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CN213847454U - A shielding device for electromagnetic environment monitoring system - Google Patents

A shielding device for electromagnetic environment monitoring system Download PDF

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Publication number
CN213847454U
CN213847454U CN202022596258.6U CN202022596258U CN213847454U CN 213847454 U CN213847454 U CN 213847454U CN 202022596258 U CN202022596258 U CN 202022596258U CN 213847454 U CN213847454 U CN 213847454U
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China
Prior art keywords
shielding
monitoring system
environment monitoring
electromagnetic environment
flange
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Expired - Fee Related
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CN202022596258.6U
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Chinese (zh)
Inventor
刘奇
苏晓明
刘晔
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Xinjiang Astronomical Observatory of CAS
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Xinjiang Astronomical Observatory of CAS
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Priority to CN202022596258.6U priority Critical patent/CN213847454U/en
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Abstract

The utility model relates to a shield assembly for electromagnetic environment monitoring system, including outdoor shielding filtering subassembly, indoor shielding filtering subassembly and respectively with the electrically conductive sealing connection's of outdoor shielding filtering subassembly and indoor shielding filtering subassembly coupling assembling, coupling assembling comprises a plurality of flange formula stainless steel hose end to end. The utility model discloses can realize high performance electromagnetic shield, adopt flange formula stainless steel hose assembly to realize the communication interconnection between the electronic equipment simultaneously, reduce filtering connector's use amount by a wide margin, improve system reliability. Furthermore, the utility model discloses a shield assembly commonality is good, easily realize, with low costs, has stronger engineering using value.

Description

Shielding device for electromagnetic environment monitoring system
Technical Field
The utility model relates to a radio astronomy electromagnetic environment measures and electromagnetic protection technical field, more specifically relates to a shield assembly for electromagnetic environment monitoring system.
Background
The large-aperture radio telescope has extremely high system sensitivity and continuous observation frequency coverage, such as 100MHz-6 GHz. However, electromagnetic interference generated by various electronic devices inside and outside a site can affect radio astronomical observation, for example, a radio frequency antenna, an antenna rotation controller, a temperature and humidity sensor module, a microwave link control module, a signal acquisition and processing terminal, a control computer, a motor controller, a network switch and the like are involved in an electromagnetic environment monitoring system, communication interconnection among the devices involves a network cable, an RS485/232 signal control line, a direct current/alternating current power line, a radio frequency cable, a motor control signal line and the like, and electromagnetic interference generated by related electronic devices is transmitted through space radiation and cable conduction, so that radio astronomical observation service is affected. Therefore, in order to alleviate the influence of electromagnetic interference of the electromagnetic environment monitoring system of the radio astronomical site on radio astronomical observation and improve the reliability of the system, the electromagnetic protection of the electromagnetic environment monitoring system is very important.
However, the existing electromagnetic environment monitoring system usually ignores its electromagnetic compatibility design and electromagnetic protection, for example, the electromagnetic environment monitoring system adopted by radio monitoring centers in various provinces, and the electromagnetic environment measurement standards for civil and military use do not require the electromagnetic compatibility design and electromagnetic protection of the measurement system itself, because such electromagnetic environment measurement systems mostly perform short-time measurement (completed within 1 week), the system composition is relatively simple, and therefore the electromagnetic protection design of the system is not considered. The electromagnetic environment requirement of the radio astronomical site is extremely high, the electromagnetic environment monitoring system relates to electronic equipment and numerous interconnected cables, most of the existing monitoring systems only perform local electromagnetic protection, and the shielding efficiency is low (lower than 30dB), for example, a magnetic ring is used on a communication cable, the cable is directly inserted into a shielding cabinet and the like, the system does not consider the shielding and filtering of each link, or various cables of indoor and outdoor electronic equipment are exposed and leaked outside and are connected through a filtering connector, so that the use amount of various signal filters and power filters is increased, and the overall cost is increased. High-performance electromagnetic protection (greater than 60dB) has great challenges, and a systematic electromagnetic compatibility design needs to be developed by combining system communication interconnection characteristics so as to greatly relieve radiation emission and conducted emission and further effectively inhibit the influence of self electromagnetic interference on radio astronomical observation. Therefore, the electromagnetic shielding device with high universality, high reliability and high performance is developed aiming at the electromagnetic environment monitoring system of the radio astronomical site, and has extremely high engineering application value.
SUMMERY OF THE UTILITY MODEL
For solving the problem among the above-mentioned prior art, the utility model provides a shield assembly for electromagnetic environment monitoring system can reduce the influence that electromagnetic interference of electromagnetic environment monitoring system self surveyed the radio astronomy to reduce the cost.
The utility model provides a pair of a shield assembly for electromagnetic environment monitoring system, including outdoor shielding filtering subassembly, indoor shielding filtering subassembly and respectively with outdoor shielding filtering subassembly and the electrically conductive sealing connection's of indoor shielding filtering subassembly coupling assembling, coupling assembling comprises a plurality of flange formula stainless steel hose end to end.
Further, the outdoor shielding and filtering assembly comprises a shielding box, and a radio frequency connector, a signal filter and a first optical fiber waveguide which are arranged on the outer surface of the shielding box.
Further, the surfaces of the radio frequency connector, the signal filter and the first optical fiber waveguide tube are provided with a first conductive sealing gasket, and the surface of the first conductive sealing gasket, which is in contact with the outer surface of the shielding box, is conductive.
Further, the flange type stainless steel hose of the connecting assembly is in conductive sealing connection with the shielding box.
Furthermore, the flange type stainless steel hose comprises a first flange, a stainless steel hose fixedly connected with the first flange and a second flange fixedly connected with the stainless steel hose.
Preferably, a sealing groove is formed in the first flange, and a second conductive sealing gasket is installed in the sealing groove.
Preferably, the first flange and the second flange are both provided with a sealing groove, and a second conductive sealing gasket is installed in the sealing groove.
Further, the indoor shielding filter assembly comprises a shielding cabinet, and a power filter and a second optical fiber waveguide which are installed on the outer surface of the shielding cabinet.
Further, the surfaces of the power filter and the second fiber waveguide are provided with a third conductive sealing gasket, and the side of the third conductive sealing gasket, which is in contact with the shielding cabinet, is conductive.
Further, the flange type stainless steel hose is connected with the shielding cabinet in a conductive and sealing mode.
The utility model discloses a shield assembly for electromagnetic environment monitoring system can realize high performance electromagnetic shield, adopts flange formula stainless steel hose assembly to realize the communication interconnection between the electronic equipment simultaneously, reduces filtering connector's use amount by a wide margin, improves system reliability. Furthermore, the utility model discloses a shield assembly commonality is good, easily realize, with low costs, has stronger engineering using value.
Drawings
Fig. 1 is a schematic structural diagram of a shielding device for an electromagnetic environment monitoring system according to the present invention.
Fig. 2 is a schematic structural view of the first flange of fig. 1.
Fig. 3 is a schematic structural view of the second flange of fig. 1.
Fig. 4 is a schematic layout of the components and cables inside the shielding device for the electromagnetic environment monitoring system according to the present invention.
Detailed Description
The following description of the preferred embodiments of the present invention will be made with reference to the accompanying drawings.
As shown in fig. 1, the shielding apparatus for electromagnetic environment monitoring system according to a preferred embodiment of the present invention includes an outdoor shielding filter assembly 10, a connection assembly 20 connected to the outdoor shielding filter assembly 10, and an indoor shielding filter assembly 30 connected to the connection assembly 20, that is, the connection assembly 20 is used to connect the outdoor shielding filter assembly 10 and the indoor shielding filter assembly 30 together.
The outdoor shielding filter assembly 10 includes a shielding box 11, a radio frequency connector 12, a signal filter 13, and a first fiber waveguide 14. The surfaces of the radio frequency connector 12, the signal filter 13 and the optical fiber waveguide 14 are all provided with first conductive sealing gaskets 15, and the radio frequency connector 12, the signal filter 13 and the optical fiber waveguide 14 are mounted on the outer surface of the shielding box 11 through the first conductive sealing gaskets 15, so that the radio frequency connector 12, the signal filter 13 and the optical fiber waveguide 14 can be electrically connected with electronic equipment arranged inside the outdoor shielding and filtering component 10, and electromagnetic leakage at a mounting interface is inhibited. The first conductive gasket 15 is attached to the outer surface of the shield case 11, and the surface thereof in contact with the outer surface of the shield case 11 is conductive. The shielding box 11 is made of metal, and the material thereof can adopt common and easily available stainless steel, aluminum, copper and common steel plates. Considering factors such as outdoor environment, the preparation degree of difficulty, cost, in this embodiment, selecting stainless steel and aluminium for use is more suitable, this is because aluminium and ordinary steel sheet rust easily, and the easy rust of other device connection contact surface, and the performance will descend after rustting.
The outdoor shielding filter assembly 10 inhibits the radiation emission of internal electromagnetic interference through the shielding box 11, and inhibits the transmission of electromagnetic waves to the outside through the cable conduction through the radio frequency connector 12, the signal filter 13 and the optical fiber waveguide 14, thereby effectively inhibiting the electromagnetic interference source inside.
The connecting assembly 20 is composed of a plurality of flange-type stainless steel hoses 21, each flange-type stainless steel hose 21 comprises a first flange 22, a stainless steel hose 23, a second flange 24 and a second conductive sealing gasket 25, and the stainless steel hoses 23 are fixedly connected with the first flange 22 and the second flange 24. As shown in fig. 2, the first flange 22 is provided with a sealing groove 26 and a plurality of mounting holes 27, and the second conductive sealing gasket 25 is mounted in the sealing groove 26 to achieve sealing and shielding functions. As shown in fig. 3, the second flange 24 has no sealing groove, and can be in conductive sealing lap joint with the first flange 22 of another flange type stainless steel hose. It should be noted that in other embodiments, the second flange 24 may be provided with a sealing groove and a conductive sealing gasket mounted therein.
The flange type stainless steel hose is convenient to install, has high shielding performance, can penetrate various cables, does not need to consider the filtering suppression of electronic equipment inside an outdoor shielding filtering assembly and electronic equipment communication cables inside an indoor shielding filtering assembly, reduces the using amount of a filtering connector, can improve the reliability of a system, and reduces the cost of the system. The stainless steel hose with the proper length and diameter can be selected according to the type and the number of cables and the convenience of wiring, and the stainless steel hose is low in price and good in universality.
The indoor shielding and filtering assembly 30 includes a shielding cabinet 31, a power filter 32 and a second fiber waveguide 33, wherein the shielding cabinet 31 is made of metal, and the material of the shielding cabinet 31 may be common and readily available stainless steel, aluminum, copper, common steel plate, and the like. The surfaces of the power filter 32 and the second optical fiber waveguide 33 are provided with third conductive sealing gaskets 34, the power filter 32 and the second optical fiber waveguide 33 are mounted on the outer surface of the shielding cabinet 31 through the third conductive sealing gaskets 34, so that conductive sealing connection among the power filter 32, the optical fiber waveguide 33 and the shielding cabinet 31 is realized, electromagnetic leakage at a mounting interface is inhibited, and high-performance electromagnetic shielding is realized. It should be noted that the third conductive sealing gasket 34 is mounted on the outer surface of the shielding cabinet 31, the surface of the shielding cabinet 31 in contact with the third conductive sealing gasket is conductive, and the shielding cabinet 31 has a ground terminal.
The indoor shielding filter assembly 30 suppresses radiation emission of internal electronic equipment through the shielding cabinet 31, and can largely suppress electromagnetic interference from being radiated to the outside through cable conduction after the power filter 32 and the second optical fiber waveguide 33 are installed, thereby realizing high-performance electromagnetic shielding.
The following will further explain the arrangement of the internal devices and cables of the shielding device of the present invention when applied to the electromagnetic environment monitoring system with reference to fig. 4.
The electronic device disposed inside the shielding box 11 includes an amplifier 41, a microwave switch 42 and a data acquisition and circuit control module 43, wherein the amplifier 41 is electrically connected to the microwave switch 42, and the microwave switch 42 is electrically connected to the data acquisition and circuit control module 43.
When the electromagnetic environment monitoring system works, the multi-channel radio frequency antenna 51 with different frequency bands is selected according to the requirement of measuring frequency, and the radio frequency antenna 51 is connected with the radio frequency connector 12 through the radio frequency cable 52 to transmit radio frequency signals. After entering the interior of the shielding box 11 through the rf connector 12, the rf cable 52 is connected to the amplifier 41 and the microwave switch 42 in sequence, so that the signal in the rf cable 52 is amplified, and multiple paths of rf cables enter the microwave switch 42. An external sensor 53 (for example, a temperature sensor, a humidity sensor, a wind speed sensor, a stress deformation sensor, etc.) is connected to the signal filter 13 through a signal line 54, and the signal line 54 enters the interior of the shielding box 11 through the signal filter 13 and is connected to the data acquisition and circuit control module 43, so as to realize data acquisition. The optical fiber sensor 55 is connected with the optical fiber waveguide 14 through an optical fiber 56, and the optical fiber 56 enters the interior of the shielding box 11 through the optical fiber waveguide 14 and is connected to the data acquisition and circuit control module 43. The data acquisition and circuit control module 43 controls the microwave switch 42 to select different microwave links, so as to select different rf antenna signal links, and transmit the selected rf antenna signal links to the data processing terminal 61 inside the indoor shielding and filtering component 300.
The cables of the microwave switch 42 and the data acquisition and circuit control module 43 pass through the flanged stainless steel hose 21 and are connected to the corresponding electronic equipment inside the shielded cabinet 31. Note that, the flange-type stainless steel hose 21, the shield case 11, and the shield cabinet 31 are fixedly connected by screws through conductive seal gaskets.
The electronic device disposed inside the shielded enclosure 31 includes a data processing terminal 61, a circuit control module 62, a computer 63, an Uninterruptible Power Supply (UPS) system 64, a voltage stabilizing module 65, and a network switch 66, wherein the data processing terminal 61, the circuit control module 62, and the computer 63 are connected to the UPS system 64 and to the network switch 66, and the UPS system 64 is connected to the voltage stabilizing module 65. The cable from the microwave switch 42 is connected with the data processing terminal 61, and the cable from the data acquisition and circuit control module 43 is connected with the data processing terminal 61, the circuit control module 62 and the computer 63.
When the electromagnetic environment monitoring system works, an external power line 71 enters the interior of the shielding cabinet 31 through the power filter 32, is connected to the voltage stabilizing module 65, and supplies power to all electronic equipment in the interior of the shielding cabinet 31. External network fibers 72 enter the interior of the shielded enclosure 31 through fiber optic waveguide 33 and connect to network switch 66 to provide a network for the various electronic devices inside the shielded enclosure 31.
The utility model discloses a shield assembly for electromagnetic environment monitoring system can realize high performance electromagnetic shield, adopts flange formula stainless steel hose subassembly to realize the communication interconnection between the electronic equipment, reduces filtering connector's use amount by a wide margin, improves system reliability (the device between the electronic equipment is less more, and system reliability is higher). In addition, the electromagnetic shielding device has good universality, easy realization, low cost and stronger engineering application value.
What has been described above is only the preferred embodiment of the present invention, not for limiting the scope of the present invention, but various changes can be made to the above-mentioned embodiment of the present invention. All the simple and equivalent changes and modifications made according to the claims and the content of the specification of the present invention fall within the scope of the claims of the present invention. The present invention is not described in detail in the conventional technical content.

Claims (10)

1.一种用于电磁环境监测系统的屏蔽装置,其特征在于,包括户外屏蔽滤波组件、室内屏蔽滤波组件以及分别与所述户外屏蔽滤波组件和室内屏蔽滤波组件导电密封连接的连接组件,所述连接组件由若干法兰式不锈钢软管首尾相接构成。1. a shielding device for an electromagnetic environment monitoring system is characterized in that, comprising an outdoor shielding filter assembly, an indoor shielding filter assembly, and a connection assembly that is conductively and sealed with the outdoor shielding filter assembly and the indoor shielding filter assembly respectively, so The connecting assembly is composed of several flanged stainless steel hoses connected end to end. 2.根据权利要求1所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述户外屏蔽滤波组件包括屏蔽盒和安装于所述屏蔽盒的外表面的射频连接器、信号滤波器以及第一光纤波导管。2 . The shielding device for an electromagnetic environment monitoring system according to claim 1 , wherein the outdoor shielding filter assembly comprises a shielding box, a radio frequency connector and a signal filter mounted on the outer surface of the shielding box. 3 . and a first fiber optic waveguide. 3.根据权利要求2所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述射频连接器、所述信号滤波器和所述第一光纤波导管的表面设置有第一导电密封衬垫,且所述第一导电密封衬垫与所述屏蔽盒外表面接触的那一面导电。3 . The shielding device for an electromagnetic environment monitoring system according to claim 2 , wherein the surfaces of the radio frequency connector, the signal filter and the first optical fiber waveguide are provided with a first conductive seal. 4 . A gasket, and the side of the first conductive sealing gasket in contact with the outer surface of the shielding box is conductive. 4.根据权利要求3所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述连接组件的法兰式不锈钢软管与所述屏蔽盒导电密封连接。4 . The shielding device for an electromagnetic environment monitoring system according to claim 3 , wherein the flange-type stainless steel hose of the connection assembly is electrically and hermetically connected to the shielding box. 5 . 5.根据权利要求1或4所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述法兰式不锈钢软管包括第一法兰、与所述第一法兰固接的不锈钢软管以及与所述不锈钢软管固接的第二法兰。5. The shielding device for an electromagnetic environment monitoring system according to claim 1 or 4, wherein the flanged stainless steel hose comprises a first flange, a stainless steel fixed to the first flange A hose and a second flange fixedly connected with the stainless steel hose. 6.根据权利要求5所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述第一法兰上设有密封槽,所述密封槽内安装有第二导电密封衬垫。6 . The shielding device for an electromagnetic environment monitoring system according to claim 5 , wherein a sealing groove is provided on the first flange, and a second conductive sealing gasket is installed in the sealing groove. 7 . 7.根据权利要求5所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述第一法兰和第二法兰上均开设有密封槽,所述密封槽内安装有第二导电密封衬垫。7 . The shielding device for an electromagnetic environment monitoring system according to claim 5 , wherein the first flange and the second flange are both provided with sealing grooves, and a second flange is installed in the sealing groove. 8 . Conductive sealing gasket. 8.根据权利要求1所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述室内屏蔽滤波组件包括屏蔽柜以及安装于所述屏蔽柜外表面的电源滤波器和第二光纤波导管。8 . The shielding device for an electromagnetic environment monitoring system according to claim 1 , wherein the indoor shielding filter assembly comprises a shielding cabinet, a power filter and a second optical fiber waveguide installed on the outer surface of the shielding cabinet. 9 . Tube. 9.根据权利要求8所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述电源滤波器和所述第二光纤波导管的表面设置有第三导电密封衬垫,且所述第三导电密封衬垫与所述屏蔽柜接触的那一面导电。9 . The shielding device for an electromagnetic environment monitoring system according to claim 8 , wherein a third conductive sealing gasket is provided on the surfaces of the power filter and the second optical fiber waveguide, and the The side of the third conductive sealing gasket in contact with the shielding cabinet is conductive. 10.根据权利要求8所述的用于电磁环境监测系统的屏蔽装置,其特征在于,所述法兰式不锈钢软管与所述屏蔽柜导电密封连接。10 . The shielding device for an electromagnetic environment monitoring system according to claim 8 , wherein the flanged stainless steel hose is electrically and sealedly connected to the shielding cabinet. 11 .
CN202022596258.6U 2020-11-11 2020-11-11 A shielding device for electromagnetic environment monitoring system Expired - Fee Related CN213847454U (en)

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Application Number Priority Date Filing Date Title
CN202022596258.6U CN213847454U (en) 2020-11-11 2020-11-11 A shielding device for electromagnetic environment monitoring system

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CN202022596258.6U CN213847454U (en) 2020-11-11 2020-11-11 A shielding device for electromagnetic environment monitoring system

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112261862A (en) * 2020-11-11 2021-01-22 中国科学院新疆天文台 A shielding device for electromagnetic environment monitoring system

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112261862A (en) * 2020-11-11 2021-01-22 中国科学院新疆天文台 A shielding device for electromagnetic environment monitoring system

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Granted publication date: 20210730