CISPR 32 Summary: Multimedia Equipment Emissions

Structure of CISPR 32 (EN 55032), Class A vs B, radiated and conducted limit tables, test setup and practical checkpoints.

Last updated: 2026-10-10

This page is a self-written reference summary. For limits and procedures used in certification or test reports, always check the latest edition and amendments of the official document (for example via the IEC webstore). Values can change between editions.

At a glance

  • Scope: emissions from multimedia equipment (MME), covering information technology equipment as well as broadcast receivers and audio/video equipment.
  • It merged the former CISPR 22 (ITE) and CISPR 13 (broadcast receivers). Europe adopts it as EN 55032 and Korea as KN 32.
  • Immunity requirements are covered separately by CISPR 35 (EN 55035, Korean KN 35).
  • Besides emission limits it defines test setups, measurement methods and equipment classes (A/B).

Class A and Class B

ClassEnvironmentRequirement level
Class BResidential (home, consumer equipment)Stricter; radiated limits are 10 dB below Class A
Class ACommercial and industrialRelaxed; a warning about possible interference in residential use is required

Class B equipment also meets Class A limits, so many teams design to Class B when the final use is unclear.

Radiated emission limits (30 MHz – 1 GHz, quasi-peak)

ClassFrequencyDistanceLimit [dBµV/m]
Class B30–230 MHz10 m30
Class B230–1000 MHz10 m37
Class B30–230 MHz3 m40
Class B230–1000 MHz3 m47
Class A30–230 MHz10 m40
Class A230–1000 MHz10 m47
Class A30–230 MHz3 m50
Class A230–1000 MHz3 m57

Apply either the 3 m or the 10 m limits across the whole frequency range, not a mix. The 3 m limit is the 10 m limit plus 10 dB, the tabulated value rather than the computed +10.46 dB. Detector: quasi-peak, resolution bandwidth 120 kHz.

Radiated emission limits (above 1 GHz, 3 m)

ClassFrequencyAverage [dBµV/m]Peak [dBµV/m]
Class B1–3 GHz5070
Class B3–6 GHz5474
Class A1–3 GHz5676
Class A3–6 GHz6080

Above 1 GHz the resolution bandwidth is 1 MHz and measurements are made at 3 m in a fully anechoic room (or a semi-anechoic room with absorbers on the floor). The upper frequency depends on the highest internal frequency of the EUT, up to 6 GHz.

AC mains port conducted emission limits (0.15–30 MHz)

ClassDetector0.15–0.5 MHz0.5–5 MHz5–30 MHz
Class BQuasi-peak66 → 56 (linear with log frequency)5660
Class BAverage56 → 46 (linear with log frequency)4650

Unit is dBµV, resolution bandwidth 9 kHz, measured with an artificial mains network (LISN/AMN). Both QP and average limits must be met. The public sources we checked disagree on the Class A figures, so they are intentionally not listed here; check the standard text.

Which items apply to which port

  • Enclosure port: radiated emissions (tables above).
  • AC mains port: conducted emissions (table above).
  • Wired network ports (Ethernet, telecom lines): asymmetric (common-mode) conducted emissions, measured with an impedance stabilisation network (ISN/AAN) against voltage and current limits.
  • Additional ports by equipment type, such as broadcast tuner, antenna and optical ports.

Test setup essentials

  • Below 1 GHz, tabletop EUTs sit on a non-conductive table 0.8 m above the floor and floor-standing EUTs on an insulating support above the ground plane. Above 1 GHz the standard prescribes a different height and setup, so check the text.
  • Radiated emissions below 1 GHz: scan antenna height 1–4 m, rotate the turntable 360°, measure both vertical and horizontal polarisation and compare the maximum with the limit.
  • Mains port: use a 50 Ω // (50 µH + 5 Ω) V-type LISN and measure both L and N.
  • A typical flow is a fast peak pre-scan, followed by QP and average measurements only at frequencies close to the limit.

Practical checkpoints

  • Design to at least 3–6 dB of margin to absorb lab-to-lab spread and measurement uncertainty. The "Limit margin" calculator helps with the decision.
  • Frequent radiated-emission culprits: harmonics of fast clocks and switching supplies, common-mode current on cables, ground discontinuities, aperture (slot) leakage. If a ferrite on the cable helps, common-mode current is the cause.
  • Test-distance conversion (3 m ↔ 10 m) is for estimates only; use the tabulated limit for the actual distance when judging compliance.
  • The rule for comparing a reading with the limit follows the uncertainty criteria of CISPR 16-4-2 and your certification body’s policy.

Official sources

  • The IEC webstore (https://webstore.iec.ch) lists the current CISPR 32 edition and its amendments.
  • For Korean certification check the latest revision of the competent authority’s notice (including KN 32/KN 35).

Related calculators

Standards summaries

Results and summaries are for reference. For certification and test reports use the latest official standard text and calibrated instrument data.