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Comprehensive Assessment of Regulatory Requirements, Product Reliability, and User Safety
The electromagnetic compatibility testing of vehicle OBCs must meet multi-level regulatory requirements from international to enterprise levels. The revision and implementation timelines of standards directly affect the product launch cycle and compliance. Regulatory requirements exhibit a clear hierarchical progression structure: international standards form the basic framework, regional standards are the market access threshold, and enterprise standards further refine technical requirements.
Product reliability and functional safety are one of the core objectives of vehicle OBC electromagnetic compatibility testing. With the advancement of vehicle electronics technology, especially the popularization of high-voltage systems (such as power battery voltages reaching 300~600V, output currents up to 500A), the in-vehicle electromagnetic environment is severely polluted due to high voltage and high current influences. The electromagnetic compatibility performance design and control of high-voltage products have become key to ensuring reliable vehicle operation.
There is a clear quantitative correlation between the electromagnetic compatibility (EMC) testing of vehicle OBCs and user safety. By setting strict radiation emission limits, EMC testing can directly control the exposure risk of vehicle electromagnetic radiation to the human body.
The full name of the CISPR 25 standard is "Vehicles, boats and internal combustion engines – Radio disturbance characteristics – Limits and methods of measurement for the protection of on-board receivers". It is the core automotive electromagnetic compatibility standard developed by the International Special Committee on Radio Interference (CISPR).
The compatibility requirements for the newly added 5.9GHz V2X communication band pose higher demands on OBC design, requiring optimization at three levels:
The ISO 11452 series standards are the core international standard system for electromagnetic immunity testing of automotive electronic components, covering a frequency range from 10kHz to 18GHz, applicable to various vehicle propulsion systems.
| Test Method | Applicable Standard | Frequency Range | Applicable Object | Core Advantage |
|---|---|---|---|---|
| Anechoic Chamber Method | ISO 11452-2 | 80MHz-18GHz | Components | Simulates open field test environment and shields external interference signals. |
| Bulk Current Injection (BCI) Method | ISO 11452-4 | 100kHz-400MHz | Harnesses of high-voltage systems like vehicle OBC | Directly injects interference current through the harness, simulating the actual electromagnetic coupling path of high-voltage harnesses. |
| TEM Cell Method | ISO 11452-3 | 0.01MHz-200MHz | Small electronic components | Generates a uniform electromagnetic field. |
| Reverberation Chamber Test | ISO 11452-11 | LUF-18GHz | Components and complete vehicles in R&D stage | Generates a statistically uniform field through stirrers, quickly exposing potential issues. |
The full name of GB/T 18655-2025 is "Vehicles, boats and internal combustion engines – Radio disturbance characteristics – Limits and methods of measurement for the protection of on-board receivers". It was released and implemented on February 28, 2025, with technical content equivalent to the international standard CISPR 25:2021.
| Version | International Standard Reference | Main Technical Differences | Special Requirements | Implementation Date |
|---|---|---|---|---|
| GB/T 18655-2010 | CISPR 25:2008 | Introduced 5 level classifications (Class 1-5) | None | 2011 |
| GB/T 18655-2018 | CISPR 25:2016 | Filled the gap in EMC standards for electric vehicle components | Added transient pulse test (ISO 7637) requirements | 2019/2/1 |
| GB/T 18655-2025 | CISPR 25:2021 | Extended radiation emission frequency range (30MHz~6GHz) | Strengthened transient pulse test requirements | 2025/2/28 |
The full name of the GB/T 21437 series standards is "Road vehicles – Electrical/electronic components for electrical disturbances from conduction and coupling – Test methods". It aims to standardize the test methods for electrical transient conduction emission and immunity of electrical/electronic components for road vehicles.
| Standard Part | Applicable System Voltage | Test Voltage | Core Test Method | Scope of Application |
|---|---|---|---|---|
| GB/T 21437.1-2021 | 12V/24V System | 12V System: (13±1)V 24V System: (26±2)V |
Terminology Definition Test Condition Specification Functional Performance Classification |
Basic Framework Standard Provides basis for subsequent tests |
| GB/T 21437.2-2021 | 12V/24V System | 12V System: (13.5±0.5)V 24V System: (27±1)V |
Transient Conduction along Power Lines Emission and Immunity Testing |
Low Voltage DC Power Lines Transient Interference Suppression Verification |
| GB/T 21437.3-2021 | 12V/24V System | Not Specified | Capacitive Coupling Clamp (CCC) Method Direct Capacitor Coupling (DCC) Method Inductive Coupling Clamp (ICC) Method |
Signal/Control Lines Transient Immunity Testing (M/N/O/L Category Vehicles) |
To achieve comprehensive compliance of vehicle OBC electromagnetic compatibility, it is necessary to build a three-tier compliance path of "International Standards + National Standards + Enterprise Standards". By clarifying the differences and connections between standards at each level, combined with systematic strategies, certification costs can be reduced and market access ensured.
International standards, national standards, and enterprise standards exhibit hierarchical complementary characteristics in technical requirements. In the field of emission testing, GB/T 18655 and CISPR 25 are basically equivalent. Both testing methods use ALSE/TEM cells, and limit requirements are divided into levels 1-5. However, domestic standards may have additional requirements for transient pulses (such as ISO 7637).
Conducted emission testing is a key project to evaluate the level of electromagnetic interference conducted by the vehicle OBC through power lines and signal lines. Its core goal is to ensure that the interference characteristics of the OBC under different operating conditions meet the electromagnetic compatibility standard requirements.
According to GB/T 18655 standard, it is necessary to scan the disturbance level in the frequency range of 150kHz to 108MHz under different load conditions:
Radiated emission testing aims to quantify the strength of electromagnetic interference propagated through space by the vehicle OBC during operation. The results are directly related to the electromagnetic compatibility of electronic devices inside and around the vehicle.
This test is usually conducted in an Anechoic Chamber (ALSE). It is necessary to simulate the actual installed state of the OBC to arrange the harness (length 1.7m~2m), and select according to different frequency bands:
GB/T 18655 limits the test frequency band for component electromagnetic radiation emission to 150kHz~6GHz; the CISPR 25 standard clearly covers the 150kHz~6GHz frequency band, requiring radiated emission testing for high-frequency bands above 2.5GHz.
| Test Item | Component Electromagnetic Radiation Emission | Electromagnetic Radiation Immunity | Bulk Current Injection Immunity |
|---|---|---|---|
| Reference Standard | GB/T18655-2025 | GB/T33014.2 | GB/T33014.4 |
| Test Frequency Band | 150kHz~6GHz | 80MHz~18GHz | 0.1MHz~400MHz |
| Level Requirement | Level 3 (Specific user-defined reference standard) | 100V/m (Specific user-defined reference standard) | 60mA (Specific user-defined reference standard) |
Radiated immunity testing aims to simulate the immunity performance of the vehicle OBC in high field strength scenarios, evaluating its tolerance to external electromagnetic interference by simulating a space radio frequency field environment.
The space RF field enters the PFC circuit through radiation coupling or cable conduction, interfering with sensitive units in the control loop:
Transient immunity testing is a key means to evaluate the ability of the vehicle OBC to maintain normal charging function and performance stability when subjected to electromagnetic interference conducted through power lines or signal lines.
According to the international standard ISO 7637-2, this standard defines various transient pulse waveforms for vehicle 12V/24V electrical systems:
High voltage interoperability testing is an important part of ensuring the electromagnetic compatibility of vehicle OBC during the charging process. Its core is to verify the stable operation capability of the high-voltage system in complex electromagnetic environments and its cooperative working performance with other components.
To ensure the accuracy and safety of the test, a dedicated isolation platform needs to be set up to achieve accurate measurement of common-mode current and injection testing of differential-mode voltage.
As a key project of voltage abnormality testing, it mainly verifies the resistance ability of the electric drive system to transient voltage pulses when the high-voltage battery is suddenly disconnected during power generation or charging.
EMI testing equipment mainly consists of core measuring instruments, antenna systems, and auxiliary equipment.
| Antenna Type | Frequency Range | Applicable Test Scenario |
|---|---|---|
| 1m Monopole Antenna | 150kHz~30MHz | Low Frequency Radiated Emission Testing |
| Biconical Antenna | 30MHz~200MHz | Medium Frequency Radiated Emission Testing |
| Log-Periodic Antenna | 200MHz~1GHz | High Frequency Radiated Emission Testing |
| Horn Antenna | 1GHz~6GHz | Microwave Frequency Radiated Emission Testing |
EMS testing equipment is the core component of building the immunity testing system for vehicle OBCs. Its performance directly affects the accuracy and reliability of the test results.
As a key component of the EMS testing system, it undertakes the important function of coupling the disturbance signal to the Equipment Under Test (EUT) and isolating auxiliary equipment.
The anechoic chamber is the core environment for radiated emission and radiated immunity testing in vehicle OBC electromagnetic compatibility testing. Its layout design directly affects the accuracy and repeatability of the test results.
The shielded room, as the core environmental facility for vehicle OBC electromagnetic compatibility testing, must meet the dual needs of isolating external interference and ensuring testing accuracy.
The necessity of vehicle OBC electromagnetic compatibility (EMC) testing is reflected in multiple core dimensions and is an indispensable key link in the product development and market access process.
EMC testing is a mandatory means for OBC to meet standards such as CISPR 25 and GB/T 18655. Products that fail the test will not be adopted by OEMs or gain market access qualification.
EMC testing ensures that the OBC can operate normally in complex electromagnetic environments, avoiding interference with other vehicle electronic devices and ensuring product functional stability.
EMC testing can reduce safety risks such as electric shock and overheating caused by electromagnetic interference, reduce vehicle failure rates and recall incidents, and maintain brand market reputation.
To ensure the electromagnetic compatibility compliance of vehicle OBCs, it is recommended to adopt a three-step progressive compliance process: "Standard Tracking - Simulation Prediction - Testing Verification".
The future technological development of vehicle OBC electromagnetic compatibility (EMC) testing will closely revolve around the core needs of intelligence and electrification, promoting standard evolution and testing capability upgrades.
The dynamic evolution of future standards and technological innovation will continue to drive OBC electromagnetic compatibility testing towards higher frequency, complexity, and systematization. Automakers need to take standard upgrades as the guide, simultaneously strengthen testing capabilities and design optimization, to ensure product electromagnetic compatibility in the era of intelligence and electrification.