Test tap structure of high-voltage capacitive bushing
By improving the test tap structure of the high-voltage capacitive bushing, it is kept in a grounded state during measurement, solving the problem of suspended discharge caused by the bushing being suspended in the air, ensuring the safe operation of the bushing, and being able to be converted to a non-grounded state for measurement when necessary, providing double insurance.
Patent Information
- Application Number
- CN202422713870.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-11-07
AI Technical Summary
The existing high-voltage capacitive bushing test tap structure is prone to causing the bushing to hang in the air if the protective cover is not tightened after measurement, resulting in continuous suspended discharge of the bushing during high-voltage operation, posing a great hidden danger to safe operation.
A test tap structure including a terminal post, an insulator, a mounting flange, a connecting ring, a grounding sleeve, an elastic conductive part, a gland, a safety ring, a protective cover, an insulating thimble and a supporting insulating pin is designed, so that the bushing remains in a grounded state when the protective cover is opened. The cooperation of the insulating thimble and the supporting insulating pin ensures that it can be converted to a non-grounded state for measurement when needed.
It effectively avoids the suspended discharge caused by the bushing being suspended in the air after measurement, ensures the safety of the bushing during high-voltage operation, and provides double grounding insurance in special circumstances to prevent potential safety hazards.
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Figure CN223346923U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a high-voltage capacitor bushing used in the power transmission and transformation industry, in particular to a test tap structure of the high-voltage capacitor bushing. Background Art
[0002] The test tap of high-voltage capacitive bushing is a structure that is easily connected from the outside of the bushing, insulated from flanges or other fasteners, and connected to the outermost plate of the capacitive bushing to measure dielectric loss factor tanδ, capacitance and partial discharge.
[0003] The test tap structure of the existing high voltage capacitor bushing is as follows: Figure 1 As shown, the apparatus comprises a terminal 9, an insulator 8 mounted on the terminal 9, a mounting flange 15 mounted on the insulator 8, and a protective cover 1 mounted on the insulator 8. The terminal 9 is connected to the capacitor core 14 of the high-voltage capacitor bushing via a lead 10. When the protective cover 1 is opened, the high-voltage capacitor bushing is ungrounded, allowing direct measurement.
[0004] However, if the protective cover 1 is not tightened after measurement, the bushing may be easily left hanging in the air, and the bushing may continue to suspend and discharge during high-voltage operation, thus posing a great safety hazard to the safe operation of the bushing. Utility Model Content
[0005] The purpose of the utility model is to solve the technical problem that when the protective cover of the existing test tap structure is not tightened after measurement, the bushing is easily left hanging in the air, and the bushing continues to suspend and discharge during high-voltage operation, which brings great safety hazards to the safe operation of the bushing. The utility model provides a test tap structure for a high-voltage capacitive bushing.
[0006] In order to achieve the above purpose, the technical solution adopted by the present utility model is:
[0007] A test tap structure for a high-voltage capacitive bushing has the following features:
[0008] It includes terminal posts, insulators, mounting flanges, connecting rings, grounding sleeves, elastic conductive parts, glands, safety rings, protective covers, insulating thimbles and supporting insulating pins;
[0009] The lower end of the terminal is used to connect to the capacitor core of the high-voltage capacitor bushing through a lead wire;
[0010] The insulator is sleeved on the terminal post, and its upper end is shorter than the upper end of the terminal post, and its lower end is not shorter than the lower end of the terminal post;
[0011] An annular boss is provided on the outer wall of the insulator, and the mounting flange is sleeved on the annular boss on the outer wall of the insulator and is grounded;
[0012] The connecting ring and the grounding sleeve are respectively sleeved on the terminal post, and a gap is provided between the two along the axial direction. The grounding sleeve can move along the axial direction of the terminal post. The connecting ring is fixedly sleeved on the terminal post, and its lower end abuts against the upper end of the insulator.
[0013] The elastic conductive member is sleeved on the terminal post and located at the interval, and its two ends are respectively connected to the connecting ring and the grounding sleeve;
[0014] The gland is sleeved on the insulator, and its lower end contacts the annular boss and the mounting flange respectively, and is fixedly connected to the mounting flange through a connecting piece;
[0015] An annular step is provided at the lower end of the outer circumference of the grounding sleeve. The upper surface of the annular step of the grounding sleeve abuts against the inner wall of the upper end of the gland in the initial state. A safety gap is provided between the outer circumference of the grounding sleeve and the inner hole of the upper end of the gland. The safety ring is mounted on the grounding sleeve and contacts the outer wall of the upper end of the gland.
[0016] The protective cover is sleeved on the upper end of the gland;
[0017] A mounting through hole is provided on the peripheral side of the upper end of the terminal. During the test, the insulating thimble abuts against the upper end of the grounding sleeve, and is used to drive the grounding sleeve axially close to the connecting ring under the action of external force until the mounting through hole is completely exposed. During the test, the supporting insulating pin is installed in the mounting through hole to axially position the grounding sleeve; during the test, the upper end of the terminal is used to connect the test line to realize the test measurement.
[0018] Furthermore, a threaded section is provided at the upper end of the outer circumferential surface of the grounding sleeve, an axial gap is provided between the threaded section and the annular step, and the outer diameter of the grounding sleeve at the threaded section is smaller than the outer diameter at the axial gap, forming a grounding sleeve step therebetween; the gap between the outer circumferential surface of the grounding sleeve at the axial gap and the inner hole at the upper end of the gland is the safety gap;
[0019] The safety ring is a safety nut, which is sleeved on the threaded section of the grounding sleeve;
[0020] The insulating ejector pin is a cylindrical structure with two ends open, and an annular groove is provided on the inner wall of the lower end thereof. Two arc-shaped notches are provided on the circumferential side of the insulating ejector pin located at the annular groove. The two arc-shaped notches are symmetrically arranged along the circumferential direction and are spaced apart. The two arc-shaped notches are respectively connected to the annular groove and extend axially to the lower end of the insulating ejector pin.
[0021] The axial dimension of the inner wall of the insulating thimble at the annular groove is adapted to the axial dimension of the threaded section of the grounding sleeve, and the outer diameter of the insulating thimble at the annular groove is adapted to the inner hole diameter of the upper end of the gland;
[0022] During the test, the lower end of the insulating thimble abuts against the step of the grounding sleeve, and the bottom of the annular groove abuts against the upper end of the grounding sleeve.
[0023] Furthermore, in an initial state, the lower end of the threaded section is flush with the outer wall of the upper end of the gland.
[0024] Furthermore, a mounting ring groove is provided on the upper end of the outer peripheral surface of the gland, and the upper end of the mounting ring groove extends axially to the upper end surface of the gland;
[0025] The outer peripheral surface of the gland located at the mounting ring groove is provided with an external thread;
[0026] The inner circumferential surface of the protective cover is provided with an internal thread section adapted to the external thread on the gland, and the internal thread section of the protective cover is connected to the external thread on the gland.
[0027] Furthermore, an annular protrusion is provided at the lower end of the outer peripheral surface of the gland, and an axial distance is provided between the lower surface of the annular protrusion and the lower end surface of the gland;
[0028] The lower end surface of the gland is in plane contact with the upper surface of the annular step of the insulator, the lower surface of the annular protrusion is in plane contact with the upper surface of the mounting flange, and the annular protrusion and the mounting flange are fixedly connected by bolts.
[0029] Furthermore, the grounding sleeve and the connecting ring are connected via a grounding wire.
[0030] Furthermore, the elastic conductive member is a spring, and the connecting ring is a connecting nut.
[0031] Furthermore, during testing, the upper end of the terminal can be connected to a test line via a wire clamp.
[0032] The beneficial effects of the utility model are:
[0033] 1. The test tap structure of the high-voltage capacitive bushing of the utility model is such that when the protective cover is opened, the bushing is still in a grounded state. After removing the safety ring, the bushing must be placed in a non-grounded state for measurement by using an insulating thimble and a supporting insulating pin. This avoids the problem of the bushing being suspended in the air and the bushing being continuously suspended and discharged during high-voltage operation if the protective cover is not tightened after measurement, which poses a great safety hazard to the safe operation of the bushing.
[0034] 2. The grounding wire in the utility model is a double insurance for grounding. When the spring does not work under special circumstances, the grounding wire can still ensure that the casing is safely grounded. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Figure 1 This is a schematic diagram of the test tap structure of an existing high-voltage capacitive bushing;
[0036] Figure 2This is a schematic structural diagram of an embodiment of the present utility model in a grounded state;
[0037] Figure 3 This is a schematic diagram of the installation of the insulating ejector pin and the supporting insulating pin in the test state of the embodiment of the utility model;
[0038] Figure 4 This is a schematic diagram of the connection between the terminal, the wire clamp and the test wire in the test state of the embodiment of the utility model;
[0039] Figure 5 It is a structural schematic diagram of the insulating ejector pin in an embodiment of the present utility model.
[0040] In the picture:
[0041] 01-test line;
[0042] 1-Protective cover, 2-Safety ring, 3-Grounding sleeve, 4-Elastic conductive part, 5-Grounding wire, 6-Connecting ring, 7-Gland, 8-Insulator, 9-Terminal, 10-Lead, 11-Insulating thimble, 12-Support insulating pin, 13-Wire clamp, 14-Capacitor core, 15-Mounting flange. DETAILED DESCRIPTION
[0043] To make the purpose, advantages and features of the present invention more clear, the following is a detailed description of a high-voltage capacitor bushing test tap structure proposed by the present invention, with reference to the accompanying drawings and specific embodiments. The advantages and features of the present invention will become more apparent according to the following specific embodiments.
[0044] See also Figures 2 to 4 The present embodiment provides a test tap structure of a high-voltage capacitive bushing, which mainly includes a terminal 9, an insulator 8, a mounting flange 15, a connecting ring 6, a grounding sleeve 3, an elastic conductive member 4, a gland 7, a safety ring 2, a protective cover 1, an insulating thimble 11 and a supporting insulating pin 12.
[0045] The insulator 8 is mounted on the terminal 9, and its upper end is shorter than the upper end of the terminal 9, providing an installation position for subsequent components, and its lower end is longer than the lower end of the terminal 9. The lower end of the terminal 9 is connected to the capacitor core 14 of the high-voltage capacitor bushing through the lead 10; the mounting flange 15 is mounted on the annular boss provided on the outer wall of the insulator 8, and the mounting flange 15 is grounded.
[0046] The connecting ring 6 is specifically a connecting nut, which is sleeved on the terminal post 9 and threadedly connected thereto, and the lower side of the connecting nut abuts against the upper end of the insulator 8 .
[0047] The grounding sleeve 3 is mounted on the terminal 9 and can slide axially along the terminal 9. An axial gap is provided between the lower side of the grounding sleeve 3 and the upper side of the connecting nut. In this embodiment, the elastic conductive member 4 is specifically a spring, which is mounted on the terminal 9 at the aforementioned gap, and its upper and lower ends are connected to the grounding sleeve 3 and the connecting nut, respectively. At the same time, in order to improve the connection effect, a grounding wire 5 can be added between the grounding sleeve 3 and the connecting nut, and the grounding sleeve 3 is connected to the connecting nut through the grounding wire 5 to achieve double grounding insurance. It should be noted that the length of the grounding wire 5 here should not be shorter than the axial distance between the grounding sleeve 3 and the connecting nut on one side close to each other, so as to avoid the grounding wire 5 from breaking due to external pulling.
[0048] The gland 7 is mounted on the insulator 8. Specifically, an annular protrusion is provided at the lower end of the outer circumferential surface of the gland 7, and an axial distance is set between the lower surface of the annular protrusion and the lower end surface of the gland 7; the lower end surface of the gland 7 is in contact with the annular step plane of the insulator 8, the lower surface of the annular protrusion is in contact with the upper surface plane of the mounting flange 15, and the annular protrusion and the mounting flange 15 are fixedly connected by bolts.
[0049] An annular step is provided at the lower end of the outer circumference of the grounding sleeve 3. The upper surface of the annular step of the grounding sleeve 3 abuts against the inner wall of the upper end of the gland 7 in the initial state. A threaded section is provided at the upper end of the outer circumference of the grounding sleeve 3. The lower end of the threaded section is flush with the outer wall of the upper end of the gland 7 in the initial state. An axial gap is provided between the threaded section and the annular step, and the outer diameter of the grounding sleeve 3 at the threaded section is smaller than the outer diameter at the axial gap, forming a grounding sleeve step between the two. The gap between the outer circumference of the grounding sleeve 3 at the axial gap and the inner hole of the upper end of the gland 7 is a safety gap. The safety ring 2 is specifically a safety nut, which is sleeved on the threaded section of the grounding sleeve 3 and contacts the plane of the outer wall of the upper end of the gland 7 to fix and limit the grounding sleeve 3.
[0050] A mounting ring groove is provided at the upper end of the outer circumferential surface of the gland 7, and the upper end of the mounting ring groove passes through the upper end surface of the gland 7 axially; an external thread is provided on the outer circumferential surface of the gland 7 at the mounting ring groove; an internal thread section is provided on the inner circumferential surface of the protective cover 1 that matches the external thread on the gland 7, and a radial gap is provided between the outer circumferential surface of the safety ring 2 and the upper end outer circumferential surface of the gland 7. The protective cover 1 is mounted on the upper end of the gland 7 at the radial gap, and its internal thread section is connected to the external thread of the gland 7.
[0051] During the test, the protective cover 1 and the safety ring 2 are in a state of not being assembled with the gland 7 and the grounding sleeve 3; a radial mounting through hole is provided on the circumferential side of the upper end of the terminal 9, and the supporting insulating pin 12 is installed in the mounting through hole during the test to perform axial positioning of the grounding sleeve 3.
[0052] See also Figure 3 and Figure 5The insulating thimble 11 is a cylindrical structure with two ends open. The inner wall of its lower end is provided with an annular groove. Two arc-shaped notches are provided around the insulating thimble 11 at the annular groove. The two arc-shaped notches are symmetrically arranged along the circumference and are spaced apart. The two arc-shaped notches are respectively connected to the annular groove and extend axially to the lower end of the insulating thimble 11. The axial dimension of the annular groove matches the axial dimension of the threaded section on the grounding sleeve 3. The outer diameter of the insulating thimble 11 at the annular groove matches the inner diameter of the upper end of the gland 7. During testing, the lower end of the insulating thimble 11 abuts the step of the grounding sleeve, and the bottom of the annular groove abuts the upper end of the grounding sleeve 3. Under the action of external force, the grounding sleeve 3 is driven axially toward the connecting ring 6 by the insulating thimble 11 until the mounting hole is completely exposed. During testing, the upper end of the terminal 9 is connected to the test line 01 via the wire clamp 13 to achieve test measurement.
[0053] See also Figure 3 and Figure 4 During the test, first remove the protective cover 1, then the safety nut 2. Use the insulating thimble 11 to press the grounding sleeve 3 to the position where the mounting hole leaks out. Then, insert the supporting insulating pin 12 into the mounting hole. This will separate the annular step of the grounding sleeve 3 from the gland 7, insulating the bushing from the mounting flange 15. Then, remove the insulating thimble 1 and clamp the terminal 9 with the wire clamp 13 connected to the test lead 01. The bushing dielectric loss tanδ, capacitance, and partial discharge can be measured.
Claims
1. A test tap structure for a high-voltage capacitive bushing, characterized by: It comprises a terminal (9), an insulator (8), a mounting flange (15), a connecting ring (6), a grounding sleeve (3), an elastic conductive member (4), a gland (7), a safety ring (2), a protective cover (1), an insulating thimble (11) and a supporting insulating pin (12); The lower end of the terminal (9) is used to connect to the capacitor core (14) of the high-voltage capacitor bushing through a lead wire (10); The insulator (8) is sleeved on the terminal post (9), and its upper end is shorter than the upper end of the terminal post (9), and its lower end is not shorter than the lower end of the terminal post (9); An annular boss is provided on the outer wall of the insulator (8), and the mounting flange (15) is sleeved on the annular boss on the outer wall of the insulator (8) and is grounded; The connecting ring (6) and the grounding sleeve (3) are respectively mounted on the terminal post (9), and a gap is provided between the two along the axial direction. The grounding sleeve (3) can move along the axial direction of the terminal post (9). The connecting ring (6) is fixedly mounted on the terminal post (9), and its lower end abuts against the upper end of the insulator (8). The elastic conductive member (4) is sleeved on the terminal post (9) and located at the interval, and its two ends are respectively connected to the ground sleeve (3) and the connecting ring (6); The gland (7) is sleeved on the insulator (8), and its lower end is in contact with the annular boss and the mounting flange (15) respectively, and is fixedly connected to the mounting flange (15) through a connecting piece; An annular step is provided at the lower end of the outer circumference of the grounding sleeve (3); the upper surface of the annular step of the grounding sleeve (3) abuts against the inner wall of the upper end of the gland (7) in the initial state; and a safety gap is provided between the outer circumference of the grounding sleeve (3) and the inner hole of the upper end of the gland (7); the safety ring (2) is sleeved on the grounding sleeve (3) and contacts the outer wall of the upper end of the gland (7); The protective cover (1) is sleeved on the upper end of the gland (7); The upper end of the terminal (9) is provided with a mounting through hole. The insulating pin (11) abuts against the upper end of the grounding sleeve (3) during the test and is used to drive the grounding sleeve (3) axially close to the connecting ring (6) under the action of an external force until the mounting through hole is completely exposed. The supporting insulating pin (12) is installed in the mounting through hole during the test and is used to axially position the grounding sleeve (3). The upper end of the terminal (9) is used to connect the test line (01) during the test to achieve test measurement.
2. The test tap structure of a high-voltage capacitive bushing according to claim 1, characterized in that: A threaded section is provided at the upper end of the outer circumference of the grounding sleeve (3); an axial spacing is provided between the threaded section and the annular step; the outer diameter of the grounding sleeve (3) at the threaded section is smaller than the outer diameter at the axial spacing, forming a grounding sleeve step therebetween; the spacing between the outer circumference of the grounding sleeve (3) at the axial spacing and the inner hole at the upper end of the gland (7) is the safety spacing; The safety ring (2) is a safety nut, which is sleeved on the threaded section of the grounding sleeve (3); The insulating ejector pin (11) is a cylindrical structure with two ends open, and an annular groove is provided on the inner wall of the lower end thereof. Two arc-shaped notches are provided on the circumferential side of the insulating ejector pin (11) located at the annular groove, and the two arc-shaped notches are symmetrically arranged along the circumferential direction and are spaced apart. The two arc-shaped notches are respectively connected to the annular groove and extend axially to the lower end of the insulating ejector pin (11); The axial dimension of the inner wall of the insulating thimble (11) at the annular groove is adapted to the axial dimension of the threaded section of the grounding sleeve (3), and the outer diameter of the insulating thimble (11) at the annular groove is adapted to the inner hole diameter of the upper end of the gland (7); During the test, the lower end of the insulating thimble (11) abuts against the step of the grounding sleeve, and the bottom of the annular groove abuts against the upper end of the grounding sleeve (3).
3. The test tap structure of a high-voltage capacitive bushing according to claim 2, characterized in that: In the initial state, the lower end of the threaded section is flush with the outer wall of the upper end of the gland (7).
4. A test tap structure for a high-voltage capacitive bushing according to any one of claims 1 to 3, characterized in that: The upper end of the outer peripheral surface of the gland (7) is provided with a mounting ring groove, and the upper end of the mounting ring groove extends axially to the upper end surface of the gland (7); The outer peripheral surface of the gland (7) located at the mounting ring groove is provided with an external thread; The inner circumferential surface of the protective cover (1) is provided with an internal thread section that matches the external thread on the gland (7), and the internal thread section of the protective cover (1) is connected to the external thread of the gland (7).
5. The test tap structure of a high-voltage capacitive bushing according to claim 4, characterized in that: An annular protrusion is provided at the lower end of the outer peripheral surface of the gland (7), and an axial distance is provided between the lower surface of the annular protrusion and the lower end surface of the gland (7); The lower end surface of the gland (7) is in plane contact with the upper surface of the annular step of the insulator (8), the lower surface of the annular protrusion is in plane contact with the upper surface of the mounting flange (15), and the annular protrusion and the mounting flange (15) are fixedly connected by bolts.
6. A test tap structure for a high-voltage capacitive bushing according to any one of claims 1 to 3, characterized in that: The grounding sleeve (3) and the connecting ring (6) are connected via a grounding wire (5).
7. The test tap structure of a high-voltage capacitive bushing according to claim 6, characterized in that: The elastic conductive member (4) is a spring, and the connecting ring (6) is a connecting nut.
8. The test tap structure of a high-voltage capacitive bushing according to claim 1, characterized in that: During testing, the upper end of the terminal (9) can be connected to a test line (01) via a line clamp (13).