is a distinct approval obtained

BEE Star Rating & Registration for Refrigerators in India: Frost-Free vs Direct Cool, CEC and the Complete Star Label Process

The refrigerator is the one appliance in an Indian home that never switches off. It runs twenty-four hours a day, every day of the year, which makes even a small difference in efficiency compound into a meaningful difference in the annual electricity bill. That relentless duty cycle is why the Bureau of Energy Efficiency (BEE) made refrigerators one of the earliest and most tightly regulated categories in its Standards & Labelling programme. Any brand that manufactures, assembles, or imports refrigerators for sale in India must hold a valid BEE Star Label and registration before the product can lawfully reach the market. Refrigerators sit firmly in BEE’s mandatory scheme. Both of the two dominant technologies — frost-free refrigerators and direct cool refrigerators — are covered, and each is governed by its own testing standard and its own schedule on the BEE portal. The star on the label is calculated from a metric called Comparative Energy Consumption (CEC), and, exactly as with air conditioners, BEE periodically revises the rating tables so that the star continues to mean something as the market gets more efficient. This guide walks manufacturers and importers through the whole picture: why refrigerator certification is mandatory, the difference between frost-free and direct cool from a compliance standpoint, how CEC and Annual Energy Consumption drive the star rating, the standards and testing involved, the step-by-step BEE registration process, the documents required, realistic timelines and costs, and the errors that most frequently cause delays or rejections. Why BEE Certification Is Mandatory for Refrigerators BEE Star Labelling runs under the Energy Conservation Act, 2001, administered by the Bureau of Energy Efficiency under the Ministry of Power. Refrigerators are in the mandatory labelling category, which means no covered model may be manufactured, imported, displayed, or sold in India without valid BEE registration and an affixed star label. The mandatory scope covers the mainstream household refrigeration products: Direct Cool Refrigerators (DCR) — the single-door format still widely sold across India, governed under IS 1476 (Part 1) and its dedicated schedule. Frost-Free Refrigerators (FFR) — the double-door and multi-door format, governed under the frost-free schedule and its performance standard. Because the category is mandatory, non-compliance carries real consequences: seizure of stock, penalties under the Energy Conservation Act, removal from retail shelves, and delisting from e-commerce platforms. Major online marketplaces now routinely require evidence of a live BEE registration before they will list a refrigerator, and institutional and government buyers frequently specify minimum star ratings in their tenders. For a refrigerator brand, the star label is simultaneously a legal permit to sell and a competitive lever at the point of sale. Frost-Free vs Direct Cool: Why the Distinction Matters for Compliance From a consumer’s perspective the difference between frost-free and direct cool is about convenience and price. From a compliance perspective the difference is more fundamental, because the two technologies are tested against different standards and different schedules. Direct cool refrigerators rely on natural convection to circulate cold air and typically require manual defrosting. Their energy performance is evaluated under IS 1476 (Part 1), and BEE registration for direct cool models falls under the corresponding direct cool schedule. Frost-free refrigerators use forced-air circulation and automatic defrosting. Their energy testing follows the frost-free performance standard (commonly referenced as IS 15883 for the frost-free performance and testing methodology), under the separate frost-free schedule. The practical implication is that a brand selling both formats is managing two parallel compliance tracks, each with its own test protocol, its own schedule, and its own star table. Treating them as interchangeable is a common and costly mistake — a frost-free test report cannot be used to register a direct cool model, and vice versa. Understanding CEC and Annual Energy Consumption The refrigerator star rating is built on two closely linked measurements: Annual Energy Consumption (AEC) and Comparative Energy Consumption (CEC). AEC is the total energy, in kilowatt-hours per year, that the model consumes under the standardised test conditions of its applicable standard. Because refrigerators of different internal volumes cannot fairly be compared on raw AEC alone — a large family fridge will always consume more than a small bar fridge — BEE uses CEC, which normalises consumption against the refrigerator’s storage volume to produce a comparable figure. The star assignment then works on a banding principle. BEE defines star rating bands, and the model is awarded the star rating corresponding to the band whose lower limit is less than the model’s CEC and whose upper limit is greater than or equal to it. In plain terms: the lower the normalised energy consumption, the higher the star rating. The energy label itself displays the CEC value alongside the star count — from a minimum of one star to a maximum of five — so that buyers can compare models directly. This volume-normalised approach is what allows a genuinely efficient large refrigerator to earn a high star rating even though its absolute annual consumption is higher than a small, inefficient unit. It also means that accurate volume declaration and accurate test data are both essential; an error in either distorts the CEC and therefore the star result. The Revised Star Tables — Effective January 2026 As with every mature BEE category, the refrigerator star tables are not permanent. BEE tightens them as the market improves so that the star continues to distinguish superior products. The Bureau has revised the star rating tables for both Frost-Free Refrigerators and Direct Cool Refrigerators with effect from 1 January 2026, and the revised tables run through to 31 December 2028. The consequence is the same pattern that catches AC manufacturers: a refrigerator that qualified for a given star rating under the outgoing table may map to a lower star under the new one, even though nothing about the physical product has changed. A model comfortably rated at a certain star level in 2025 can slip a star in 2026 purely because the band boundaries moved. For brands, this makes the revision calendar a planning input, not an

BEE Star Rating & Registration for Room Air Conditioners in India: ISEER, IS 1391 and the Complete Star Label Process

Air conditioners are the single most electricity-hungry appliance in the average Indian home, and they are also one of the fastest-growing consumer categories in the country. That combination is exactly why the Bureau of Energy Efficiency (BEE) placed room air conditioners at the very centre of its mandatory Standards & Labelling programme. If you manufacture, assemble, brand, or import air conditioners for the Indian market, a valid BEE Star Label and registration is not optional — it is a legal precondition for selling your product. The BEE star on the front of every air conditioner is more than a marketing badge. It encodes a laboratory-verified measure of how efficiently the unit converts electricity into cooling, expressed through a metric called ISEER (Indian Seasonal Energy Efficiency Ratio). A higher star rating tells the buyer that the machine will cool the same room while drawing less power from the grid, and it tells regulators that the model meets or exceeds the Minimum Energy Performance Standards set for its category. For brands, the star rating has become a primary purchase driver — Indian consumers now routinely compare 3-star and 5-star models on running cost before they compare price. This guide explains everything a manufacturer or importer needs to understand about BEE certification for room air conditioners: the legal basis, the ISEER metric and how the star bands work, the recent tightening of the rating tables, the standards and testing involved, the step-by-step registration process on the BEE portal, the documentation required, realistic timelines and costs, and the mistakes that most often delay approval or trigger enforcement. Why BEE Certification Is Mandatory for Air Conditioners BEE Star Labelling operates under the Energy Conservation Act, 2001, administered by the Bureau of Energy Efficiency under the Ministry of Power. Product categories enter the programme in one of two ways — voluntary or mandatory. Room air conditioners have been in the mandatory category for years, which means that no covered air conditioner may legally be manufactured, imported, displayed, or sold in India without a valid BEE registration and an affixed star label. The mandatory status covers the mainstream residential and light-commercial cooling products that most brands sell: Split air conditioners (the dominant format in the Indian market) Window air conditioners Inverter (variable-speed) air conditioners, which are tested under a dedicated part of the standard Cassette, tower and certain light-commercial units, depending on capacity and configuration under the applicable schedule Because the category is mandatory, enforcement is real. Products found on sale without a valid star label are liable to seizure, penalties under the Energy Conservation Act, removal from retail shelves, and delisting by major e-commerce platforms. Increasingly, marketplaces such as Amazon and Flipkart demand proof of a live BEE label before they will even list an air-conditioner SKU, and government procurement and large institutional tenders frequently specify minimum star ratings. In practice, then, BEE certification is both a legal gate and a commercial gate. Understanding ISEER: The Metric Behind the Stars The star rating for an air conditioner is derived from its ISEER — Indian Seasonal Energy Efficiency Ratio. ISEER measures the total annual cooling output of the unit divided by the total annual energy it consumes, calculated over a defined Indian usage profile rather than a single laboratory test point. This “seasonal” approach matters because a real air conditioner spends most of its life running at part load, not at maximum output. ISEER is calculated using an India-specific model of how air conditioners are actually used here. The evaluation is based on a temperature bin range spanning roughly 24°C to 43°C and an assumption of about 1,600 hours of cooling operation per year, which reflects Indian climate and usage far better than the parameters baked into US or European efficiency metrics. This is precisely why a machine optimised only for FCC- or CE-style test conditions can post a disappointing ISEER when it is properly tested against the Indian profile. The relationship is simple to state: the higher the ISEER value, the higher the star rating, and the lower the running cost for the end user. BEE publishes ISEER bands for each star level, and a model is awarded the star rating corresponding to the band its measured ISEER falls into. Inverter and fixed-speed units are handled through the appropriate parts of the testing standard because their part-load behaviour differs fundamentally. The Revised Star Rating Tables — Why “the Same AC” Can Drop a Star One of the most important things for any brand to understand is that BEE periodically tightens the ISEER bands. As the overall efficiency of the market improves, BEE raises the bar so that the star label continues to distinguish genuinely superior products. The star rating tables for room air conditioners have been revised again with effect from January 2026. The practical consequence catches many manufacturers by surprise: under the revised norms, a large number of models that qualified as 4-star in 2025 are reclassified as 3-star in 2026 — even though the physical machine, its power draw, and its cooling capacity have not changed at all. Nothing about the hardware is different; the goalposts have moved. A brand that printed cartons, catalogues, and e-commerce listings claiming “4 Star” can suddenly find those claims non-compliant the moment the revised table takes effect. This has direct planning implications. Any manufacturer registering a model near a band boundary should design and test against the upcoming table, not the one expiring, and should synchronise packaging, marketing collateral, and label artwork to the revision date. At PCN India Global we treat the revision calendar as a core part of every AC registration plan, precisely so that clients are not left holding non-compliant inventory when the tables change. The Standard: IS 1391 (Part 1 and Part 2) Testing for BEE certification of room air conditioners is anchored to IS 1391, the Indian Standard developed by the Bureau of Indian Standards that defines the performance, testing methods, and safety requirements for room air conditioners. IS 1391 (Part 1)

WPC ETA for Ultra-Wideband (UWB) Devices in India: GSR 1046 E, Permitted Applications & the Approval Process

Ultra-wideband is the quiet revolution inside the last few generations of flagship devices. The precise “find my keys” arrow on a phone locating a tracker tag, digital car keys that unlock only when the owner is actually beside the door, indoor positioning systems tracking assets to within centimetres in a warehouse, radar sensors detecting a child left in a rear seat — all of these are UWB applications, and their numbers are growing rapidly across consumer, automotive, and industrial markets. UWB works differently from conventional radio. Instead of transmitting relatively high power in a narrow channel, it spreads extremely low power across gigahertz of bandwidth — power levels so low they sit near the noise floor of other services. This unusual profile requires its own regulatory treatment, and India provides it through GSR 1046 (E) dated 18.10.2018, the gazette notification de-licensing very low power ultra-wideband devices. Every UWB-equipped device model imported into or sold in India requires WPC Equipment Type Approval (ETA), obtainable through the self-declaration route because the UWB framework is licence-exempt. This guide explains what GSR 1046 (E) permits, which products it covers, how UWB interacts with the other radios in a modern device, and the step-by-step ETA process. What GSR 1046 (E) Permits GSR 1046 (E) de-licenses the use of very low power ultra-wideband devices across two frequency regions: between 1.6 GHz and 10.6 GHz, and above 10.6 GHz. Within these regions, the notification enumerates five permitted device categories: Category Description Typical Products 1. Generic UWB device usage General-purpose UWB communication and ranging Phones, tags, wearables, digital key modules 2. Location tracking systems Real-time locating systems (RTLS) Warehouse asset tracking, sports analytics, personnel safety 3. UWB in road and rail vehicles Vehicle-installed UWB In-cabin radar, keyless entry, occupant detection 4. Material sensing devices UWB-based material analysis Wall scanners, stud finders, pipe detectors 5. Building material analysis devices Construction diagnostics Concrete inspection, rebar imaging The referenced measurement standards are the EN 302 065 series (parts 1, 2, and 3), the harmonised European framework for UWB communication devices, location tracking, and vehicular applications. UWB compliance is expressed in power spectral density masks — maximum e.i.r.p density (dBm/MHz) varying by frequency — rather than a single power number, which is why UWB test reports look different from conventional RF reports. In practice, the global UWB ecosystem (IEEE 802.15.4z, the FiRa consortium profiles, and the major chipset implementations) operates chiefly in channels 5 (6.5 GHz) and 9 (8 GHz), comfortably inside the 1.6–10.6 GHz region that GSR 1046 (E) de-licenses. Why UWB Regulation Looks Different: A Short Technical Primer Conventional radio regulation assigns narrow channels and polices the power transmitted within them. UWB inverts the model: the signal occupies at least 500 MHz of bandwidth, and the regulatory question becomes how much energy falls into each megahertz of spectrum shared with other services. That is why UWB limits are written as power spectral density masks — a curve of maximum e.i.r.p density (in dBm/MHz) across frequency — rather than as a single output-power figure. The engineering consequence is that compliance depends on the whole transmission chain: pulse shape, spreading, antenna response across gigahertz of bandwidth, and enclosure effects all shape the measured PSD. Two devices using the same UWB chipset can produce materially different emission profiles depending on antenna integration. This is why module-level test data, while useful, seldom fully answers the device-level question, and why UWB testing belongs in the project plan as its own line item rather than an appendix to the Bluetooth test. For planning purposes, teams should also understand the interplay between ranging and communication. IEEE 802.15.4z-era UWB (the basis of FiRa-profile secure ranging in phones, tags, and car keys) transmits short bursts at low duty cycle — a profile that sits comfortably within very-low-power regulatory frameworks. Data-heavy UWB applications push closer to the mask and demand more careful characterisation. Either way, the Indian framework’s application categories (generic usage, location tracking, vehicular, material sensing, building analysis) are broad enough to accommodate the mainstream ecosystem, provided the filing identifies the right category and the evidence matches it. Products That Need UWB ETA Coverage Smartphones and tablets with UWB chips — the UWB radio must be covered in the device ETA alongside Wi-Fi, Bluetooth, and NFC. Item finders and smart tags (UWB trackers) — require ETA; most also contain BLE, which needs parallel coverage. Digital car key and vehicle access modules — UWB anchors and key fobs in vehicles fall under the road/rail vehicle category. In-cabin radar and child-presence detection sensors — vehicle-installed UWB radar. RTLS infrastructure — anchors, tags, and gateways for industrial and healthcare real-time location systems. Wall scanners and material analysers — construction tools using UWB sensing. UWB development kits and modules — commercial imports require ETA like finished goods. Access control and secure-entry systems using UWB ranging for proximity verification. Use-Case Deep Dives Smart tags and item finders. The tag itself files as a generic UWB device with companion BLE. The phone that locates it relies on its own multi-radio ETA. Brands importing tags at consumer scale should note that coin-cell-powered tags also engage battery EPR obligations, and that marketplace listings for trackers are increasingly checked for approval evidence. Digital car keys. Vehicle access systems place UWB anchors around the car body and a UWB radio in the key fob or phone. The anchors and fob are the manufacturer’s filings (vehicle category); phone-as-key uses the handset’s approvals. Automotive programmes should align WPC evidence with the vehicle homologation timetable, since anchor part numbers freeze early in the platform cycle. RTLS in industry and healthcare. Warehouse and hospital RTLS involves anchors (mains-powered, often PoE), tags (battery), and network infrastructure. Anchors and tags are separate models requiring separate coverage, and deployments frequently add Wi-Fi backhaul radios to anchors — which must be declared. Buyers issuing RTLS tenders should demand ETA certificates per model as a tender condition; it is the cleanest way to keep an installation project off the customs critical path. In-cabin sensing and child-presence detection.

WPC ETA for Wireless Charging & Inductive Devices in India: The kHz Bands Explained (GSR 870 E, GSR 697 E & GSR 996 E)

Not every radio transmitter looks like a radio. A Qi wireless charging pad, an induction-based toothbrush charger, an EV charging system, a wireless power bank, an inductive proximity sensor, a metal detector, an anti-theft EAS gate at a shop exit — all of these devices generate radio-frequency magnetic fields in the kilohertz range, and in Indian law they are wireless equipment regulated by the WPC Wing of the Department of Telecommunications, exactly like a Wi-Fi router. The regulatory framework for these inductive applications is built on a family of gazette notifications de-licensing bands from 9 kHz up to 30 MHz, with limits expressed not in transmit watts but in magnetic field strength — dBµA/m measured at 10 metres. The modern cornerstone is GSR 870 (E) dated 21.12.2021, which consolidated field-strength limits across the low-frequency spectrum, alongside the earlier GSR 697 (E) and GSR 996 (E) inductive notifications and the RFID-oriented GSR 83 (E) and GSR 90 (E). Every wireless charger and inductive device model imported into or sold in India requires WPC Equipment Type Approval (ETA) — available through self-declaration because these bands are de-licensed. This guide explains the notifications, the field-strength logic, the ETA process, and the pitfalls specific to inductive products. Why Wireless Chargers Are “Wireless” in Law Inductive power transfer works by driving an alternating current through a coil, creating an oscillating magnetic field that induces current in a receiving coil. Qi chargers typically operate around 100–300 kHz; EV charging systems sit in defined kHz ranges; NFC-adjacent charging arrives at 13.56 MHz. Although the intent is power transfer rather than communication, the oscillating field is a radio-frequency emission capable of interfering with services sharing or neighbouring the spectrum — navigation beacons, time-signal broadcasts, AM radio. Regulators therefore treat inductive equipment as intentional radiators, subject to emission limits and type approval. The Inductive De-Licensing Notifications GSR 870 (E) dated 21.12.2021 — The Consolidated Field-Strength Framework GSR 870 (E) is the key modern notification for very low power radio frequency devices or equipment for inductive applications. It specifies magnetic field-strength limits, measured at 10 metres, across a ladder of sub-bands: Frequency Band Field-Strength Limit (at 10 m) Typical Uses 9–90 kHz 72 dBµA/m Inductive systems, LF sensing 90–119 kHz 42 dBµA/m Inductive applications 119–135 kHz 66 dBµA/m LF RFID, animal ID region 135–140 kHz 42 dBµA/m Inductive applications 140–148.5 kHz 37.7 dBµA/m Inductive applications 148.5–5000 kHz (except 3155–3400 kHz) −15 dBµA/m in 10 kHz BW Wideband inductive; loop-coil external antennas only 3155–3400 kHz 13.5 dBµA/m Inductive applications 5000–30000 kHz (with sub-band exceptions) −20 dBµA/m in 10 kHz BW HF inductive 7400–8800 kHz 9 dBµA/m Inductive applications 10200–11000 kHz 9 dBµA/m Inductive applications 6765–6795 kHz (GSR 1047 E) 42 dBµA/m Inductive SRD band Two technical notes recur in the notification: where external antennas are used, only loop-coil antennas are permitted, and for systems operating with bandwidths larger than 10 kHz, the total field strength may reach −5 dBµA/m at 10 m provided the density limit per 10 kHz is maintained. The reference measurement standard family is EN 300 330. The practical consequence for Qi chargers is that the 100–300 kHz operating region spans several sub-bands with different limits — a charger fundamental at 127.7 kHz sits in the 119–135 kHz / 66 dBµA/m segment, while its harmonics and spurious emissions fall into stricter neighbouring segments. Compliance is a matter of measured field strength across the whole emission profile, not just the fundamental. GSR 697 (E) dated 16.09.2015 — 302–351 kHz De-licensed 302–351 kHz for very low power devices for inductive applications — a band relevant to certain EV charging and industrial power-transfer designs. GSR 996 (E) dated 05.10.2018 — 302–435 kHz, 855–1050 kHz, 1.89–2.30 MHz Extended inductive de-licensing to three further ranges, giving designers additional room for power-transfer fundamentals and inductive signalling. The 302–435 kHz range in particular aligns with several wireless power standards’ upper operating region. GSR 83 (E) and GSR 90 (E) — 9–50 kHz and 50–200 kHz RFID The earlier notifications covering very low power devices including RFID in 9–50 kHz (GSR 83 (E) dated 11.02.2014) and 50–200 kHz (GSR 90 (E) dated 10.02.2009) remain the reference for LF RFID and legacy inductive systems, and overlap the Qi operating region in the 100–200 kHz segment. 13.553–13.567 MHz — GSR 884 (E) NFC-based charging and 13.56 MHz inductive systems rely on GSR 884 (E) dated 04.11.2010, which de-licensed the band for very low power indoor devices. Products That Need ETA Under the Inductive Framework Qi wireless charging pads, stands, multi-device chargers, and charging-capable power banks Wireless charging modules embedded in furniture, vehicles, and appliances Magnetic-attach charging accessories for phones, earbuds, and wearables Electric toothbrush, shaver, and small-appliance inductive chargers EV wireless charging systems and inductive charging infrastructure Inductive proximity sensors and industrial position sensors Electronic Article Surveillance (EAS) gates and deactivators Metal detectors (walk-through, handheld, industrial) LF RFID readers, animal identification readers, and immobiliser systems Induction-based data couplers and near-field communication chargers A phone that receives wireless charge is generally assessed through its overall device approvals; the transmitting pad is the article squarely inside the inductive ETA framework. Understanding dBµA/m: A Practical Primer for Product Teams Because inductive limits are unfamiliar to teams used to conventional RF, a short translation is worth the space. dBµA/m expresses magnetic field strength (H-field) in decibels relative to one microampere per metre, measured at a defined distance — 10 metres in the Indian notifications. Unlike e.i.r.p limits, which describe radiated power, H-field limits describe the near-field magnetic environment the device creates, which is the correct physics for coils operating far below their radiating frequency. Three practical consequences follow. First, coil geometry, drive current, ferrite shielding, and enclosure design all move the measured number — two chargers with identical electrical power ratings can differ by tens of dB in field strength. Second, measurement at 10 metres of a source designed to work at 5 millimetres involves significant measurement technique; laboratories experienced in EN 300 330 methodology extrapolate correctly where near-field measurements are

WPC ETA for Wireless Medical Devices in India: MICS 402–405 MHz, Implant Bands & Medical Telemetry (GSR 673 E & GSR 1047 E)

Few wireless applications carry stakes as high as medical radio. A cardiac pacemaker that reports arrhythmia data to a bedside monitor, an implanted insulin pump adjusted through a wireless programmer, a continuous glucose monitor streaming to a phone, a swallowed capsule endoscope transmitting images from inside the body — these devices depend on radio links that must work reliably, at vanishingly low power, in spectrum protected from interference. India protects this spectrum through a set of dedicated de-licensing notifications issued by the WPC Wing of the Department of Telecommunications. The centrepiece is GSR 673 (E) dated 23.09.2008, which de-licensed the 402–405 MHz Medical Implant Communication Systems (MICS) band, flanked by the 401–402 MHz and 405–406 MHz wing bands and the 2483.5–2500 MHz active-implant band covered by GSR 1047 (E) dated 18.10.2018. Every wireless medical device model using these bands requires WPC Equipment Type Approval (ETA) before it can be imported into or placed on the Indian market — in addition to its medical-device regulatory obligations under CDSCO. This guide explains the medical radio bands available in India, their strict technical conditions, the ETA self-declaration process, and the compliance planning that medical device companies need alongside their clinical regulatory pathway. India’s De-Licensed Medical Radio Bands 402–405 MHz: The MICS Core Band — GSR 673 (E) dated 23.09.2008 GSR 673 (E) de-licensed 402–405 MHz for very low power remote cardiac monitoring radio frequency wireless medical devices, Medical Implant Communication Systems (MICS), Medical Implant Telemetry Systems (MITS), and other such very low power medical radio frequency wireless devices. The notified conditions are: Maximum power of 25 µW e.r.p Channel emission bandwidth within 300 kHz Built-in antenna This is the globally harmonised MedRadio/MICS core band used by pacemakers, implantable cardioverter defibrillators (ICDs), neurostimulators, and their external programmers and home monitors. The 25 µW limit — twenty-five millionths of a watt — reflects the band’s purpose: ultra-short-range links between an implant and a nearby controller, coexisting with the meteorological aids services that share this spectrum internationally. 401–402 MHz and 405–406 MHz: The Wing Bands — GSR 1047 (E) GSR 1047 (E) extends licence-exempt medical use to the wing bands on either side of the MICS core. Both 401–402 MHz and 405–406 MHz are available at 25 µW e.r.p for systems specifically designed for non-voice digital communications between active implantable medical devices and/or body-worn devices and other devices external to the human body, for transferring non-time-critical, individual patient-related physiological information. Conditions include: 25 kHz channel spacing, with individual transmitters permitted to combine adjacent channels up to 100 kHz bandwidth Alternatively, a duty-cycle limit of 0.1% Reference standard: EN 302 537 (Medical Data Service devices) These bands suit lower-priority telemetry — trend data, device status logs — keeping the core band free for session-based clinical communication. 30–37.5 MHz: Ultra-Low Power Membrane Implants — GSR 1047 (E) A specialised entry in GSR 1047 (E) covers 30–37.5 MHz at 1 mW e.r.p with a 10% duty-cycle limit, available only for ultra-low power medical membrane implants for blood pressure measurements — implantable pressure sensors within the definition of active implantable medical devices. The reference standard is EN 302 510. 2483.5–2500 MHz: Wideband Active Implants — GSR 1047 (E) For implant systems needing higher data rates, GSR 1047 (E) de-licensed 2483.5–2500 MHz at 10 mW e.i.r.p for low power active medical implant devices, with 1 MHz channel spacing — the whole band may also be used dynamically as a single channel for high-speed data transmission — and a 10% duty-cycle limit, referencing EN 301 559. This band supports modern implant platforms that upload larger datasets (for example, high-resolution glucose or cardiac waveform histories) in short bursts. Summary Table Band Power Limit Key Conditions Application Notification 402–405 MHz 25 µW e.r.p ≤300 kHz emission BW, built-in antenna MICS/MITS, cardiac monitoring GSR 673 (E) 401–402 MHz 25 µW e.r.p 25 kHz spacing (combinable to 100 kHz) or 0.1% duty cycle Implant/body-worn telemetry GSR 1047 (E) 405–406 MHz 25 µW e.r.p 25 kHz spacing (combinable to 100 kHz) or 0.1% duty cycle Implant/body-worn telemetry GSR 1047 (E) 30–37.5 MHz 1 mW e.r.p 10% duty cycle; membrane pressure implants only Blood-pressure implants GSR 1047 (E) 2483.5–2500 MHz 10 mW e.i.r.p 1 MHz spacing or full-band dynamic; 10% duty cycle Wideband active implants GSR 1047 (E) Many connected medical devices also use the general de-licensed bands — Bluetooth LE at 2400–2483.5 MHz under GSR 45 (E) for wearables, glucometers, and patient monitors, and Wi-Fi under GSR 1048 (E) for hospital equipment. Those radios require ETA coverage in the same application. Which Devices Need WPC ETA? External programmers and clinician tablets communicating with implants in the MICS/MedRadio bands — require ETA; these are the transmitters most visibly placed on the market. Home monitoring units / bedside transceivers — require ETA. Body-worn sensors and patches using 401–406 MHz, 2.4 GHz BLE, or proprietary links — require ETA. Active implantable devices themselves (pacemakers, neurostimulators, implanted sensors) — as radio transmitters, the models require type approval coverage; manufacturers should address this within the same ETA planning as their external units. Capsule endoscopy systems, wireless telemetry transmitters, patient monitors — require ETA for each transmitting model. Hospital equipment with Wi-Fi/Bluetooth (infusion pumps, ventilators, imaging consoles) — the embedded radios require ETA. Step-by-Step: WPC ETA Self-Declaration for Medical Wireless Devices Because the medical bands above are de-licensed and the equipment is exempt from import licensing under DGFT policy, wireless medical devices qualify for ETA self-declaration (ETA-SD) via the Saral Sanchar portal. Radio and band audit. Inventory every transmitter in the system — implant, programmer, home monitor, companion app gateway — and map each to its notification and conditions (power, bandwidth, duty cycle, channel spacing). Accredited RF testing. Commission test reports evidencing frequency range, e.r.p/e.i.r.p, occupied bandwidth, and duty-cycle behaviour. EN 302 537, EN 302 510, EN 301 559, and EN 300 328 (for BLE) are the commonly referenced methodologies. Saral Sanchar registration. The Indian importer or Authorised Indian Representative (AIR) of the foreign manufacturer registers as applicant. ETA-SD filing with device

WPC ETA for 433 MHz & Sub-GHz Short Range Devices in India: IoT Sensors, Remote Controls & LPWAN Compliance (GSR 680 E, GSR 698 E & GSR 1047 E)

Below 1 GHz lies the quiet workhorse spectrum of the connected world. Sub-GHz radio — and the 433 MHz band in particular — carries an enormous share of the world’s short-range wireless traffic: car key fobs, gate and garage door openers, wireless doorbells, weather stations, tyre pressure monitoring systems, industrial remote controls, alarm sensors, smart meters, and a fast-growing population of LPWAN IoT nodes. Sub-GHz signals travel further and penetrate walls better than 2.4 GHz, at very low power — which is precisely why regulators keep these bands on a tight technical leash. In India, the sub-GHz short range device (SRD) landscape is defined by a cluster of gazette notifications issued by the WPC Wing of the Department of Telecommunications: GSR 680 (E) and GSR 698 (E) for the 433 MHz band, GSR 1047 (E) — the omnibus short range device notification of 18.10.2018 — for a wide set of bands from 169 MHz to 61 GHz, and GSR 564 (E) for 865–867 MHz, which doubles as India’s main licence-exempt LPWAN band. Every device using these bands requires WPC Equipment Type Approval (ETA) before import or sale, obtainable through self-declaration because the bands are de-licensed. This guide explains each notification, the duty-cycle and power conditions that trip up product teams, and the full ETA process for sub-GHz devices. The 433 MHz Band: Two Notifications, Read Together GSR 680 (E) dated 12.09.2012 — 433–434 MHz Indoor Devices GSR 680 (E) de-licensed 433–434 MHz for low power devices or equipment for indoor applications, with conditions of 10 mW maximum power and channel bandwidth within 10 kHz, using built-in antennas. This notification covers the classic indoor use cases: wireless sensors, remote switches, and home automation nodes. GSR 698 (E) dated 16.09.2015 — 433–434.79 MHz Including RFID GSR 698 (E) extended the de-licensed range to 433–434.79 MHz for very low power radio frequency devices including Radio Frequency Identification Devices, at 10 mW e.r.p with maximum channel bandwidth of 10 kHz and a duty-cycle limit of 10%. The wider band edge and explicit RFID coverage make this the primary basis for active tags, key fobs, and telemetry devices in the 433 MHz ISM range. The practical conditions for any 433 MHz product entering India are therefore: stay inside 433–434.79 MHz, keep radiated power at or below 10 mW e.r.p, respect the narrow 10 kHz channel bandwidth condition, and keep transmit duty cycle at or below 10%. GSR 1047 (E): India’s Omnibus Short Range Device Notification GSR 1047 (E) dated 18.10.2018 is the broadest SRD notification in the Indian framework, de-licensing multiple bands for low power and very low power short range devices across nine device families: inductive devices, active medical implants, high duty cycle / continuous transmission devices, assistive listening devices, Personal Mobile Radio (PMR 446), radio determination devices, RFID, transport and traffic telematics devices, and non-specific short range devices. Key sub-GHz entries include: Band Power Limit Conditions Typical Applications 6.765–6.795 MHz 42 dBµA/m at 10 m Inductive Inductive sensing 30–37.5 MHz 1 mW e.r.p 10% duty cycle; ultra-low power medical membrane implants Blood-pressure measurement implants 87.5–108 MHz 50 nW e.r.p High duty cycle devices Low-power audio transmitters 169.4–169.475 MHz 500 mW e.r.p ≤50 kHz channel; 1% duty cycle (10% for metering) Smart metering, telemetry 169.4–169.4875 MHz 10 mW e.r.p 0.1% duty cycle Non-specific SRD 169.4875–169.5875 MHz 10 mW e.r.p 0.001% duty cycle Non-specific SRD 169.5875–169.8125 MHz 10 mW e.r.p 0.1% duty cycle Non-specific SRD 169.4–169.5875 MHz 500 mW e.r.p Assistive listening devices Hearing assistance 446–446.2 MHz 500 mW e.r.p 6.25 / 12.5 kHz channel spacing PMR 446 walkie-talkies 865–867 MHz (GSR 564 E) 1 W Tx / 4 W e.r.p, 200 kHz RFID and licence-exempt use UHF RFID, LoRa/LPWAN gateways and nodes The duty-cycle figures deserve emphasis: the 169 MHz sub-bands range from 1% down to an extraordinarily strict 0.001%. A firmware beaconing schedule that would be legal in Europe may violate the Indian conditions — duty cycle is a design parameter, not a paperwork afterthought. PMR 446: India’s Licence-Exempt Walkie-Talkie Band Consumer walkie-talkies are a recurring compliance flashpoint. Under GSR 1047 (E), licence-exempt PMR operation is confined to 446–446.2 MHz at up to 500 mW e.r.p with 6.25/12.5 kHz channel spacing. Imported radios covering wider ranges (e.g., 400–470 MHz handhelds) are not compliant, are regularly seized at customs, and have triggered marketplace delistings. Only radios locked to the notified PMR band parameters can obtain ETA through self-declaration. 865–867 MHz: India’s LPWAN Home India’s licence-exempt sub-GHz IoT deployments — LoRaWAN above all — operate in 865–867 MHz under GSR 564 (E) dated 30.07.2008, sharing the band with UHF RFID. The conditions (1 W transmitter power, 4 W e.r.p, 200 kHz carrier bandwidth) accommodate LoRa gateways and nodes using the IN865 channel plan. Manufacturers of LoRa modules, gateways, trackers, and smart city sensors must ensure regional firmware uses the Indian channel plan, and each shipped model requires its own ETA. Step-by-Step: WPC ETA Self-Declaration for Sub-GHz Devices Fix the India RF profile. Confirm operating frequencies, power, bandwidth, and duty cycle against the exact notification that covers your band. Where hardware supports multiple regions, lock the India SKU in firmware. Accredited RF testing. Obtain test reports evidencing frequency range, radiated power (e.r.p), occupied bandwidth, and duty-cycle behaviour. EN 300 220 is the commonly referenced standard family for sub-GHz SRDs. Register on Saral Sanchar (saralsanchar.gov.in). Foreign manufacturers file through an Authorised Indian Representative (AIR) or Indian importer. Submit the ETA-SD application with model and RF module details, band/power declarations, test reports, and datasheets. Pay ₹10,000 government fee per application/model online. Download the ETA certificate generated on self-declaration basis. Import with undertaking. Present the ETA and customs undertaking confirming operation in de-licensed bands. Documents Required Saral Sanchar ETA-SD online application RF test report from an accredited laboratory (frequency, e.r.p, bandwidth, duty cycle) Device and RF module datasheets Declaration of India-specific channel plan and power configuration Applicant incorporation documents and IEC AIR authorisation letter for foreign manufacturers Customs undertaking accompanying the ETA at import Common Causes of Rejection

WPC ETA for RFID & NFC Devices in India: 865–867 MHz, 13.56 MHz & the De-Licensed RFID Bands (GSR 564 E, GSR 884 E & GSR 1047 E)

Radio Frequency Identification (RFID) and Near Field Communication (NFC) have moved from niche logistics tools to core infrastructure across the Indian economy. UHF RFID drives warehouse automation, retail inventory, tolling ecosystems, and asset tracking; 13.56 MHz technology powers contactless payment cards, access control, metro ticketing, and every NFC-enabled smartphone and POS terminal; low-frequency RFID underpins animal tagging, vehicle immobilisers, and industrial sensing. Every RFID reader, NFC device, and interrogator placed on the Indian market is a radio transmitter regulated by the Wireless Planning and Coordination (WPC) Wing of the Department of Telecommunications. The frequencies these devices use are de-licensed in India through a series of gazette notifications — but the devices themselves still require WPC Equipment Type Approval (ETA) before import and sale, and India’s RFID band plan differs from the US and several other markets in ways that regularly catch global vendors off guard. This guide sets out every de-licensed band relevant to RFID and NFC in India, the technical conditions attached to each, the ETA self-declaration process on the Saral Sanchar portal, and the compliance pitfalls specific to this product category. India’s De-Licensed RFID & NFC Frequency Bands UHF RFID: 865–867 MHz — GSR 564 (E) dated 30.07.2008 The workhorse band for supply chain, retail, and logistics RFID in India is 865–867 MHz, de-licensed under GSR 564 (E) for low power RFID equipment. The notified conditions permit: Maximum transmitter power of 1 W Maximum radiated power of 4 W e.r.p Carrier bandwidth of 200 kHz This is the single most important fact for anyone importing UHF RFID readers into India: the Indian band is 865–867 MHz, not the North American 902–928 MHz band. Readers built and tested for FCC Part 15 operation are not compliant in India unless they are configured (and evidenced) to operate within the Indian 2 MHz window at the notified power limits. ETSI-region hardware (865–868 MHz) is closer to the Indian plan but must still be shown to respect the 867 MHz upper edge. HF / NFC: 13.553–13.567 MHz — GSR 884 (E) dated 04.11.2010 The 13.56 MHz band — the global home of ISO 14443 contactless smartcards, ISO 15693 vicinity cards, and NFC — is de-licensed under GSR 884 (E) for very low power radio frequency devices for indoor applications. This covers: NFC readers in smartphones, tablets, and wearables Contactless POS terminals and payment acceptance devices Access control readers and time-attendance systems Library, laundry, and industrial HF RFID systems Metro and transit ticketing validators LF RFID: 9–50 kHz and 50–200 kHz — GSR 83 (E) & GSR 90 (E) Low-frequency RFID (typically 125/134.2 kHz) sits within the bands de-licensed by GSR 90 (E) dated 10.02.2009 (50–200 kHz) and, for the lowest frequencies, GSR 83 (E) dated 11.02.2014 (9–50 kHz), both covering very low power radio frequency devices including RFID. Typical applications include animal identification, car key immobilisers, and proximity access cards. Related inductive-application bands (302–351 kHz under GSR 697 (E), and the wider inductive sub-bands under GSR 870 (E) dated 21.12.2021 with field-strength limits specified in dBµA/m at 10 m) support inductive readers and wireless sensing. 433 MHz and 2.4 GHz RFID Two further notifications matter for active RFID and microwave RFID: 433–434.79 MHz — GSR 698 (E) dated 16.09.2015 permits very low power devices including RFID at 10 mW e.r.p with a maximum channel bandwidth of 10 kHz and a 10% duty-cycle limit. This supports active RFID tags and beacons common in yard management and personnel tracking. 2446–2454 MHz — GSR 1047 (E) dated 18.10.2018 permits RFID devices at up to 500 mW e.i.r.p, enabling 2.4 GHz microwave RFID systems, alongside general short-range device use of 2400–2483.5 MHz. Summary Table Technology Frequency Band Notification Key Conditions LF RFID 9–50 kHz / 50–200 kHz GSR 83 (E) / GSR 90 (E) Very low power devices incl. RFID Inductive / LF 302–351 kHz; 148.5 kHz–30 MHz sub-bands GSR 697 (E) / GSR 870 (E) Field-strength limits in dBµA/m at 10 m HF RFID / NFC 13.553–13.567 MHz GSR 884 (E) Very low power, indoor applications Active RFID 433–434.79 MHz GSR 698 (E) 10 mW e.r.p, 10 kHz bandwidth, 10% duty cycle UHF RFID 865–867 MHz GSR 564 (E) 1 W transmitter, 4 W e.r.p, 200 kHz carrier Microwave RFID 2446–2454 MHz GSR 1047 (E) 500 mW e.i.r.p Who Needs WPC ETA in the RFID Ecosystem? A useful rule of thumb: anything that transmits needs approval; purely passive items do not. RFID readers / interrogators (fixed, handheld, integrated) — require ETA. These are the active transmitters. NFC-enabled devices — smartphones, POS terminals, smartwatches, access readers: the NFC radio requires ETA coverage alongside any Wi-Fi/Bluetooth radios in the same device. Active RFID tags and beacons — battery-powered transmitters require ETA. Passive RFID tags, labels, and inlays — do not transmit autonomously; they backscatter reader energy and are generally outside ETA requirements. RFID printers/encoders — contain an interrogator module and require ETA. Multi-radio gateways — readers with built-in Wi-Fi/Bluetooth/4G backhaul need every radio assessed; the cellular element brings additional considerations. Step-by-Step: ETA Self-Declaration for RFID & NFC Devices Because all the bands above are de-licensed and the equipment is import-licence-exempt under DGFT policy, RFID and NFC devices qualify for the ETA self-declaration (ETA-SD) route on the Saral Sanchar portal (saralsanchar.gov.in). Confirm the India configuration. Verify the reader’s frequency plan is set (and lockable) to the Indian band — 865–867 MHz for UHF — and that output power respects the notified limits. Obtain the manufacturer’s India-region firmware/SKU confirmation in writing. RF testing. Commission testing at an accredited laboratory covering operating frequency range, channel occupancy, radiated power (e.r.p/e.i.r.p), and where applicable duty cycle. EN-referenced reports (e.g., EN 302 208 for UHF RFID, EN 300 330 for LF/HF) are widely used as the technical basis. Register the applicant on Saral Sanchar. Indian importers apply directly; foreign manufacturers apply through an Authorised Indian Representative (AIR). File the ETA-SD application with model details, RF specifications, band and power declarations, test reports, and datasheets. Pay the fee — ₹10,000 per application/model via

WPC ETA for Wi-Fi & Bluetooth Devices in India: 2.4 GHz, 5 GHz & 6 GHz Bands Explained (GSR 45 E, GSR 1048 E & GSR 316 E)

Wi-Fi and Bluetooth are the two most widely shipped radio technologies on earth, and they sit inside almost every product category entering India — smartphones, laptops, routers, smart TVs, wireless earbuds, speakers, wearables, smart home devices, POS terminals, industrial gateways, drones, and connected appliances. Every one of these products transmits in spectrum regulated by the Wireless Planning and Coordination (WPC) Wing of the Department of Telecommunications, and every one of them requires WPC Equipment Type Approval (ETA) before it can be imported into or sold in India. The good news for manufacturers and importers is that the frequency bands used by Wi-Fi and Bluetooth in India are de-licensed — exempted from individual wireless operating licences through gazette notifications. This qualifies compliant devices for the fast ETA self-declaration route on the DoT’s Saral Sanchar portal. The catch is that India’s band plan, power limits, and channel conditions are specific to India, and devices tested only against FCC or CE parameters routinely fail to demonstrate compliance. This guide covers the three notifications that matter for Wi-Fi and Bluetooth — GSR 45 (E) for 2.4 GHz, GSR 1048 (E) for 5 GHz, and GSR 316 (E) for the Lower 6 GHz band — along with the full ETA process, documentation, and the compliance pitfalls we see most often at the customs stage. The De-Licensed Bands for Wi-Fi and Bluetooth in India 2.4 GHz Band — GSR 45 (E) dated 28.01.2005 The foundational notification for consumer wireless in India is GSR 45 (E), which de-licensed the 2.4–2.4835 GHz band for low power equipment — specifically wireless LAN equipment and devices using Bluetooth and the IEEE 802.11 family of standards. This is the band used by: Wi-Fi 802.11b/g/n/ax (2.4 GHz radios of every dual-band product) Bluetooth Classic and Bluetooth Low Energy (BLE) — 2400–2483.5 MHz Zigbee, Thread, and other 802.15.4 mesh protocols Proprietary 2.4 GHz links (wireless mice, keyboards, game controllers, drone links) Related conditions in GSR 1047 (E) dated 18.10.2018 additionally cover short range device use in 2400–2483.5 MHz (10 mW e.i.r.p for non-specific SRDs and 25 mW e.i.r.p for radio determination devices), and 2446–2454 MHz at up to 500 mW e.i.r.p for RFID applications. 5 GHz Band — GSR 1048 (E) dated 18.10.2018 GSR 1048 (E) de-licensed four sub-bands for wireless access systems including Radio Local Area Networks (RLAN), under indoor and outdoor environments: Sub-band Typical Wi-Fi channels Notes 5.150–5.250 GHz (UNII-1) 36–48 Low power wireless access 5.250–5.350 GHz (UNII-2A) 52–64 Subject to notified conditions 5.470–5.725 GHz (UNII-2C) 100–140 Subject to notified conditions 5.725–5.875 GHz (UNII-3 and SRD) 149–165 Also 25 mW e.i.r.p non-specific SRD use under GSR 1047 (E) This notification is what allows dual-band and tri-band routers, mesh systems, laptops, and smartphones to operate their 5 GHz radios in India, covering low power access points, fixed point-to-point access, and mobile and portable client devices. Lower 6 GHz Band — GSR 316 (E) The most significant recent development for the Wi-Fi industry is the de-licensing of the Lower 6 GHz band, 5925–6425 MHz, for low power and very low power wireless access systems including RLAN. This notification opens the door for Wi-Fi 6E and Wi-Fi 7 devices in India, and the band has been enabled for ETA self-declaration filing. Manufacturers planning 6 GHz-capable products for the Indian market must ensure the device firmware restricts operation to the notified 5925–6425 MHz range and the applicable low power / very low power classes — the full 6 GHz range available in some other markets (up to 7125 MHz) is not de-licensed in India. Why ETA Is Mandatory Even Though the Bands Are Licence-Exempt De-licensing removes the need for the user of the device to hold a wireless operating licence. It does not remove the obligation on the manufacturer or importer to obtain Equipment Type Approval for the device model. ETA is the WPC Wing’s confirmation that the specific model conforms to the frequency, power, and technical conditions of the applicable notification. In practical terms, ETA is enforced at three points: Customs. Wireless consignments are checked against WPC requirements at import. De-licensed-band devices clear customs on presentation of the ETA together with an importer’s undertaking. Without ETA, goods are detained. Marketplaces. Amazon, Flipkart, and other platforms increasingly require ETA evidence before listing wireless products. Enforcement. Sale or operation of non-approved wireless equipment exposes the seller to action under the Indian Telegraph Act and Wireless Telegraphy Act. Since February 2022, ETA for devices that operate exclusively in de-licensed bands and are exempt from import licensing under the DGFT policy is issued through self-declaration (ETA-SD) on the Saral Sanchar portal — a major simplification compared with the earlier paper-based scrutiny route. Step-by-Step: WPC ETA Self-Declaration for Wi-Fi / Bluetooth Devices Radio inventory and band mapping. List every transmitter in the product — 2.4 GHz Wi-Fi, 5 GHz Wi-Fi, 6 GHz Wi-Fi, Bluetooth/BLE, and any additional radios (NFC, UWB, sub-GHz). Confirm each falls inside a notified de-licensed band at compliant power levels. One out-of-band radio disqualifies the entire device from the self-declaration route. RF testing at an accredited laboratory. Obtain test reports demonstrating operating frequency range, channel plan, and maximum output power (e.i.r.p) for each radio, aligned to the Indian band edges. Reports from ILAC-accredited labs referencing the applicable standards are accepted; testing of the final product or its certified RF modules should reflect the configuration actually shipped to India. Portal registration. Register the applicant entity on saralsanchar.gov.in. Foreign manufacturers apply through an Authorised Indian Representative (AIR) or their Indian importer. ETA-SD application. File the online application with device model details, RF module details, frequency bands, output power, and uploaded test reports and datasheets. Fee payment. Pay the government fee of ₹10,000 per application/model (covering the RF modules within that model) through the portal’s online payment gateway. Certificate generation. For eligible devices the ETA is issued on a self-declaration basis and downloaded directly from the portal — typically within days of a complete filing. Import. Present the ETA with an undertaking to customs at the time of
WPC Approval for wireless devices in India

WPC De-Licensed Frequency Bands in India: The Complete 2026 Guide for Manufacturers & Importers

Every wireless product sold in India — from a Bluetooth earbud to an industrial RFID scanner — transmits on a radio frequency, and every radio frequency in India is governed by the Wireless Planning and Coordination (WPC) Wing of the Department of Telecommunications (DoT), Ministry of Communications. Before a manufacturer or importer can legally place a wireless device on the Indian market, they must answer one fundamental question: does the device operate in a licensed band or a de-licensed band? The answer determines everything that follows. Devices operating in de-licensed (licence-exempt) bands can be imported and sold with a WPC Equipment Type Approval (ETA) obtained through a fast, online self-declaration route. Devices operating outside these bands face a far more demanding regime involving import licences, frequency assignment, and case-by-case scrutiny. Getting this classification wrong at the design or procurement stage is one of the most expensive compliance mistakes a wireless product company can make — shipments held at customs, launch dates missed, and in the worst cases, redesigns of the RF front end itself. This guide consolidates every de-licensing gazette notification issued by the WPC Wing into a single reference, explains the WPC ETA approval process step by step, and sets out the documents, timelines, and pitfalls that manufacturers and importers must plan for in 2026. What Does “De-Licensed” Mean in Indian Spectrum Law? Under the Indian Telegraph Act and the wireless regulatory framework administered by the DoT, the default legal position is that operating a wireless transmitter requires a licence. The WPC Wing, established in 1952, is the national radio regulatory authority responsible for frequency spectrum management, licensing, and ensuring that wireless devices do not cause harmful interference. To enable mass-market wireless technologies — Wi-Fi, Bluetooth, RFID, short-range remotes, medical implants — the Government of India has progressively exempted specific frequency bands from the licensing requirement through Gazette of India notifications (GSR notifications). A device operating within one of these de-licensed bands, and within the power limits and technical conditions specified in the relevant notification, may be used without an individual wireless operating licence. De-licensed does not mean unregulated. Three conditions still apply: The device must operate strictly within the notified frequency range. It must comply with the maximum transmit power, field strength, duty cycle, and bandwidth conditions in the notification. The device model must hold a WPC Equipment Type Approval (ETA) before import and sale — now issued via self-declaration for de-licensed-band devices. The consolidated list of licence-exempt bands is also reflected in Annexure-1 of the National Frequency Allocation Plan (NFAP), the most recent release of which was published in 2025. The Complete List of WPC De-Licensed Frequency Bands in India The table below consolidates the gazette notifications regarding de-licensing bands issued by the WPC Wing, DoT. Each notification defines the band, the permitted application, and the technical conditions. S.No Frequency Band Gazette Notification Purpose / Applications 1 9–50 kHz GSR 83 (E) dated 11.02.2014 Very low power radio frequency devices including Radio Frequency Identification Devices (RFID) 2 50–200 kHz GSR 90 (E) dated 10.02.2009 Very low power radio frequency devices including RFID 3 302–351 kHz GSR 697 (E) dated 16.09.2015 Very low power devices for inductive applications 4 302–435 kHz; 855–1050 kHz; 1.89–2.30 MHz GSR 996 (E) dated 05.10.2018 Very low power devices for inductive applications 5 148.5–3155 kHz (and further inductive sub-bands up to 30 MHz) GSR 870 (E) dated 21.12.2021 Very low power devices for inductive applications (field-strength limited, dBµA/m) 6 13.553–13.567 MHz GSR 884 (E) dated 04.11.2010 Very low power devices for indoor applications (NFC, 13.56 MHz RFID) 7 26.957–27.283 MHz GSR 35 (E) dated 10.01.2007 & GSR 533 (E) dated 12.08.2005 Low power citizen band (CB) equipment, including use in motion or during halts 8 36–38 MHz GSR 696 (E) dated 16.09.2015 Very low power wireless microphones 9 335.7125–335.8375 MHz (six spot frequencies) GSR 34 (E) dated 10.01.2007 & GSR 532 (E) dated 12.08.2005 Low power wireless equipment for remote control of cranes 10 402–405 MHz GSR 673 (E) dated 23.09.2008 Medical Implant Communication Systems (MICS) and Medical Implant Telemetry Systems (MITS) 11 433–434 MHz GSR 680 (E) dated 12.09.2012 Low power devices for indoor applications 12 433–434.79 MHz GSR 698 (E) dated 16.09.2015 Very low power devices including RFID 13 865–867 MHz GSR 564 (E) dated 30.07.2008 Low power RFID equipment (UHF RFID) 14 Multiple short-range device bands: 6.765–6.795 MHz; 30–37.5 MHz; 87.5–108 MHz; 169.4–169.8125 MHz; 401–402 MHz; 405–406 MHz; 446–446.2 MHz; 2400–2483.5 MHz; 2446–2454 MHz; 2483.5–2500 MHz; 5725–5875 MHz; 24.05–24.5 GHz; 61–61.5 GHz GSR 1047 (E) dated 18.10.2018 Low power and very low power short range devices (SRDs): inductive devices, active medical implants, high duty cycle devices, assistive listening devices, PMR 446, radio determination, RFID, transport & traffic telematics, non-specific SRDs 15 2.4–2.4835 GHz GSR 45 (E) dated 28.01.2005 Low power WLAN / Bluetooth / IEEE 802.11b equipment 16 5.150–5.250 GHz; 5.250–5.350 GHz; 5.470–5.725 GHz; 5.725–5.875 GHz GSR 1048 (E) dated 18.10.2018 Low power wireless access points, fixed point-to-point access, mobile and portable client devices including RLAN, indoor and outdoor 17 76–77 GHz GSR 699 (E) dated 16.09.2015 Very low power short range radar systems (automotive radar) 18 1.6–10.6 GHz and above 10.6 GHz (UWB) GSR 1046 (E) dated 18.10.2018 Very low power ultra-wideband (UWB) devices: generic UWB, location tracking, road/rail vehicle UWB, material sensing, building material analysis 19 5925–6425 MHz (Lower 6 GHz) GSR 316 (E) Low power and very low power wireless access systems including RLAN in the Lower 6 GHz band (Wi-Fi 6E/7) Each of these notifications carries detailed technical conditions — maximum e.r.p or e.i.r.p, field-strength limits for inductive bands, duty-cycle limits, channel spacing, and in several cases references to harmonised European standards (EN 300 220, EN 300 330, EN 300 440, EN 302 065 and others) that define the test methodology. Compliance is demonstrated through an RF test report assessed against these parameters. Why the De-Licensed Classification Matters Commercially The commercial consequences of the licensed/de-licensed distinction are substantial. Market access speed. A device in a