Multiple groups of capacitor core electrode conductive lead components
By setting a cooling box and elastic support components on the top of the capacitor housing, the fixing and anti-disassembly problems of the conductive lead ends of multiple sets of capacitor core electrodes are solved, and stable connection and efficient heat dissipation are achieved to ensure the normal operation of the capacitor.
Patent Information
- Application Number
- CN202310535086.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-12
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2043-05-12
AI Technical Summary
In the prior art, it is difficult to achieve simultaneous fixation and anti-disassembly of the conductive lead end of the multi-group capacitor core electrode, and poor heat dissipation affects the normal use of the capacitor core.
A cooling box is provided on the top of the capacitor housing, and an elastic support member and a pressure-type anti-detachment member are provided in the cooling box. The elastic support member provides pressure, moves the connecting plate and the pressure plate downward, and electrically connects the connecting wire or contact sheet with the conductive lead-out seat. At the same time, thermally conductive silicone material and coolant are used to improve the heat dissipation effect.
The conductive lead-out end of multiple sets of capacitor core electrodes is achieved to effectively dissipate heat and prevent heat accumulation and affect the normal operation of the capacitor core.
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Figure CN116580972B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of capacitors, in particular to a plurality of groups of capacitor core electrode conductive lead-out components. Background Art
[0002] Capacitors, usually referred to as capacitance for their ability to hold charge, are represented by the letter C. Capacitors are one of the electronic components used extensively in electronic equipment and are widely used in circuits for DC isolation, AC passing, coupling, bypassing, filtering, tuning circuits, energy conversion, and control.
[0003] The capacitor core is located inside the capacitor. Some large-capacity capacitors are equipped with multiple groups of capacitor cores. Each group of capacitor cores needs to be electrically connected to the connecting wires or contact pieces of other electronic components through the electrode conductive lead ends. The problem solved by the present invention is how to install and connect multiple groups of electrode conductive lead ends at the same time. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the present invention provides multiple groups of capacitor core electrode conductive lead-out components. The specific technical solutions are as follows:
[0005] A conductive lead-out assembly for multiple groups of capacitor core electrodes includes a shell, and two rows of multiple groups of capacitor cores arranged in parallel in the shell; a conductive lead-out seat is provided on the top of the shell corresponding to the top of each group of capacitor cores, and the conductive lead-out seat is electrically connected to the corresponding capacitor core through a wire; a water cooling mechanism is also provided on the top of the shell between the two rows of conductive lead-out seats, and the water cooling mechanism includes a cooling box and an elastic support component located in the cooling box, and the elastic support component is also used in conjunction with a pressure-type anti-detachment component, and the elastic support component drives the pressure-type anti-detachment component to move up and down in the conductive lead-out seat to press the connecting wire or the connecting contact piece downward until it contacts the bottom wall in the conductive lead-out seat, thereby realizing electrical connection between the connecting wire or the connecting contact piece and the conductive lead-out seat.
[0006] By providing a cooling box between two rows of conductive lead-out seats at the top of the shell, and then equidistantly providing multiple sets of elastic support components in the cooling box, and providing pressure-type anti-slip components on the outer shell of the elastic support components, the bottom plate can be subjected to the downward pressure of the compression spring to drive the connecting plate and multiple sets of pressure plates to move downward, so that after multiple sets of connecting wires or connecting contacts are placed under the pressure plates in the conductive lead-out seats, the multiple sets of pressure plates can simultaneously fix and prevent the corresponding connecting wires or connecting contacts from slipping off.
[0007] As an improvement to the above technical solution, partitions are provided in the housing between adjacent capacitor cores along the horizontal and vertical directions, which can separate multiple groups of capacitor cores and prevent interference between the multiple groups of capacitor cores.
[0008] As an improvement of the above technical solution, the elastic support component includes pillars that are horizontally and equidistantly arranged in the cooling box. The pillars are also sleeved with compression springs to provide downward pressure to the pressure-type anti-slip component.
[0009] As an improvement of the above technical solution, the pressure-type anti-slip component includes a base plate that is sleeved on the outer periphery of the pillar, and the top of the base plate is in conflict with the bottom of the compression spring. The top of the base plate is equidistantly provided with connecting columns that pass through the cooling box. The top of the connecting column is fixed with a connecting plate, and the bottoms of both ends of the connecting plate are respectively slid into the conductive lead-out seat, and the bottoms of both ends of the connecting plate are fixed with pressure plates.
[0010] As an improvement of the above technical solution, the pressure plate is parallel to the bottom wall of the conductive lead-out seat, and the two ends of the pressure plate slide and contact with the inner walls on both sides of the conductive lead-out seat respectively, which can not only keep the pressure plate moving in parallel, but also make the two ends of the pressure plate contact with the conductive lead-out seat to transfer heat on the conductive lead-out seat.
[0011] As an improvement of the above technical solution, coolant is injected into the cooling box, and the bottom plate is immersed in the coolant, so that the pressure plate is immersed in the coolant to improve the heat dissipation effect, and prevent the heat generated when the connecting wires or connecting contacts are electrically connected to the conductive lead-out seat from not being dissipated for a long time and affecting the normal use of the capacitor core.
[0012] As an improvement to the above technical solution, the two rows of conductive lead-out seats are symmetrically arranged with the cooling box as the axis of symmetry, so that the pressure of the pressure plates on both sides can be equal.
[0013] As an improvement of the above technical solution, the base plate, connecting column, connecting plate and pressure plate are all made of thermally conductive silicone material, which can gradually transfer the heat at the bottom of the conductive lead-out seat to the pressure plate when the pressure plate is non-conductive.
[0014] Beneficial effects of the present invention:
[0015] 1. A cooling box is provided on the top of the shell between two rows of conductive lead-out seats, and multiple sets of elastic support components are equidistantly provided in the cooling box. A pressure-type anti-slip component is provided on the outer cover of the elastic support component. The bottom plate is subjected to the downward pressure of the compression spring to drive the connecting plate and multiple sets of pressure plates to move downward, so that after multiple sets of connecting wires or connecting contacts are placed under the pressure plates in the conductive lead-out seats, the multiple sets of pressure plates can simultaneously fix and prevent the corresponding connecting wires or connecting contacts from slipping out.
[0016] 2. By making the bottom plate, connecting column, connecting plate and pressing plate all made of thermally conductive silicone material, the heat at the bottom of the conductive lead-out seat can be gradually transferred to the pressing plate when the pressing plate is non-conductive. Coolant is also injected into the cooling box so that the pressing plate is immersed in the coolant to improve the heat dissipation effect and prevent the heat generated when the connecting wires or connecting contacts are electrically connected to the conductive lead-out seat from not being dissipated for a long time and affecting the normal use of the capacitor core. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a front view of the overall structure of the present invention;
[0018] Figure 2 This is a top view of the shell structure in the present invention;
[0019] Figure 3 This is a front view of the water cooling mechanism of the present invention;
[0020] Figure 4 This is a top view of the water cooling structure in the present invention.
[0021] Figure numerals: 10 - shell; 101 - partition; 20 - capacitor core; 30 - conductive lead-out seat; 40 - cooling box; 50 - elastic supporting component; 501 - pillar; 502 - compression spring; 60 - pressure-type anti-slip component; 601 - bottom plate; 602 - connecting column; 603 - connecting plate; 604 - pressure plate. DETAILED DESCRIPTION
[0022] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0023] Example 1
[0024] like Figure 1 、 Figure 2 、 Figure 3 and Figure 4 As shown, Figure 1 This is a front view of the overall structure of the present invention; Figure 2 This is a top view of the shell structure in the present invention; Figure 3 This is a front view of the water cooling mechanism of the present invention; Figure 4 This is a top view of the water cooling structure in the present invention.
[0025] The conductive lead assembly for multiple groups of capacitor core electrodes includes a housing 10 and two rows of multiple groups of capacitor cores 20 arranged in parallel within the housing 10. A conductive lead-out seat 30 is provided on the top of the housing 10, corresponding to each group of capacitor cores 20, and the conductive lead-out seat 30 is electrically connected to the corresponding capacitor core 20 via a wire.
[0026] A water cooling mechanism is also provided at the top of the shell 10, located between the two rows of conductive lead-out seats 30. The water cooling mechanism includes a cooling box 40 and an elastic support component 50 located in the cooling box 40. The elastic support component 50 is also used in conjunction with a pressure-type anti-slip component 60. The elastic support component 50 drives the pressure-type anti-slip component 60 to move up and down in the conductive lead-out seat 30 to press the connecting wire or the connecting contact piece downward until it contacts the bottom wall in the conductive lead-out seat 30, thereby realizing electrical connection between the connecting wire or the connecting contact piece and the conductive lead-out seat 30.
[0027] In order to provide downward pressure to the pressure-type anti-slip component 60 , the elastic support component 50 includes pillars 501 horizontally and equidistantly arranged in the cooling box 40 , and the pillars 501 are further sleeved with compression springs 502 .
[0028] The pressure-type anti-slip component 60 includes a base plate 601 that is sleeved on the outer periphery of the pillar 501, and the top of the base plate 601 is in conflict with the bottom of the compression spring 502. The top of the base plate 601 is equidistantly provided with connecting columns 602 that pass through the cooling box 40. The top of the connecting column 602 is fixed with a connecting plate 603, and the bottoms of both ends of the connecting plate 603 are respectively slid into the conductive lead-out seat 30, and the bottoms of both ends of the connecting plate 603 are fixed with pressure plates 604.
[0029] By providing a cooling box 40 between two rows of conductive lead-out seats 30 at the top of the shell 10, and then equidistantly providing multiple groups of elastic support components 50 in the cooling box 40, and providing a pressure-type anti-slip component 60 on the outer cover of the elastic support component 50, the bottom plate 604 can be subjected to the downward pressure of the compression spring 502 to drive the connecting plate 603 and the multiple groups of pressure plates 604 to move downward, so that after multiple groups of connecting wires or connecting contacts are placed under the pressure plate 604 in the conductive lead-out seat 30, the multiple groups of pressure plates 604 can simultaneously fix and prevent the corresponding connecting wires or connecting contacts from slipping off.
[0030] In order to ensure that the pressure of the pressure plates 604 on both sides is equal, the two rows of conductive lead-out sockets 30 are symmetrically arranged with the cooling box 40 as the symmetry axis.
[0031] like Figure 1 、 Figure 2 and Figure 3 As shown, Figure 1 This is a front view of the overall structure of the present invention; Figure 2 This is a top view of the shell structure in the present invention; Figure 3 It is a front view of the water cooling mechanism in the present invention.
[0032] Partitions 101 are provided between adjacent capacitor cores 20 in the housing 10 along the horizontal and vertical directions, respectively, to separate the multiple groups of capacitor cores 20 and prevent interference between the multiple groups of capacitor cores 20.
[0033] Example 2
[0034] like Figure 1 、 Figure 3 and Figure 4 As shown, Figure 1 This is a front view of the overall structure of the present invention; Figure 3 This is a front view of the water cooling mechanism of the present invention; Figure 4 This is a top view of the water cooling structure in the present invention.
[0035] A conductive lead-out seat 30 is provided on the top of the housing 10 corresponding to each group of capacitor cores 20 , and the conductive lead-out seat 30 is electrically connected to the corresponding capacitor core 20 via a wire.
[0036] A water cooling mechanism is also provided at the top of the shell 10, located between the two rows of conductive lead-out seats 30. The water cooling mechanism includes a cooling box 40 and an elastic support component 50 located in the cooling box 40. The elastic support component 50 is also used in conjunction with a pressure-type anti-slip component 60. The elastic support component 50 drives the pressure-type anti-slip component 60 to move up and down in the conductive lead-out seat 30 to press the connecting wire or the connecting contact piece downward until it contacts the bottom wall in the conductive lead-out seat 30, thereby realizing electrical connection between the connecting wire or the connecting contact piece and the conductive lead-out seat 30.
[0037] The pressure-type anti-slip component 60 includes a base plate 601 that is sleeved on the outer periphery of the pillar 501, and the top of the base plate 601 is in conflict with the bottom of the compression spring 502. The top of the base plate 601 is equidistantly provided with connecting columns 602 that pass through the cooling box 40. The top of the connecting column 602 is fixed with a connecting plate 603, and the bottoms of both ends of the connecting plate 603 are respectively slid into the conductive lead-out seat 30, and the bottoms of both ends of the connecting plate 603 are fixed with pressure plates 604.
[0038] The bottom plate 601 , the connecting pillars 602 , the connecting plate 603 and the pressing plate 604 are all made of heat-conducting silicone material. Cooling liquid is injected into the cooling box 40 , and the bottom plate 601 is immersed in the cooling liquid.
[0039] By making the bottom plate 601, the connecting column 602, the connecting plate 603 and the pressing plate 604 all of thermally conductive silicone material, the heat at the bottom of the conductive lead-out seat 30 can be gradually transferred to the pressing plate 604 when the pressing plate 604 is non-conductive. Cooling liquid is also injected into the cooling box 40 so that the pressing plate 604 is immersed in the coolant to improve the heat dissipation effect and prevent the heat generated when the connecting wires or the connecting contacts are electrically connected to the conductive lead-out seat 30 from being dissipated for a long time and affecting the normal use of the capacitor core.
[0040] The pressing plate 604 is parallel to the bottom wall of the conductive lead-out seat 30, and the two ends of the pressing plate 604 slide and contact with the inner walls on both sides of the conductive lead-out seat 30 respectively, which can not only keep the pressing plate 604 moving parallel, but also make the two ends of the pressing plate 604 contact with the conductive lead-out seat 30 to transfer heat from the conductive lead-out seat 30.
[0041] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. Multiple groups of capacitor core electrode conductive lead-out components, characterized in that: include: A housing (10), and two rows of multiple groups of capacitor cores (20) arranged in parallel within the housing (10); A conductive lead-out seat (30) is provided on the top of the housing (10) corresponding to each group of capacitor cores (20), and the conductive lead-out seat (30) is electrically connected to the corresponding capacitor core (20) via a wire; The top of the shell (10) is located between two rows of conductive lead-out seats (30) and is also provided with a water cooling mechanism, the water cooling mechanism comprising a cooling box (40) and an elastic support component (50) located in the cooling box (40), the elastic support component (50) is also used in conjunction with a pressure-type anti-slip component (60), the elastic support component (50) drives the pressure-type anti-slip component (60) to move up and down in the conductive lead-out seat (30) to press the connecting wire or the connecting contact piece downward until it contacts the bottom wall in the conductive lead-out seat (30), thereby achieving electrical connection between the connecting wire or the connecting contact piece and the conductive lead-out seat (30).
2. The conductive lead-out assembly for multiple capacitor cores (20) according to claim 1, characterized in that: Partition plates (101) are provided in the housing (10) between adjacent capacitor cores (20) along the transverse and longitudinal directions.
3. The conductive lead-out assembly for multiple capacitor cores (20) according to claim 1, characterized in that: The elastic supporting component (50) comprises pillars (501) which are horizontally and equidistantly arranged in the cooling box (40), and the pillars (501) are also sleeved with compression springs (502).
4. The conductive lead-out assembly for multiple groups of capacitor cores (20) electrodes according to claim 3, characterized in that: The pressure-type anti-slip component (60) includes a base plate (601) sleeved on the outer periphery of the pillar (501), and the top of the base plate (601) is in conflict with the bottom of the compression spring (502), and the top of the base plate (601) is equidistantly provided with connecting columns (602) that pass through the cooling box (40), and the top of the connecting column (602) is fixed with a connecting plate (603), and the bottoms of both ends of the connecting plate (603) are respectively slidably inserted into the conductive lead-out seat (30), and the bottoms of both ends of the connecting plate (603) are fixed with pressure plates (604).
5. The conductive lead-out assembly for multiple groups of capacitor cores (20) electrodes according to claim 4, characterized in that: The pressing plate (604) is parallel to the bottom wall of the conductive lead-out seat (30), and the two ends of the pressing plate (604) are in sliding contact with the inner walls on both sides of the conductive lead-out seat (30).
6. The conductive lead-out assembly for multiple capacitor cores (20) according to claim 4, characterized in that: Cooling liquid is injected into the cooling box (40), and the bottom plate (601) is immersed in the cooling liquid.
7. The conductive lead-out assembly for multiple capacitor cores (20) according to claim 1, characterized in that: The two rows of conductive lead-out seats (30) are symmetrically arranged with the cooling box (40) as a symmetry axis.
8. The conductive lead-out assembly for multiple capacitor cores (20) according to claim 4, characterized in that: The base plate (601), the connecting column (602), the connecting plate (603) and the pressing plate (604) are all made of heat-conducting silicone material.
Citation Information
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