CN214041621U - Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position - Google Patents

Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position Download PDF

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CN214041621U
CN214041621U CN202022773999.7U CN202022773999U CN214041621U CN 214041621 U CN214041621 U CN 214041621U CN 202022773999 U CN202022773999 U CN 202022773999U CN 214041621 U CN214041621 U CN 214041621U
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air inlet
vacuum
tank body
screw
vacuum tank
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成成
谈小虎
高学林
张帆
贾子朝
郭志伟
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Research Institute of Physical and Chemical Engineering of Nuclear Industry
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Research Institute of Physical and Chemical Engineering of Nuclear Industry
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Abstract

The utility model discloses a multifunctional vacuum high-pressure sparking test system with adjustable air inlet position, which comprises a vacuum tank body test environment module, an air inlet pipeline module and a vacuum acquisition module; the vacuum tank body test environment module comprises two vacuum tank bodies which are connected through a communication pipeline, namely a main vacuum tank body and an auxiliary vacuum tank body, a balance valve is arranged on the communication pipeline, a tested power supply interface is arranged on each vacuum tank body to be connected with a tested power supply and tested equipment, a vacuumizing port is arranged on each vacuum tank body to obtain a vacuum environment, an air inlet assembly is further assembled on each vacuum tank body, the air inlet assembly is inserted into the vacuum tank bodies in a sealing mode to input air to locally destroy vacuum, and the position of an air outlet of the air inlet assembly in the vacuum tank bodies is adjustable; the utility model discloses can carry out the vacuum experiment of striking sparks under the multiple mode, the function is diversified, and the position of just admitting air can be adjusted in the course of the work, and work efficiency is high.

Description

Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position
Technical Field
The utility model relates to a high-voltage electrical technology field especially relates to a multi-functional vacuum high pressure test system that strikes sparks of position adjustable admits air.
Background
The high-voltage electric equipment is electric equipment which operates in a high-voltage environment, the application environment of the high-voltage electric equipment is a high-vacuum environment, in the practical application production, various performance parameters and the performance of resisting sparking interference when the high-vacuum degree of the high-voltage electric equipment is required to be tested, trace gas elements are stably sprayed into a high-voltage cavity through interruption, the power source sparking phenomenon under the vacuum is caused, and the continuous vacuum sparking phenomenon is caused through long-term intermittent gas supply, so that the performance of resisting sparking interference of the equipment is tested, in addition, whether the power source sparking phenomenon exists when the vacuum degree of the power source is instantaneously changed to a certain vacuum degree or not is tested, the performance is also an important performance of the high-voltage power source, and a testing device is lacked to simultaneously test the various performances.
In addition, the position and the air inlet point of the ignition in the vacuum tank in the prior art must be manually adjusted each time, which requires a process, namely, the experiment → the result → the aeration vacuum → the opening of the vacuum tank to adjust the aeration point → the adjustment of the nearest metal position → the closing of the vacuum tank → the vacuum pumping → the experiment, and the process requires 20 minutes due to the speed of the vacuum pumping, so that the single adjustment time requires more than half an hour, and manpower and material resources are wasted.
SUMMERY OF THE UTILITY MODEL
The utility model aims at providing a multi-functional vacuum high pressure test system that strikes sparks of position adjustable that admits air to the problem that lacks high voltage power supply parameter testing arrangement that exists among the prior art.
For realizing the utility model discloses a technical scheme that the purpose adopted is:
a multifunctional vacuum high-pressure sparking test system with adjustable air inlet position comprises a vacuum tank body test environment module, an air inlet pipeline module and a vacuum obtaining module;
the vacuum tank body test environment module comprises two vacuum tank bodies which are connected through a communication pipeline, namely a main vacuum tank body and an auxiliary vacuum tank body, a balance valve is arranged on the communication pipeline, a tested power supply interface is arranged on each vacuum tank body to be connected with a tested power supply and tested equipment, a vacuumizing port is arranged on each vacuum tank body to obtain a vacuum environment, an air inlet assembly is further assembled on each vacuum tank body, the air inlet assembly is inserted into the vacuum tank bodies in a sealing mode to input air to locally destroy vacuum, and the position of an air outlet of the air inlet assembly in the vacuum tank bodies is adjustable;
the air inlet pipeline module comprises an air inlet pipeline, an air inlet stop valve, a pressure sensor and a gas mass flow controller, wherein the air inlet stop valve, the pressure sensor and the gas mass flow controller are assembled on the air inlet pipeline; the air inlet pipeline is communicated with the air inlet of the air inlet assembly,
the vacuum obtaining module comprises a vacuum obtaining pipeline connected with the vacuum obtaining port, a vacuumizing control valve arranged on the vacuum obtaining pipeline, a vacuum gauge and a vacuumizing pump set communicated with the vacuum obtaining pipeline.
In the above technical scheme, two ends of the communication pipeline are respectively connected to the air inlet pipelines of the main vacuum tank body and the auxiliary vacuum tank body.
In the above technical scheme, the bottom welding of the vacuum tank body has a jar body flange, the subassembly of admitting air including be used for with jar body flange seal fixed connection's jar body adapter flange, one end wear to overlap in jar body adapter flange in and with jar body adapter flange seal connection's screw rod seat, through threaded connection in screw rod in the screw rod seat and the magnet drive assembly of adjusting the screw rod position, the screw rod seat passes through mounting and jar body adapter flange fixed connection, wherein:
the screw is hollow, one end of the screw extends into the vacuum tank body to form a gas outlet, the other end of the screw is inserted into the screw seat and is in threaded connection with the internal thread of the screw seat, a sliding sealing ring is embedded at the end part of the screw seat to seal the screw, an air inlet passage is formed at the outer end of the screw seat, and the air inlet passage is communicated with a hollow channel in the screw;
magnet drive assembly is including being fixed in first magnet piece on the screw rod with adsorb in jar body adapter flange outer second magnet piece, first magnet piece with the inside and outside relative setting of second magnet piece is in order to form the follow-up.
In the above technical solution, the gas outlet of the screw is a slot formed at an end of the screw.
In the above technical scheme, a tool contact surface is arranged on the side wall of the screw rod at a position close to the gas outlet.
In the technical scheme, a static sealing ring is embedded on an outer flange of the screw rod seat to compress the outer flange of the tank body adapter flange to form sealing. Preferably, an embedded groove is arranged in the screw rod seat, and the static sealing ring is assembled in the embedded groove
In the technical scheme, the first magnet block is fixed on one side of the edge of the screw rod by using a metal adhesive, and the second magnet block is placed on the outer side of the tank body adapter flange.
In the technical scheme, the tank body adapter flange, the screw rod seat and the screw rod are coaxially arranged.
In the technical scheme, the hollow channel in the screw seat is a stepped channel, the internal thread is formed in the minimum diameter section of the stepped channel, and the end part of the screw seat is an air inlet pipe section connecting end used for connecting an external pipeline.
In the above technical scheme, the mounting is the clamp, the screw rod seat with jar body adapter flange passes through clamp fixed connection.
In the technical scheme, a standard KF25, KF40 or KF16 interface is arranged on the screw seat to be in butt joint with the tank body adapter flange, and the static sealing ring is a KF25, KF40 or KF16 flange static sealing ring; the structure form of the tank body flange is one of CF/LF/KF flange forms, and the tank body adapter flange and the tank body flange are welded into a whole in a sealing mode and are fixed below the tank body.
In the technical scheme, the tested power interface is arranged at the top of the vacuum tank body, the gas input port is arranged at the bottom of the vacuum tank body, and the vacuumizing port is arranged on the side face of the vacuum tank body.
In the technical scheme, the air pumping control valve is an air pumping butterfly valve, and the vacuum pumping set comprises a mechanical pump and a molecular pump. The diameter of the vacuum obtaining pipe is 140-200mm, and is preferably 160 mm; the air inlet pipeline is a stainless steel pipeline with the diameter of 3-6mm, and the air inlet stop valve is a small-flow electromagnetic stop valve.
In the technical scheme, the vacuum high-pressure sparking testing device further comprises an electrical control module, wherein the electrical control module comprises a man-machine interaction unit, an embedded control circuit unit and a power supply unit, and the embedded control circuit unit is in communication connection with the man-machine interaction unit, the air inlet stop valve, the pressure sensor, the gas mass flow controller, the air pumping control valve, the vacuum gauge and a controller of the vacuum pumping pump set respectively.
In the technical scheme, the vacuum high-pressure ignition testing device further comprises a support structure, caster wheels are arranged at the bottom of the support structure, the vacuum tank body is fixed to the top of the support structure, the vacuumizing pump set is fixed to the lower portion of the support structure, and the air inlet stop valve, the pressure sensor and the gas mass flow controller are fixed to a positioning plate in the middle of the support structure.
Compared with the prior art, the beneficial effects of the utility model are that:
1. the multi-mode vacuum high-pressure sparking test system of the utility model has multiple test modes, the first one is used for carrying out the sparking experiment of high-voltage electrical equipment (high-voltage power supply) when a certain fixed flow gas is input, the second one is used for controlling the flow into step pulse flow by utilizing the air inlet pipeline and realizing uninterrupted high-repeatability supply of micro-flow pulse gas, and the test power supply continuously tests various performance parameters when sparking under high vacuum degree; thirdly, testing whether the power supply has the phenomenon of striking fire when the vacuum degree of the power supply is instantly changed to a certain vacuum degree.
2. The equipment reduces the vacuum degree to 10-4And after Pa, the gas is conveyed into the vacuum tank body by utilizing the flow precision control of the gas inlet pipeline, the local vacuum degree is destroyed, and under the condition that the power supply works normally, a user can carry out precision control on the ignition time through the ignition interval time input in the human-computer interaction unit in the control module.
3. The device can continuously test for multiple days without interrupting the ignition test, and the whole operation is reliable.
4. The device can complete the adjustment of the air inlet point without destroying the vacuum environment of the tank body through the arrangement of the air inlet assembly, namely, the adjustment of the air inlet point is completed in the working process, so that the working efficiency is greatly improved
5. In order to carry out dynamic adjustment in the condition that does not influence vacuum to the position of discharging of striking sparks, the utility model discloses used the strong magnet as the rotatory traction force of screw rod, utilized the outer second magnet piece of vacuum tank and pull with the first magnet piece on the inside screw rod to make the screw rod along the axial removal of screw rod, with adjust the air inlet position at any time in the work. The utility model discloses an air inlet assembly has good guiding performance: because threaded connection and sliding seal's fastening effect, under the condition of guaranteeing the machining precision, the utility model discloses can guarantee to remove at the radial trace of screw rod, the regional position of local striking sparks of accurate adjustment, the tooth pitch of screw thread is less, and axial displacement's position is more accurate. Specific relative displacement can be known by utilizing the thread pitch size of screw machining and the number of turns of magnet rotation, so that the sparking discharge position is accurately calculated, the air inlet position is precisely adjusted, the air inlet position is adjusted at any time in the working state of the vacuum tank body without being exposed, the time consumed by single adjustment is reduced, and the testing efficiency is improved. The utility model discloses an air inlet assembly has good sealing performance: the sliding sealing ring is positioned in the vacuum, so that the possibility of external leakage is not involved, and the sliding sealing ring ensures that the entering gas has a unique gas outlet when the height of the screw rod is dynamically adjusted, so that the vacuum degree change of a specific local area in the effective vacuum tank body can be ensured. The whole adjusting mechanism is arranged within the sealing point, so that the assembly and the sealing of each component are convenient.
Drawings
FIG. 1 is a side view of a multi-mode vacuum high pressure sparking test system.
Fig. 2 is a schematic view of a connection structure of an air inlet assembly and the vacuum tank.
FIG. 3 is a front view of a multi-mode vacuum high pressure sparking test system.
FIG. 4 is a schematic diagram of a multi-mode vacuum high pressure sparking test system.
Fig. 5 is a schematic view showing an assembly structure of the vacuum tank and the intake assembly (the first magnet block and the second magnet block are omitted).
Fig. 6 is an assembly structure diagram of the intake assembly.
FIG. 7 is a schematic illustration of an unassembled construction of the intake assembly.
Fig. 8 is a front view of the intake assembly.
In the figure: 1-tank flange, 2-tank adapter flange, 3-1-first magnet block, 3-2-second magnet block, 4-sliding sealing ring, 5-static sealing ring, 6-screw seat, 7-screw, 8-vacuum tank, 9-power interface, 10-air inlet component, 11-air inlet pipeline, 12-air inlet stop valve, 13-gas mass flow controller, 14-vacuum obtaining pipeline, 15-air pumping control valve, 16-vacuum meter, 17-mechanical pump, 18-molecular pump, 19-support structure, 20-truckle, 21-man-machine interaction unit, 22-embedded control circuit unit, 23-molecular pump controller, and 24-balance valve.
6-1-air inlet passage, 6-2-air inlet pipe section connecting end, 7-1-gas outlet and 7-2-tool contact surface.
8-1-main vacuum tank and 8-2-auxiliary vacuum tank.
Detailed Description
The present invention will be described in further detail with reference to the following drawings and specific embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention.
Example 1
A multifunctional vacuum high-pressure sparking test system with adjustable air inlet position comprises a vacuum tank body test environment module, an air inlet pipeline module and a vacuum obtaining module;
the vacuum tank test environment module comprises two vacuum tanks 8 connected through a communication pipeline, namely a main vacuum tank 8-1 and an auxiliary vacuum tank 8-2, wherein a balance valve 24 is arranged on the communication pipeline, each vacuum tank 8 is provided with a tested power supply interface 9 for connecting a tested power supply and tested equipment, each vacuum tank 8 is provided with a vacuumizing port for obtaining a vacuum environment, each vacuum tank 8 is further provided with an air inlet assembly 10, the air inlet assembly 10 is hermetically inserted into the vacuum tank 8 for inputting air to locally destroy vacuum, and the position of an air outlet 7-1 of the air inlet assembly 10 in the vacuum tank 8 is adjustable;
the air inlet pipeline module comprises an air inlet pipeline 11, and an air inlet stop valve 12, a pressure sensor and a gas mass flow controller 13 which are assembled on the air inlet pipeline 11; the inlet line 11 communicates with the gas inlet of the inlet assembly,
the vacuum obtaining module comprises a vacuum obtaining pipeline 14 connected with the vacuum obtaining port, an air-pumping control valve 15 arranged on the vacuum obtaining pipeline 14, a vacuum gauge 16 and a vacuum-pumping pump set communicated with the vacuum obtaining pipeline 14.
Preferably, two ends of the communication pipeline are respectively connected to the air inlet pipelines of the main vacuum tank body and the auxiliary vacuum tank body.
Example 2
The test method of the multi-mode vacuum high-pressure sparking test system comprises the following two modes:
mode 1: closing the balance valve V4, closing the air pumping control valve V6 on the auxiliary vacuum tank 8-2, starting the air pumping control valve V5 on the main vacuum tank 8-1, starting the air pumping pump set on the main vacuum tank 8-1, selecting the main vacuum tank to pump air, and reducing the vacuum degree to 10-4The automatic stop is carried out after Pa, the air pumping control valve V5 is closed, then the air inlet stop valve 12 on the main vacuum tank 8-1 is opened, and the user is provided with an air inlet componentThe required gas is introduced into the main vacuum tank 8-1 for experiment, and whether the vacuum ignition can be realized in the main vacuum tank 8-1 is observed, so that the power supply characteristic is tested;
or the gas mass flow controller 13 is used for controlling the gas flow to be step pulse flow, uninterrupted high-repeatability supply of micro-flow pulse gas is realized, and various performance parameters of the power supply during continuous ignition under high vacuum degree are tested;
mode 2: the system starts a vacuum pump set, opens an air pumping control valve V6 on the auxiliary vacuum tank 8-2, closes an air pumping control valve V5 on the main vacuum tank 8-1, selects the auxiliary vacuum tank to pump vacuum, and reduces the vacuum degree to 10-4And (3) automatically stopping after Pa, closing the air pumping control valve V6, then opening the air inlet stop valve 12 on the auxiliary vacuum tank 8-2, setting the required flow or vacuum degree by a user to adjust the vacuum degree of the auxiliary vacuum tank, closing the air inlet stop valve 12 on the auxiliary vacuum tank 8-2, instantly opening the balance valve V4 to quickly balance the pressure in the main vacuum tank and the auxiliary vacuum tank for experiment, and testing whether the power supply is automatically ignited under the working condition of sudden change of the vacuum degree, thereby testing the characteristics of the power supply.
Example 3
The intake assembly is explained in detail based on embodiment 1.
The gas outlet position of subassembly 10 admits air is adjustable, the welding of the bottom of the vacuum tank body has jar body flange 1, admit air the subassembly including be used for with jar body flange 1 sealed fixed connection's jar body adapter flange 2, one end wear overlap in jar body adapter flange 2 in and can with form sealed fixed connection's between the body adapter flange 2 screw base 6, through threaded connection in screw rod 7 in the screw base 6 and the magnet drive assembly of adjusting screw 7 position, wherein:
the screw 7 is hollow, one end of the screw 7 extends into the vacuum tank body to form a gas outlet 7-1, the other end of the screw is inserted into the screw seat 6 and is in threaded connection with the internal thread of the screw seat 6, a sliding seal ring 4 is embedded at the end part of the screw seat 6 to seal the screw 7, an air inlet passage 6-1 is formed at the outer end of the screw seat 6, and the air inlet passage is communicated with a hollow channel in the screw 7;
the magnet driving assembly comprises a first magnet block 3-1 fixed on the screw 7 and a second magnet block 3-2 adsorbed outside the tank body adapter flange 2, and the first magnet block 3-1 and the second magnet block 3-2 are arranged oppositely inside and outside to form follow-up.
The method of adjusting the positioning of an intake assembly as set forth in embodiment 1, comprising the steps of:
the positioning method comprises the following steps: the tank body adapter flange 2 is welded on the tank body flange 1 of the vacuum tank body, when the vacuum tank is used, silicone grease or fluorine grease is coated on the position of the sliding seal ring 4 to reduce friction, the screw rod seat 6 and the screw rod 7 are preassembled into an integral structure in a threaded mode, the preassembled integral structure is inserted into the tank body adapter flange 2, and the screw rod seat 6 is fixed on the tank body adapter flange 2;
the adjusting method comprises the following steps: gas is introduced through the gas inlet passage of the screw seat 6, passes through the hollow channel of the screw 7, enters the vacuum tank body from the gas outlet 7-1 of the screw 7, is subjected to partial vacuum exposure, when the second magnet block 3-2 is rotated outside the screw seat 6, the first magnet block 3-1 rotates along with the screw to drive the screw 7 to rotate in the screw seat 6, the screw 7 performs axial linear motion, and the position of the gas outlet 7-1 in the vacuum tank body is adjusted while the screw 7 advances and retreats.
Preferably, the gas outlet 7-1 of the screw 7 is a slot formed at an end of the screw 7, and a tool contact surface 7-2 is provided on a side wall of the screw 7 near the gas outlet 7-1 to facilitate assembling the screw 7 with a tool.
Preferably, a static sealing ring 5 is embedded on an outer flange of the screw seat 6 to press the outer flange of the tank adapter flange 2 to form a seal. When the integrated structure is inserted into the tank body adapter flange 2, the screw rod seat 6 and the tank body adapter flange 2 form sealing under the action of the static sealing ring 5.
Preferably, the first magnet block 3-1 is fixed on one side of the edge of the screw 7 by a metal adhesive, the second magnet block 3-2 is placed on the outer side of the tank adapter flange 2, the two magnet blocks attract each other, the first magnet block 3-1 can be driven by the second magnet block 3-2 to rotate, and the circular motion outside the vacuum is converted into the axial motion of the screw 7 by the screw connection mode of the screw 7 and the screw seat 6.
Preferably, the tank body adapter flange 2, the screw rod seat 6 and the screw rod 7 are coaxially arranged, so that the assembly is convenient, and the sealing degree is improved.
Preferably, an embedded groove is formed in the screw seat 6, and the static seal ring 5 is assembled in the embedded groove. The hollow channel in the screw rod seat 6 is a stepped channel, and the internal thread is formed in the minimum diameter section 6-3 of the stepped channel and has the function of anti-blocking.
Preferably, the end of the screw seat 6 is an air inlet pipe section connecting end 6-2 for connecting an external pipeline. The screw rod seat 6 with jar body adapter flange 2 passes through clamp fixed connection, and further, the outer flange of screw rod seat 6 with jar body adapter flange 2's outer flange passes through the clamp (stainless steel cutting ferrule) to be fixed together, omits the clamp in the figure. And a standard KF25, a standard KF40 or a standard KF16 interface is arranged on the screw seat 6 to be in butt joint with the tank body adapter flange 2. The static sealing ring 5 is a KF25, KF40 or KF16 flange static sealing ring, and is convenient to seal with the tank body adapter flange 2.
Example 4
Preferably, the power interface to be tested is disposed at the top of the vacuum tank 8, the gas input port is disposed at the bottom of the vacuum tank 8, and the vacuum pumping port is disposed at the side of the vacuum tank 8. The tested power interface 9 is a blind plate which can be matched with a quick-plug power supply for use, an o ring is embedded on the blind plate, and the tested power interface 9 can be covered by the blind plate to prevent ash from falling.
Preferably, the air exhaust control valve 15 is an air exhaust butterfly valve, and the vacuum pump group includes a mechanical pump 17 and a molecular pump 18. The molecular pump 18 is controlled by a molecular pump controller 23, the vacuum system is obtained and has direct relation with the diameter and the pumping speed of the vacuum obtaining pipeline 14, therefore, the vacuum obtaining pipeline 14 with the diameter of 160mm is selected for the system, when the vacuum is pumped, the mechanical pump 17 pre-pumps and the molecular pump 18 secondary pump carry out high vacuum obtaining, the pumping speed of the molecular pump 18 is 160L/S, the pumping speed of the mechanical pump 17 is 2L/S, and the ultimate vacuum reaches the limit vacuum within 20 minutes1×10-4Pa。
Preferably, the air-extracting butterfly valve is hermetically connected between the vacuum-extracting port and the vacuum-obtaining pipeline 14 through a flange O-ring, the vacuum gauge 16 is hermetically connected to the vacuum tank 8 or the vacuum-obtaining pipeline 14 through a KF flange, the vacuum-obtaining pipeline 14 is assembled through a CF high-vacuum flange, and the vacuum degree can reach 10 after testing-4Pa。
Preferably, the flow of the small-flow stop valve is less than 10SLM, the small gas inlet under high vacuum degree can generate great fluctuation to vacuum, and the gas inlet flow can not exceed 10SCCM according to the power supply test requirement, so that the pipeline selected by the gas inlet pipeline 11 is a 3 or 6mm stainless steel pipeline (preferably 316L stainless steel, and the helium mass spectrum leak detection reaches 10SCCM after the pipeline is sealed-8sccsHe), according to the flow capacity, the air inlet stop valve 12 is a small-flow electromagnetic stop valve, and the gas mass flow controller 13 is a full-scale 10SCCM product for precisely controlling the gas.
Preferably, the vacuum high-pressure sparking test device further comprises an electrical control module, wherein the electrical control module comprises a man-machine interaction unit 21, an embedded control circuit unit 22 and a power supply unit, and the embedded control circuit unit is in communication connection with the man-machine interaction unit, the air inlet stop valve 12, the pressure sensor, the gas mass flow controller 13, the vacuumizing control valve 15, the vacuum gauge 16 and a controller of the vacuumizing pump set respectively. The system can allow a user to manually set the vacuum degree and the valve opening time in addition to realize the precise automatic control of the vacuum degree. On the basis, the system can be used for programming by using configuration software, so that the operation of a user is facilitated.
Preferably, the vacuum high-pressure sparking test device further comprises a support structure 19, casters 20 are arranged at the bottom of the support structure 19, the vacuum tank 8 is fixed to the top of the support structure 19, the vacuum pump is fixed to the lower portion of the support structure 19, and the air inlet stop valve 12, the pressure sensor and the gas mass flow controller 13 are fixed to a positioning plate in the middle of the support structure 19. The stability of whole device is guaranteed, the fixed stability of each components and parts is guaranteed. The support structure 19 is integrally built by adopting 40 sectional materials, weighs 500KG, is firm and durable, can absorb vibration generated by the pump set for a long time, and does not interfere with the flow control part.
Spatially relative terms, such as "upper," "lower," "left," "right," and the like, may be used in the embodiments for ease of description to describe one element or feature's relationship to another element or feature as illustrated in the figures. It will be understood that the spatial terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements described as "below" other elements or features would then be oriented "above" the other elements or features. Thus, the exemplary term "lower" can encompass both an upper and a lower orientation. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
Moreover, relational terms such as "first" and "second," and the like, may be used solely to distinguish one element from another element having the same name, without necessarily requiring or implying any actual such relationship or order between such elements.
The foregoing is only a preferred embodiment of the present invention, and it should be noted that, for those skilled in the art, a plurality of modifications can be made without departing from the principle of the present invention, and these modifications should also be regarded as the protection scope of the present invention.

Claims (15)

1. A multifunctional vacuum high-pressure sparking test system with adjustable air inlet position is characterized by comprising a vacuum tank test environment module, an air inlet pipeline module and a vacuum obtaining module;
the vacuum tank body test environment module comprises two vacuum tank bodies which are connected through a communication pipeline, namely a main vacuum tank body and an auxiliary vacuum tank body, a balance valve is arranged on the communication pipeline, a tested power supply interface is arranged on each vacuum tank body to be connected with a tested power supply and tested equipment, a vacuumizing port is arranged on each vacuum tank body to obtain a vacuum environment, an air inlet assembly is further assembled on each vacuum tank body, the air inlet assembly is inserted into the vacuum tank bodies in a sealing mode to input air to locally destroy vacuum, and the position of an air outlet of the air inlet assembly in the vacuum tank bodies is adjustable;
the air inlet pipeline module comprises an air inlet pipeline, an air inlet stop valve, a pressure sensor and a gas mass flow controller, wherein the air inlet stop valve, the pressure sensor and the gas mass flow controller are assembled on the air inlet pipeline; the air inlet pipeline is communicated with the air inlet of the air inlet assembly,
the vacuum obtaining module comprises a vacuum obtaining pipeline connected with the vacuum obtaining port, a vacuumizing control valve arranged on the vacuum obtaining pipeline, a vacuum gauge and a vacuumizing pump set communicated with the vacuum obtaining pipeline.
2. The multifunctional vacuum high-pressure ignition test system with the adjustable air inlet position as claimed in claim 1, wherein two ends of the communication pipeline are respectively connected to the air inlet pipelines of the main vacuum tank and the auxiliary vacuum tank.
3. The multifunctional vacuum high-pressure ignition testing system with the adjustable air inlet position as claimed in claim 1, wherein a tank body flange is welded at the bottom of the vacuum tank body, the air inlet assembly comprises a tank body adapter flange fixedly connected with the tank body flange in a sealing manner, a screw seat with one end sleeved in the tank body adapter flange in a penetrating manner and connected with the tank body adapter flange in a sealing manner, a screw connected in the screw seat through threads, and a magnet driving assembly for adjusting the position of the screw, the screw seat is fixedly connected with the tank body adapter flange through a fixing member, wherein:
the screw is hollow, one end of the screw extends into the vacuum tank body to form a gas outlet, the other end of the screw is inserted into the screw seat and is in threaded connection with the internal thread of the screw seat, a sliding sealing ring is embedded at the end part of the screw seat to seal the screw, an air inlet passage is formed at the outer end of the screw seat, and the air inlet passage is communicated with a hollow channel in the screw;
magnet drive assembly is including being fixed in first magnet piece on the screw rod with adsorb in jar body adapter flange outer second magnet piece, first magnet piece with the inside and outside relative setting of second magnet piece is in order to form the follow-up.
4. The multifunctional vacuum high pressure sparking test system with adjustable air inlet position of claim 3, characterized in that the air outlet of the screw is a slot formed at the end of the screw.
5. The multifunctional vacuum high pressure sparking test system with adjustable gas inlet position of claim 3, characterized in that the side wall of the screw is provided with a tool contact surface near the gas outlet.
6. The multifunctional vacuum high-pressure ignition test system with the adjustable air inlet position as claimed in claim 3, wherein a static seal ring is embedded on an outer flange of the screw seat to press the outer flange of the tank body adapter flange to form sealing, an embedded groove is arranged in the screw seat, and the static seal ring is assembled in the embedded groove.
7. The multifunctional vacuum high pressure sparking test system with adjustable air inlet position as claimed in claim 3, wherein the first magnet block is fixed to one side of the screw edge by metal adhesive, and the second magnet block is placed outside the tank body adapter flange.
8. The multifunctional vacuum high-pressure ignition test system with the adjustable air inlet position as claimed in claim 3, wherein the tank body adapter flange, the screw seat and the screw are coaxially arranged.
9. The multifunctional vacuum high pressure sparking test system with adjustable air inlet position of claim 3, characterized in that the hollow channel in the screw seat is a stepped channel, the internal thread is formed in the smallest diameter section of the stepped channel, and the end of the screw seat is an air inlet pipe section connecting end for connecting an external pipeline.
10. The multifunctional vacuum high pressure ignition test system with adjustable air inlet position as claimed in claim 3, wherein the fixing member is a clamp, and the screw seat is fixedly connected with the tank adapter flange through the clamp.
11. The multifunctional vacuum high-pressure sparking test system with adjustable air inlet positions as claimed in claim 6, wherein the screw seat is provided with a standard KF25, KF40 or KF16 interface for butt joint with the tank body adapter flange, and the static seal ring is a KF25, KF40 or KF16 flange static seal ring; the structure form of the tank body flange is one of CF/LF/KF flange forms, and the tank body adapter flange and the tank body flange are welded into a whole in a sealing mode and are fixed below the tank body.
12. The multifunctional vacuum high-pressure ignition test system with the adjustable air inlet position as claimed in claim 1, wherein the tested power interface is arranged at the top of the vacuum tank, the gas inlet is arranged at the bottom of the vacuum tank, and the vacuumizing port is arranged at the side of the vacuum tank.
13. The multifunctional vacuum high-pressure ignition test system with adjustable air inlet position as claimed in claim 1, wherein the air-pumping control valve is an air-pumping butterfly valve, and the air-pumping pump group comprises a mechanical pump and a molecular pump; the diameter of the vacuum obtaining pipe is 140-200 mm; the air inlet pipeline is a stainless steel pipeline with the diameter of 3-6mm, and the air inlet stop valve is a small-flow electromagnetic stop valve.
14. The multifunctional vacuum high-pressure sparking test system with adjustable air inlet positions as claimed in claim 1, wherein the vacuum high-pressure sparking test device further comprises an electrical control module, the electrical control module comprises a man-machine interaction unit, an embedded control circuit unit and a power supply unit, and the embedded control circuit unit is respectively in communication connection with the man-machine interaction unit, the air inlet stop valve, the pressure sensor, the gas mass flow controller, the vacuumizing control valve, the vacuum gauge and the controller of the vacuumizing pump set.
15. The multifunctional vacuum high-pressure sparking test system with adjustable air inlet positions as claimed in claim 1, wherein the vacuum high-pressure sparking test device further comprises a support structure, casters are arranged at the bottom of the support structure, the vacuum tank body is fixed at the top of the support structure, the vacuumizing pump set is fixed at the lower part of the support structure, and the air inlet stop valve, the pressure sensor and the gas mass flow controller are fixed on a positioning plate at the middle part of the support structure.
CN202022773999.7U 2020-11-25 2020-11-25 Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position Active CN214041621U (en)

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CN202022773999.7U CN214041621U (en) 2020-11-25 2020-11-25 Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202022773999.7U CN214041621U (en) 2020-11-25 2020-11-25 Multifunctional vacuum high-pressure sparking test system with adjustable air inlet position

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CN214041621U true CN214041621U (en) 2021-08-24

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