CN111669229A - Tuning test integrated radiation immunity automatic test system - Google Patents

Tuning test integrated radiation immunity automatic test system Download PDF

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Publication number
CN111669229A
CN111669229A CN202010643832.0A CN202010643832A CN111669229A CN 111669229 A CN111669229 A CN 111669229A CN 202010643832 A CN202010643832 A CN 202010643832A CN 111669229 A CN111669229 A CN 111669229A
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China
Prior art keywords
test
tuning
coil
antenna
control computer
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CN202010643832.0A
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Chinese (zh)
Inventor
沈学其
彭鹏
范文远
沈伟杰
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Nanjing Rong Ce Detection Techniques Co ltd
Nanjing Rongxiang Testing Equipment Co ltd
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Nanjing Rong Ce Detection Techniques Co ltd
Nanjing Rongxiang Testing Equipment Co ltd
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Application filed by Nanjing Rong Ce Detection Techniques Co ltd, Nanjing Rongxiang Testing Equipment Co ltd filed Critical Nanjing Rong Ce Detection Techniques Co ltd
Priority to CN202010643832.0A priority Critical patent/CN111669229A/en
Publication of CN111669229A publication Critical patent/CN111669229A/en
Pending legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/101Monitoring; Testing of transmitters for measurement of specific parameters of the transmitter or components thereof
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/101Monitoring; Testing of transmitters for measurement of specific parameters of the transmitter or components thereof
    • H04B17/102Power radiated at antenna
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/101Monitoring; Testing of transmitters for measurement of specific parameters of the transmitter or components thereof
    • H04B17/103Reflected power, e.g. return loss

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  • Physics & Mathematics (AREA)
  • Electromagnetism (AREA)
  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Measurement Of Resistance Or Impedance (AREA)

Abstract

The tuning and testing integrated radiation immunity automatic test system mainly comprises a test antenna oscillator (10), an antenna tuning coil (20), a coil lifting device (30), a cable (40), a bi-directional coupler (41), a test power signal source (11) and a control computer (60); the tuning and testing of the system is an integrated process controlled by the control computer 60, the whole process is carried out automatically without human intervention, and the connection mode of the cable (40) does not need to be changed in the whole tuning and testing process. The system can greatly reduce tuning time, improve testing efficiency, and avoid the problems of poor tuning influence and repeatability and low tuning precision caused by operators in the tuning process. And moreover, a special standing wave measuring instrument is not needed, and the test frequency point can be greatly increased, so that the test result is more in line with the actual use condition, and the accuracy and the effectiveness of the test result are improved.

Description

Tuning test integrated radiation immunity automatic test system
Technical Field
The invention relates to an electromagnetic compatibility testing device, in particular to a tuning and testing integrated radiation immunity automatic testing system.
Background
International standard ISO 11451-3 "test method for electrical disturbance of whole vehicle by narrow-band radiation electromagnetic energy of road vehicle part 3: the vehicle transmitter simulation law states that the Voltage Standing Wave Ratio (VSWR) of the tested antenna element should be less than 2 (VSWR <2: 1) at the time of testing. Because the relative bandwidth of the test frequency band (1.8 MHz-30 MHz) is very wide, the traditional method needs a plurality of test antenna elements to cover the whole test frequency band, thus not only having high cost, but also having complex test process. Another prior art technique uses a tuned antenna as the test antenna element, which only requires one test antenna element. Since the minimum wavelength of the test band is also 10 meters, the size of the test antenna element is generally much smaller than the wavelength, so that reactive loading is required to tune the antenna to the test frequency using the loaded reactive element. Since the test frequency band is very wide, a set of fixed reactance values cannot cover the whole test frequency band, and therefore the test frequency band needs to be divided into a plurality of sub-frequency bands. During testing, each sub-band needs to be tuned by using a standing wave measuring instrument, and the whole testing frequency band needs to be tuned for multiple times, for example, the specific requirements of some international famous car manufacturer are as follows: the antenna needs to be tuned to each individual test frequency as indicated in table 1 before applying the power specified by the test class.
TABLE 1 frequency points for testing famous cars and factories in certain country
Frequency range (MHz) Default test frequency (MHz) Testing frequency tolerance (kHz)
1.8 to 2.0 1.8, 1.9, 2.0 ± 25
3.5 to 4.0 3.5, 3.61, 4.0 ± 25
7.0 to 7.3 7.2 ± 25
10.1 to 10.15 10.10 ± 25
14.0 to 14.35 14.20 ± 50
18.07 to 18.17 18.10 ± 50
21 to 21.45 21.20 ± 50
24.89 to 24.99 24.90 ± 50
26.18 to 28.0 26.30, 27.20 ± 50
28.0 to 29.7 28.2, 29.50 ± 50
This requires tuning at least 16 frequency points. During each tuning, an operator firstly enters a darkroom, stands beside an antenna, firstly unloads an antenna test cable from a transmitter, receives a standing wave measuring system, then manually adjusts an upper switch and a lower switch and controls a coil lifting device to adjust the effective length of an antenna tuning coil, and another operator outside the darkroom simultaneously looks at a standing wave value displayed by a standing wave measuring instrument until the antenna tuning coil is adjusted to enable the standing wave of a tested antenna oscillator to be minimum, then returns the test cable to the transmitter, exits the darkroom, adjusts the transmitting power and tests. Every frequency point all needs two operators to carry out above-mentioned antenna tuning process once, and whole test procedure is spent time many, inefficiency like this, and during the debugging, the operator stands on the antenna edge moreover, and its induction action is influential to the antenna, and during the test, the operator is not on the antenna edge, and the standing wave state of antenna at this moment is different with during tuning, and this kind of difference also causes adverse effect to the test, and tuning precision receives the influence of operator's action in addition, and the repeatability is poor. Because the debugging test efficiency is low, the test frequency point cannot be too much. The test frequency points are few, the characteristics of the vehicle-mounted transmitter in the whole frequency band cannot be completely detected, and sometimes the vehicle-mounted transmitter does not meet the index requirements on the frequency points except the measurement frequency points, so that the accuracy and the effectiveness of the test result are influenced.
Disclosure of Invention
The invention provides a tuning and testing integrated radiation immunity automatic testing system, which not only requires to reduce tuning time and improve tuning and testing efficiency, avoids the influence of human bodies of operators on antennas in the tuning process, avoids the problems of poor repeatability and low tuning precision caused by manual tuning, but also can improve the accuracy and effectiveness of a test result, and does not need a special standing wave measuring instrument.
The technical scheme is as follows: the technical scheme adopted by the invention for solving the technical problems is as follows:
the invention discloses a tuning-testing integrated radiation immunity automatic test system which is characterized by comprising a test antenna oscillator, an antenna tuning coil, a coil lifting device, a coil push rod, a cable, a bidirectional coupler, a measurement control line, a forward power meter, a reflection power meter, a test power signal source and a control computer, wherein the antenna tuning coil is arranged on the test antenna oscillator; testing the antenna oscillator, the antenna tuning coil and the coil lifting device in a darkroom; the bi-directional coupler, the forward power meter, the reflection power meter, the test power signal source and the control computer are arranged outside the darkroom; the control computer is connected with the test power signal source, the forward power meter, the reflection power meter and the coil lifting device through the measurement control line; the test power signal source is connected with the input end of the bi-directional coupler, and the output end of the bi-directional coupler is connected with the antenna port of the test antenna oscillator through a cable; the forward power coupling end of the double directional coupler is connected with the forward power meter, and the reflected power coupling end of the double directional coupler is connected with the reflected power meter; the cable passes through the side wall of the darkroom through the feed-through connector on the side wall of the darkroom; the antenna tuning coil is positioned at the bottom of the antenna oscillator to be tested, and the coil lifting device can drive the coil push rod to control and change the effective length of the antenna tuning coil so as to change the resonant frequency of the antenna oscillator to be tested;
the tuning test of the tuning test integrated radiation immunity automatic test system comprises the following steps;
step 1: starting a test power signal source, wherein the output power of the test power signal source is not excessive, so that the test equipment is prevented from being burnt due to large antenna emission, and a control computer sets the frequency of the test power signal source as a test frequency point;
step 2: the control computer drives the coil push rod by the coil lifting device through a measurement control line, so that the effective length of the antenna tuning coil is minimum;
and step 3: the control computer reads the power value P of the forward power meter at the momentfAnd power value P of reflected power meterrThen, the reflection coefficient amplitude R at the moment is calculated according to the following formula and is stored in a control computer,
in the above formula CfIs the forward coupling coefficient of the bi-directional coupler, is the reflection coupling coefficient;
and 4, step 4: if the calculated reflection coefficient amplitude does not meet the test requirement, the control computer enables the coil lifting device to drive the coil push rod through a measurement control line, so that the antenna tuning coil is sequentially advanced to a new effective length from the previous effective length in an ascending manner, and then the step 3 is carried out; otherwise, entering step 5;
and 5: controlling a computer to set the output power of a test power signal source so that the power from the test power signal source to a test antenna element is equal to the test power;
step 6: testing the immunity of the cable;
and 7: if all the test frequency points are tested, ending the test; otherwise, the control computer sets the power of the test power signal source to a smaller value, sets the frequency of the test power signal source as a new test frequency point, and enters step 2.
And a control computer is used for driving the coil push rod by the coil lifting device, changing the effective length of the antenna tuning coil and changing the working frequency of the antenna oscillator to be tested.
The cable is a cable with an amplitude stabilizing function so as to reduce the influence of cable movement on voltage standing waves.
The maximum step length of the change of the effective length of the antenna tuning coil should be such that the change of the reflection coefficient amplitude of the test antenna element is not greater than a set value when the position of the antenna tuning coil at any effective length changes the maximum step length, and the set value can be determined according to the accuracy requirement of the test, and can be set to 0.005, for example.
The test antenna element may be any tuned antenna or antenna array that can be controlled by a coil lifting device.
The tuning and testing of the system are integrated by the control computer, so that the whole process is automatically carried out without human intervention, and in the whole tuning and testing process, the connection mode of a cable is not required to be changed, and an operator is always out of a darkroom, so that the testing efficiency is improved, and the reliability of a testing result is also improved.
Since the entire tuning and testing process is under computer control, all tuning test parameters can be recorded by the computer in their positions, and these parameters can be reused on different vehicles of the same body structure.
Has the advantages that: the invention has the beneficial effects that: the tuning-testing integrated radiation immunity automatic testing system not only can greatly reduce tuning time and improve tuning and testing efficiency, but also can avoid the influence of human bodies of operators on the antenna in the tuning process, and avoid the problems of poor repeatability and low tuning precision caused by manual tuning. In addition, the system does not need a special standing wave measuring instrument, the test result is more consistent with the actual use condition, and the accuracy and the effectiveness of the test result are improved.
Drawings
Fig. 1 is a schematic diagram of an automatic radiation immunity test system integrated with tuning test according to the present invention.
There are shown a test antenna element 10, an antenna port 101, an antenna housing 102, a test power signal source 11, an antenna tuning coil 20, a coil lifting device 30, a coil pusher 31, a cable 40, a bi-directional coupler 41, an input terminal 410, an output terminal 411, a forward power coupling terminal 412, a forward power meter 413, a reflected power coupling terminal 414, a reflected power meter 415, a measurement control line 416, a darkroom 50, a feed-through connector 51 and a control computer 60.
Detailed Description
The following description of the embodiments of the present invention will be made with reference to the accompanying drawings. The specific embodiments described herein are merely illustrative of the invention and do not limit the invention to the specific embodiments; all other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present invention.
The embodiment adopted by the invention is as follows:
the tuning and testing integrated radiation immunity automatic test system is characterized by comprising a test antenna oscillator 10, an antenna tuning coil 20, a coil lifting device 30, a coil push rod 31, a cable 40, a bi-directional coupler 41, a measurement control line 416, a forward power meter 413, a reflected power meter 415, a test power signal source 11 and a control computer 60; testing the antenna element 10, the antenna tuning coil 20 and the coil lifting device 30 in a darkroom 50; the bi-directional coupler 41, the forward power meter 413, the reflected power meter 415, the test power signal source 11 and the control computer 60 are outside the darkroom 50; the control computer 60 is connected with the test power signal source 11, the forward power meter 413, the reflection power meter 415 and the coil lifting device 30 through a measurement control line 416; the test power signal source 11 is connected with the input end 410 of the bi-directional coupler, and the output end 411 of the bi-directional coupler is connected with the antenna port 101 of the test antenna element 10 through the cable 40; the forward power coupling end 412 of the dual directional coupler 41 is connected with a forward power meter 413, and the reflected power coupling end 414 of the dual directional coupler 41 is connected with a reflected power meter 415; the cable 40 passes through the wall of the dark room 50 through a feed-through connector 51 on the wall of the dark room 50; the antenna tuning coil 20 is positioned at the bottom of the test antenna element 10, and the coil lifting device 30 can drive the coil push rod 31 to control and change the effective length of the antenna tuning coil 20, so that the resonant frequency of the test antenna element 10 can be changed;
the tuning test of the tuning test integrated radiation immunity automatic test system comprises the following steps;
step 1: starting the test power signal source 11, wherein the output power of the test power signal source is not too high, so that the test equipment is prevented from being burnt due to large antenna emission, and the control computer 60 sets the frequency of the test power signal source 11 as a test frequency point;
step 2: the control computer 60 causes the coil lifting device 30 to drive the coil pusher 31 via the measurement control line 416 such that the effective length of the antenna tuning coil 20 is minimized;
and step 3: the control computer 60 reads the power value P of the forward power meter 413 at this timefAnd power value P of reflected power meter 415rThen, the reflection coefficient amplitude R at that time is calculated according to the following formula and stored in the control computer 60,
in the above formula CfIs the forward coupling coefficient of the bi-directional coupler 41, is the reflection coupling coefficient;
and 4, step 4: if the calculated reflection coefficient amplitude does not meet the test requirement, the control computer 60 causes the coil lifting device 30 to drive the coil pushing rod 31 through the measurement control line 416, causes the antenna tuning coil 20 to step from the previous effective length to the new effective length in an ascending order, and then proceeds to step 3; otherwise, entering step 5;
and 5: the control computer 60 sets the output power of the test power signal source 11 such that its power to the test antenna element 10 is equal to the test power;
step 6: testing the immunity of the cable;
and 7: if all the test frequency points are tested, ending the test; otherwise, the control computer 60 sets the power of the test power signal source 11 to a smaller value, sets the frequency of the test power signal source 11 as a new test frequency point, and enters step 2.
Using the control computer 60, the coil lifting device 30 drives the coil push rod 31 to change the effective length of the antenna tuning coil 20 and change the operating frequency of the test antenna element 10.
The cable 40 is a cable having an amplitude stabilizing function to reduce the influence of cable movement on voltage standing waves.
The maximum step length of the change of the effective length of the antenna tuning coil 20 should be such that the change of the reflection coefficient amplitude of the test antenna element 10 is not greater than a set value when the maximum step length of the change of the position of the antenna tuning coil 20 at any effective length is changed, and the set value can be determined according to the accuracy requirement of the test, and can be set to 0.005, for example.
The test antenna element 10 may be any tuning antenna or antenna array that can be controlled by a coil lifting device, and the lower part of the test antenna element 10 is an antenna housing 102 and the bottom thereof is an antenna port 101.
In order to find the effective length of the antenna tuning coil 20 corresponding to the test frequency earlier and improve the tuning efficiency, the steps 2 and 4 may be changed as follows according to the arrangement of the frequencies of the test frequency points from small to large or from large to small: step 2 is changed as follows: the control computer 60 causes the coil lifting device 30 to drive the coil pusher 31 via the measurement control line 416 so that the effective length of the antenna tuning coil 20 is maximized; step 4 is changed into: if the calculated reflection coefficient amplitude does not meet the test requirement, the control computer 60 causes the coil lifting device 30 to drive the coil pushing rod 31 through the measurement control line 416, causes the antenna tuning coil 20 to step to a new effective length in descending order from the previous effective length, and then enters step 3; otherwise, go to step 5.
In order to ensure the minimum reflection at each test frequency point, the whole tuning measurement step can be changed as follows:
step 1: starting the test power signal source 11, wherein the output power of the test power signal source is not too high, so that the test equipment is prevented from being burnt due to large antenna emission, and the control computer 60 sets the frequency of the test power signal source 11 as a test frequency point;
step 2: the control computer 60 causes the coil lifting device 30 to drive the coil pusher 31 via the measurement control line 416 such that the effective length of the antenna tuning coil 20 is minimized;
and step 3: the control computer 60 reads the power value P of the forward power meter 413 at this timefAnd power value P of reflected power meter 415rThen, the reflection coefficient amplitude R at that time is calculated according to the following formula and stored in the control computer 60,
in the above formula CfIs the forward coupling coefficient of the bi-directional coupler 41, is the reflection coupling coefficient;
and 4, step 4: if the antenna tuning coil 20 does not traverse all the effective lengths, the control computer 60 causes the coil lifting device 30 to drive the coil pusher 31 via the measurement control line 416, so that the antenna tuning coil 20 is sequentially stepped up from the previous effective length to the new effective length, and then proceeds to step 3; otherwise, entering step 5;
and 5: the control computer 60 compares the reflection coefficient amplitudes of the antenna tuning coils 20 at all effective lengths to obtain the effective length of the antenna tuning coil 20 with the smallest reflection coefficient amplitude at the test frequency;
step 6: if all the test frequency points are traversed, entering step 7, otherwise, setting the frequency of the test power signal source 11 as a new test frequency point, and entering step 2;
and 7: the control computer 60 resets the frequency of the test power signal source 11 to the first test frequency point;
and 8: the control computer 60 sets the output power of the test power signal source 11 such that its power to the test antenna element 10 is equal to the test power; the control computer 60 causes the coil lifting device 30 to drive the coil pushing rod 31 through the measurement control line 416, so that the effective length of the antenna tuning coil 20 is located at the effective length with the minimum reflection coefficient amplitude under the test frequency;
and step 9: testing the immunity of the cable;
step 10: if all the test frequency points are tested, ending the test; otherwise, the control computer 60 sets the frequency of the test power signal source 11 as a new test frequency point, and then proceeds to step 8.
Because the tuning and testing of the invention is an integrated process controlled by the control computer 60, the whole process is automatically carried out without human intervention, and in the whole tuning and testing process, the connection mode of the cable 40 is not required to be changed, and an operator is always outside the darkroom 50, thereby not only improving the testing efficiency, but also improving the reliability of the testing result.
The following table compares the time of the tuning test of the present invention to the prior art.
Existing tuning test system The invention relates to a tuning test system
Time of each test 4 hours First vehicle 0.5 hours
Prototype development Each vehicle is tuned Vehicle tuning of same body structure
Number of operators 2 1
Since the entire tuning and testing process is under the control of the computer, the tuning parameters of the tested antenna element 10 at all positions within the antenna tuning coil 20 can be recorded by the computer, and these parameters can be reused on different vehicles of the same body structure, and the testing time of subsequent vehicles can be reduced.
The system can reduce the electromagnetic compatibility design verification time or prototype use verification time by at least 87.5 percent, and save more time if the same vehicle body has more prototypes.
The present invention can be realized in light of the above.
The foregoing is illustrative of the present invention, and the principles and practical applications of the present invention are better understood and appreciated by those skilled in the art, and the present invention is not intended to be limited to the details, rather, the embodiments and examples are to be construed as broadly as the present invention includes all modifications, equivalents, improvements, and equivalents within the spirit and scope of the present invention.

Claims (4)

1. A tuning-testing integrated radiation immunity automatic test system is characterized by comprising a test antenna oscillator (10), an antenna tuning coil (20), a coil lifting device (30), a coil push rod (31), a cable (40), a bi-directional coupler (41), a measurement control line (416), a forward power meter (413), a reflection power meter (415), a test power signal source (11) and a control computer (60); testing the antenna oscillator (10), the antenna tuning coil (20) and the coil lifting device (30) in a darkroom (50); the bi-directional coupler (41), the forward power meter (413), the reflected power meter (415), the test power signal source (11) and the control computer (60) are arranged outside the darkroom (50); the control computer (60) is connected with the test power signal source (11), the forward power meter (413), the reflection power meter (415) and the coil lifting device (30) through a measurement control line (416); the test power signal source (11) is connected with the input end (410) of the bi-directional coupler, and the output end (411) of the bi-directional coupler is connected with the antenna port (101) of the test antenna element (10) through a cable (40); a forward power coupling end (412) of the double directional coupler (41) is connected with a forward power meter (413), and a reflected power coupling end (414) of the double directional coupler (41) is connected with a reflected power meter (415); the cable (40) passes through the side wall of the camera chamber (50) through a feed-through connector (51) on the side wall of the camera chamber (50); the antenna tuning coil (20) is positioned at the bottom of the antenna element (10) to be tested, and the coil lifting device (30) can drive the coil push rod (31) to control and change the effective length of the antenna tuning coil (20), so that the resonant frequency of the antenna element (10) to be tested can be changed;
the tuning test of the tuning test integrated radiation immunity automatic test system comprises the following steps;
step 1: starting a test power signal source (11), wherein the output power of the test power signal source is not excessive, so that the test equipment is prevented from being burnt due to large antenna emission, and a control computer (60) sets the frequency of the test power signal source (11) as a test frequency point;
step 2: the control computer (60) enables the coil lifting device (30) to drive the coil push rod (31) through the measurement control line (416) so that the effective length of the antenna tuning coil (20) is minimum;
and step 3: the control computer (60) reads the power value P of the forward power meter (413) at this timefAnd the power value P of the reflected power meter (415)rThen, this time is calculated according to the following formulaAnd storing the reflection coefficient amplitude R in a control computer (60),
in the above formula CfIs the forward coupling coefficient of the bi-directional coupler (41) and is the reflection coupling coefficient;
and 4, step 4: if the calculated reflection coefficient amplitude does not meet the test requirement, the control computer (60) enables the coil lifting device (30) to drive the coil push rod (31) through the measurement control line (416), enables the antenna tuning coil (20) to step to a new effective length from the previous effective length in an ascending order, and then enters the step 3; otherwise, entering step 5;
and 5: the control computer (60) sets the output power of the test power signal source (11) so that the power to the test antenna element (10) is equal to the test power;
step 6: testing the immunity of the cable;
and 7: if all the test frequency points are tested, ending the test; otherwise, the control computer (60) sets the power of the test power signal source (11) to a smaller value, sets the frequency of the test power signal source (11) as a new test frequency point, and enters the step 2.
2. The automatic radiation immunity testing system integrated with tuning test as claimed in claim 1, wherein the control computer (60) is used to make the coil lifting device (30) drive the coil push rod (31) to change the effective length of the antenna tuning coil (20) and change the working frequency of the antenna element (10) to be tested.
3. An automatic testing system for radiation immunity integrated with tuning test according to claim 1, characterized in that the cable (40) is a cable with amplitude stabilization function to reduce the influence of cable movement on voltage standing wave.
4. An automatic testing system for radiation immunity of tuning and testing integration according to claim 1, characterized in that the maximum step length of the change of the effective length of the antenna tuning coil (20) is such that the change of the reflection coefficient amplitude of the test antenna element (10) is not more than a set value when the antenna tuning coil (20) changes the maximum step length at any effective length position, and the set value can be determined according to the testing accuracy requirement, such as being set to 0.005.
CN202010643832.0A 2020-07-07 2020-07-07 Tuning test integrated radiation immunity automatic test system Pending CN111669229A (en)

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Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103217607A (en) * 2013-04-08 2013-07-24 福建省产品质量检验研究院 Test device and test method for broadband radiated immunity of vehicle display device as well as application
US20130257454A1 (en) * 2012-04-02 2013-10-03 Matthew A. Mow Methods for Characterizing Tunable Radio-Frequency Elements in Wireless Electronic Devices
US20140179239A1 (en) * 2012-12-21 2014-06-26 Apple Inc. Methods and Apparatus for Performing Passive Antenna Testing with Active Antenna Tuning Device Control
CN106990311A (en) * 2017-05-22 2017-07-28 中国电子科技集团公司第四十研究所 Judge the system and method whether field strength is stablized in a kind of radiosensitivity test
CN109038858A (en) * 2014-06-13 2018-12-18 英派尔科技开发有限公司 The resonance power transmission of frequency variation coding
CN212519000U (en) * 2020-07-07 2021-02-09 南京容向测试设备有限公司 Tuning test integrated radiation immunity automatic test system

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130257454A1 (en) * 2012-04-02 2013-10-03 Matthew A. Mow Methods for Characterizing Tunable Radio-Frequency Elements in Wireless Electronic Devices
US20140179239A1 (en) * 2012-12-21 2014-06-26 Apple Inc. Methods and Apparatus for Performing Passive Antenna Testing with Active Antenna Tuning Device Control
CN103217607A (en) * 2013-04-08 2013-07-24 福建省产品质量检验研究院 Test device and test method for broadband radiated immunity of vehicle display device as well as application
CN109038858A (en) * 2014-06-13 2018-12-18 英派尔科技开发有限公司 The resonance power transmission of frequency variation coding
CN106990311A (en) * 2017-05-22 2017-07-28 中国电子科技集团公司第四十研究所 Judge the system and method whether field strength is stablized in a kind of radiosensitivity test
CN212519000U (en) * 2020-07-07 2021-02-09 南京容向测试设备有限公司 Tuning test integrated radiation immunity automatic test system

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
孙敏, 董占军: "GTEM电磁敏感度测试系统的研制", 宇航计测技术, no. 03, 25 June 2000 (2000-06-25) *

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