Vacuum degree detection device with buried electrodes in vacuum interrupter and method thereof
20220415595 ยท 2022-12-29
Inventors
- Hui Ma (Xi'an, CN)
- Dianyu Chi (Xi'an, CN)
- Yu Du (Xi'an,, CN)
- Jingyu Shen (Xi'an, CN)
- Yingsan Geng (Xi'an, CN)
- Jianhua Wang (Xi'an, CN)
- Zhiyuan Liu (Xi'an, CN)
Cpc classification
H01H2300/03
ELECTRICITY
International classification
Abstract
A vacuum degree detection device with buried electrodes in a vacuum interrupter and a method thereof are provided. The vacuum degree wireless detection device includes two parts, wherein a first part is provided inside the vacuum interrupter, including buried electrodes, etc., wherein the buried electrodes are welded on an end cover of the vacuum interrupter; a second part is the external detection device after the arc interrupter is processed, including: detection and calculation components, wireless transmitters, rechargeable energy storage batteries, wireless charging coils, etc. The external detection device and the buried electrode structure is designed separately, and the buried structure such as the buried electrodes can be processed as a whole with the vacuum interrupter. During the detection, the external detection device is installed above the buried electrode structure.
Claims
1. A vacuum degree detection device with buried electrodes in a vacuum interrupter, wherein: the vacuum degree detection device is provided on an end cover of the vacuum interrupter (203), and comprises a buried electrode structure (202) and an external detection device (201); the buried electrode structure (202) comprises a ceramic insulator (107), a buried central emitting electrode (108) and a buried receiving electrode (109) that penetrate and are welded on the ceramic insulator (107); ends of the buried receiving electrode (109) are welded with receiving electrode grids (110); a bottom of the ceramic insulator (107) is welded with an inner shield (111) and an outer shield (112) with a hole structure; the external detection device (201) is installed after the vacuum interrupter is processed, and comprises: an external detection shell shielding structure (104); a wireless transmitting device (101) fixed on a top of the external detection shell shielding structure (104); and a wireless charging coil (103) welded on the outer wall of the shielding structure (104) of the external detection shell; wherein the wireless charging coil (103) is connected to the charging/storing battery (102) on the inner upper side of the shielding structure (104) of the external detection shell through wires; the charging/storing battery (102) supplies power to a detection and calculation component (105) placed below through the wire; an electrode connection terminal (106) is installed at a lower part of the detection and calculation component (105); the detection and calculation component (105) comprises an oscillator, a bridge, a current sensor, a voltage sensor, an integrator, a reference, a buffer, an amplifier and a data processor; wherein the charging/storing battery (102) is followed by an oscillator and bridge connected in sequence, a first end of the bridge is connected to the buried central emitting electrode (108), a second end of the bridge is connected to the buried receiving electrode (109), the bridge and the buried electrode structure (202) form a loop, the current sensor is connected in series in the loop, and the voltage sensor is connected in parallel in the loop; the integrator is connected to the current sensor, the voltage sensor and the reference device; the reference device is connected to the buffer and amplifier, and the data processor in turn; the external detection device (201) and the buried electrode structure (202) are designed in a separate manner, and all the components included in the buried electrode structure (202) are processed into a whole with the vacuum interrupter; when applying the detection, the electrode connection terminals (106) under the detection and calculation component (105) in the external detection device (201) are matched and installed with the buried central emitting electrode (108) and the buried receiving electrode (109) in the buried electrode structure (202).
2. The vacuum degree detection device with the buried electrodes in the vacuum interrupter, as recited in claim 1, wherein terminals of the buried central emitting electrode (108) has an axisymmetric multi-pole tip structure, which acts as an electron emitter during the vacuum degree measurement process; the receiving electrode grid (110) at the end of the buried receiving electrode (109) is a cylindrical structure arranged on the periphery of the multi-pole tip structure at the end of the buried central emitting electrode (108), and is used as a receiving electrode for electrons during the measurement process; an amount of buried receiving electrodes (109) is at a range of 2-6; a distance d between the multi-pole tip structure at the end of the buried central emitting electrode (108) and an inner wall of the receiving electrode grid (110) is in a range of 0.01 mm-5 mm.
3. The vacuum degree detection device with the buried electrodes in the vacuum interrupter, as recited in claim 1, wherein: both the inner shield (111) and the outer shield (112) have hole-shaped structures; the inner shield (111) is covered by the outer shield (112); a hole of the inner shielding cover (111) and a hole of the outer shield (112) are in staggered arrangement, and electrons and particles cannot simultaneously pass through the inner shield (111) and the outer shield (112) through linear motion; and a material of the inner shield (111) is a magnet-conductive metal material, and a material of the outer shield (112) is a non-magnetic metal material; or the material of the inner shield (111) is a non-magnetic metal material, and the material of the outer shield (112) is a magnet-conductive metal material.
4. The vacuum degree detection device with the buried electrodes in the vacuum interrupter, as recited in claim 1, wherein the wireless charging coil (103) is in a ring structure or a circular structure; a normal direction of the wireless charging coil (103) is tangent to a concentric circle of the conductive rod of the vacuum interrupter.
5. The vacuum degree detection device with the buried electrodes in the vacuum interrupter, as recited in claim 1, wherein: shapes of the inner shield (111) and the outer shield (112) are cylindrical, spherical, rectangular or elliptical.
6. The vacuum degree detection device with the buried electrodes in the vacuum interrupter, as recited in claim 1, wherein: an installation position of the buried electrode structure (202) is on a static end cover plate or a moving end cover plate of the vacuum interrupter.
7. A vacuum degree detection method with the buried electrodes in the vacuum interrupter, as recited in claim 1, comprising: during measurement of the vacuum degree, supplying power to the detection and calculation component (105) by the charging/storing battery (102); generating pulse or oscillating voltage waveform through the action of adjusting resistors, oscillators and bridges by the charging/storage battery (102), applying pulse or oscillating voltage waveform generated to the buried central emitting electrode (108) and the buried receiving electrode (109) in the buried electrode structure (202) through the wire; measuring the field emission voltage signal and current signal between the emitting electrode (108) and the buried receiving electrode (109); integrating the field emission energy by the integrator; by the reference device in the detection calculation part (105), performing analog-to-digital conversion on the current signal and voltage signal of the field emission and the energy per unit time of the field emission, and then filtering and amplifying the signal by the buffer and amplifier, and finally comparing and analyzing the signal by the data processor; comparing a standard current waveform and a standard voltage waveform under different degrees of vacuum with an energy per unit time of standard field emission to determine the vacuum degree inside the vacuum interrupter; and sending out a signal generated by the data processor through the wireless transmitting device (101).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0032] Further description of the present invention is illustrated in detail by combining with the preferred embodiments and the drawings as follows.
[0033] Referring to
[0034] wherein a first part is the buried electrode structure 202 comprising a ceramic insulator 107, a buried central emitting electrode 108 and a buried receiving electrode 109 that penetrate and are welded on the ceramic insulator 107; ends of the buried receiving electrode 109 are welded with receiving electrode grids 110; a bottom of the ceramic insulator 107 is welded with an inner shield 111 and an outer shield 112 with a hole structure;
[0035] a second part is the external detection device 201 installed after the vacuum interrupter is processed, and comprising: an external detection shell shielding structure 104; a wireless transmitting device 101 fixed on a top of the external detection shell shielding structure 104; and a wireless charging coil 103 welded on the outer wall of the shielding structure 104 of the external detection shell; wherein the wireless charging coil 103 is connected to the charging/storing battery 102 on the inner upper side of the shielding structure 104 of the external detection shell through wires; the charging/storing battery 102 supplies power to a detection and calculation component 105 placed below through the wire; an electrode connection terminal 106 is installed at a lower part of the detection and calculation component 105;
[0036] As shown in
[0037] the external detection device 201 and the buried electrode structure 202 are designed in a separate manner, and all the components included in the buried electrode structure 202 are processed into a whole with the vacuum interrupter; when applying the detection, the electrode connection terminals 106 under the detection and calculation component 105 in the external detection device 201 are matched and installed with the buried central emitting electrode 108 and the buried receiving electrode 109 in the buried electrode structure 202.
[0038]
[0039]
[0040]
[0041] As shown in
[0042] One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
[0043] It will thus be seen that the objects of the present invention have been fully and effectively accomplished. Its embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.