Electromagnetic compatibility ( EMC ) is an important technical indicator in electronic products. This article introduces the main factors, test methods and judgment criteria that affect the EMC of solid-state relays (SSRs). At the same time, it proposes precautions for testing and gives a set of results with practical value.
1 Introduction
There are many factors that affect the electromagnetic compatibility (EMC) of solid-state relays (SSRs), such as the selection and matching of devices, circuit principles, PCB wiring and structure, etc. Among them, the influence of AC optocouplers ( photocouplers ) on EMC parameters is often ignored. The main reason is that there is little understanding of their application environment and requirements, and at the same time, there is insufficient understanding of EMC standards, equipment use and test methods. Therefore, when using poor performance devices and unreasonable structures, the EMC performance of solid-state relays often fails to meet some international standards (such as CE, etc.).
2 EMC standards for solid state relays
Electromagnetic compatibility includes electromagnetic radiation ( Emi ssion) and electromagnetic interference immunity (Immunity). For devices, European customers do not require electromagnetic testing (except for individual customers with special requirements), and usually only require testing according to the EN50082-2 standard, i.e. 1995V EN61000-6-2. But the most important tests are ESD (EN61000-4-2); EFT/B (EN61000-4-4) and SURGE (EN61000-4-5). It should be noted here that if the customer requires electromagnetic radiation testing, it should be tested according to the EN50081-2 standard, i.e. 2001V EN61000-6-4. This article only tests and summarizes the electromagnetic interference immunity of SSR. In our many years of communication with European customers, the most common requirements they put forward are as follows:
(1) EMC is required to conduct general standard electromagnetic interference immunity tests, namely the above-mentioned ESD, EFT/B and Surge. The voltage levels are 4kV contact discharge and 8kV air discharge, 1kV/5kHz fast group pulse disturbance and 2kV surge impact, and no other requirements are made;
(2) EMC is required to conduct a general standard electromagnetic interference immunity test to reach level 3, that is, ESD and Surge are the same as above, and EFT/B is required to reach 3kV/5kHz;
(3) Special requirements: ESD requires 6kV/10kV and EFT/B is 4kV
(4) Other requirements: In addition to electromagnetic immunity testing, electromagnetic radiation testing is also required.
3. Main factors affecting EMC of solid-state relays
In order to find out the main factors and components that affect the EMC of solid-state relays, it is necessary to understand the circuit principles that make up the SSR. We have combined the circuits of major domestic and foreign SSR manufacturers and obtained the following common circuit structures using AC optocoupler solutions. These different circuit structures and the same circuit structure with different device combinations were tested to find different EMC performances.
3.1 Circuit Principle
The three circuits of Figure 1, Figure 2 and Figure 3 can realize the function of solid-state relay. Figure 1 is the simplest circuit schematic of solid-state relay, in which A1 is AC optocoupler and A2 is bidirectional thyristor . It is often used in small SSR. When using it, users often add devices outside to improve the performance. Figure 2 adds RC absorption circuit and anti-shock resistor R2 on the basis of Figure 1. R2 is to protect the optocoupler and suppress the impact current flowing through the optocoupler at the moment of conduction. After adding these devices, the EMC characteristics of SSR and the impact performance of surge on optocoupler are greatly improved. Therefore, this circuit is often used in occasions with high reliability. Figure 3 is a special circuit, which is often used in SSR design with high reliability and high EMC level. The diode D1 in the figure can prevent input reverse polarity. The constant current circuit composed of Q1, Q2, R1 and R3 ensures that the current of optocoupler A1 is constant when the input voltage changes. The functions of the RC circuit C1, R7 and R6 are the same as those of Figure 2. A varistor RV is also added to this circuit. RV not only enhances the overvoltage protection capability of the SSR, but also greatly improves its EMC performance.
Carry out the following tests according to the above three different circuits and different structures:
3.2 Experiment
Two tests were performed using different samples (see below): group pulse test (see Table 1) and surge test (see Table 2).
The test conditions are as follows:
A. Input voltage: 0V or nominal value. Load: 40W light bulb;
B.《When 2kV, Burst test frequency: 5kHz;》When 2kV, Burst test frequency: 2.5kHz.
C. Samples: N0.1, N0.2 and N0.3 have different structures, but the same PCB; N0.4 and N0.5 have different optocouplers, but the rest are the same. (See "Product/ Component Model" in Table 1)
D. The test results are shown in Table 1.
a. In the table, "1" means pass, "0" means fail. Judgment criteria: "1": the light bulb does not flash; "0": the light bulb flashes.
b. In the table, L: live wire; N: neutral wire.
It is not difficult to see from the experiment:
(1) Comparing two relays of Company A, their circuit structures and component parameters are exactly the same, except that the former has an additional heat sink, but its burst test can only reach 2kV, while the second one can reach 4kV. It can be seen that changes in the internal structure of the product will affect the EMC performance;
(2) RC will greatly affect the EMC performance of solid-state relays; the structure without RC circuit has the worst EMC performance, see the product of Company B;
(3) The EMC performance will vary greatly when using different optocouplers, see the test results of N0.4 and N0.5;
(4) Different optocouplers and different thyristor combinations also have a significant impact on EMC performance;
(5) Selecting an appropriate RC combination can also improve the Burst and Surge immunity. When the C value in RC is constant, the Burst immunity of the solid-state relay is inversely correlated with the R value, but when R is small to a certain value, this relationship is no longer obvious;
(6) Adding RV varistor can greatly enhance the anti-interference ability of Surge.
4 Test methods and precautions
In order to obtain the test data correctly, the test circuit must be designed correctly and the wiring must be correct as required. Then the method and steps must be set, and finally the data must be obtained according to the judgment criteria.
4.1 Test Circuit
Figure 4 shows the test circuit. For SSR, there are signal source (voltage-stabilized power supply ), connection line less than 1 meter, load and related instruments; Figure 5 shows the waveform of power supply signal superimposed with interference signal.
4.2 Test standards and requirements and determination requirements
Table 3 shows the test standards and requirements of EMC anti-interference standards: EN61000-4-4, EN61000-4-5 and EN61000-4-2. For SSR, its working state requires that the sample is in the normal off and on state, and the interference source is added to observe whether the sample fails.
5. Experimental conclusion
(1) Changes in the internal structure of the product directly affect the EMC performance. For example, the layout design of PCB or DCB usually requires several adjustments, such as changing the routing position between input and output, the placement of components, etc., to achieve the best state;
(2) Among all the tested optocouplers, the performance of VISHAY optocouplers is relatively outstanding, and the Burst test of most of its optocouplers can reach 4kV. Optocouplers from other manufacturers rarely reach 4kV (this mainly depends on the internal structure of the optocoupler);
(3) The varistor RV has little effect on the Burst performance, but has a great impact on the Surge performance; therefore, RV should be added in situations where there is a large surge voltage impact. The size of RV depends on the blocking voltage of the thyristor;
(4) From the test data, it can be seen that in terms of resistance to electrical pulse group impact, the optocoupler has a greater impact on the relay (see the second point of the conclusion), and different optocouplers have different impact resistance performance; and in terms of surge resistance, the thyristor has the greatest impact on the relay (poor thyristors, such as those with too low dv/dt, will be broken down);
(5) Different combinations will have different EMC capabilities. If an optocoupler with better EMC is used with a thyristor with poorer EMC, it will result in poor EMC immunity. The same result can be obtained in the opposite case.
(6) Without RC, the ability of most optocouplers to resist group pulses is less than 500V; basically, it cannot meet the CE standard. Therefore, designers must change the circuit structure and component parameters to meet customer requirements and CE standards. Practical applications have shown that the dielectric loss angle and temperature characteristics of capacitor C have a greater impact on the absorption circuit. In addition to its power and thermal stability parameters, the resistance value of resistor R also has a greater impact on EMC performance. Usually C is selected to be 10-22nf, and R is usually 10-100 ohms;
(7) There is no necessary connection between the blocking voltage of the optocoupler and its ability to resist group pulses. However, the blocking voltage of the thyristor is closely related to its ability to resist surge voltage.
6. Problems
Due to the different electrical properties of the optocoupler's resistance to pulse shock, when the SSR relay is connected to the motor forward and reverse circuit, and the interference voltage exists (which can be viewed with an oscilloscope ), the SSR will be mis-conducted and even burned. The same is true for the zero-crossing relay. Theoretically, the interference voltage is twice the square root of the sum of the back electromotive force and the load voltage, but in reality the interference voltage can reach 3-5 times the load voltage, and sometimes 10 times. The reason is that the distributed parameters of the circuit produce LC parallel resonance. Although the energy of the resonant voltage is small and the duration of the peak is only microseconds, it can cause the SSR to be mis-conducted, that is, the optocoupler fails. Therefore, further discussion is needed.
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