Fixing clamp structure facilitating sidetrack drilling and radiator machining device
By designing a fixed fixture structure that facilitates side drilling, the radiator is fixed using the fixture base and positioning components. Combined with the drilling mechanism of the main body of the device, the rapid machining of the threaded holes at both ends of the radiator is achieved, solving the problem of low efficiency caused by multiple reversals and clamping limits in the existing technology, and improving the machining efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-03-17
AI Technical Summary
Existing radiator processing equipment requires multiple reversals and clamping stops when drilling radiators, resulting in low processing efficiency.
A fixture structure for easy side drilling is designed, including a fixture base, a first positioning component and a second positioning component. The fixture base, the first positioning component and the second positioning component work together to fix the heat sink in the placement groove, so that both ends of the heat sink are exposed in the placement groove. The first and second drilling mechanisms on the main body of the device are used to drill holes at both ends of the heat sink.
This technology enables one-time drilling of the holes at both ends of the radiator, reducing the number of operation steps and improving the processing speed and efficiency.
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Figure CN223997359U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the technical field of radiator processing apparatus, and in particular to a fixed clamp structure and radiator processing apparatus that facilitates side drilling. Background Technology
[0002] A radiator processing apparatus is an industrial device used to process radiators. It is widely used in air conditioning manufacturing, dehumidification systems, drying equipment, cooling systems, aerospace, and hot air heating systems. The apparatus consists of a main body and a fixing fixture structure, which is connected to the main body and used to clamp and secure the radiator.
[0003] The related radiator processing device includes a main body and a clamping mechanism. The clamping mechanism is connected to the main body. The main body pushes the clamping mechanism through a pressing mechanism, so that the clamping mechanism is subjected to force to clamp and limit the radiator, fixing the radiator in a predetermined position. The main body is provided with a guiding mechanism and a drilling mechanism. The main body drives the guiding mechanism to move above the radiator through a first driving component. The main body drives the drilling mechanism to move above the guiding mechanism through a second driving component, so that the drill bit of the drilling mechanism moves downward and extends into the guiding mechanism. The guiding mechanism guides the drill bit so that the drill bit can drill holes in the radiator, such as Chinese Patent No. CN116275196B.
[0004] However, since the radiator needs to have holes at both ends, drilling is required at both ends. During the drilling process, the main body of the device moves the guide mechanism above the radiator via the first drive assembly. The drill bit of the drilling mechanism moves downward and extends into the guide mechanism so that it is positioned above the radiator to drill one end. After the drill bit completes drilling at one end, the operator needs to reverse the radiator to complete drilling at the other end. The radiator processing device then needs to perform a series of operations such as clamping and limiting the radiator. This results in numerous steps during the drilling process, leading to a slow processing speed and low efficiency. Utility Model Content
[0005] The purpose of this disclosure is to overcome the shortcomings of the prior art and to provide a fixed clamp structure and a radiator processing device that facilitates side drilling, thereby enabling the radiator processing device to process radiators with high efficiency.
[0006] The purpose of this disclosure is achieved through the following technical solution:
[0007] A fixing clamp structure for facilitating side drilling, used for connection to the main body of the device, includes:
[0008] A clamp base is used to connect to the main body of the device, and the clamp base has a placement slot for placing a heat sink;
[0009] A first positioning component is located in the placement slot and connected to the clamp base. The first positioning component is used to abut against one end face of the heat sink to hold the heat sink in the placement slot.
[0010] The second positioning component is located above the placement slot and is connected to the clamp base. The second positioning component is used to abut against one end face of the heat sink to hold the heat sink in the placement slot. There is an angle between the first positioning component abutting against the extension direction of the heat sink and the second positioning component abutting against the extension direction of the heat sink.
[0011] In one embodiment, the first positioning component includes a first driving member, a first mounting base, and a first abutting portion. The first driving member is mounted on the first mounting base, and the power output end of the first driving member is connected to the first abutting portion. The first driving member is used to drive the first abutting portion to abut against one end face of the radiator. The first mounting base is located in the placement slot and connected to the clamp base.
[0012] In one embodiment, the clamp base has a protruding connecting portion, which is connected to the second positioning component.
[0013] In one embodiment, the second positioning component includes a second driving member, a second mounting base, and a second abutting portion. The second driving member is mounted on the second mounting base, and the power output end of the second driving member is connected to the second abutting portion. The second driving member is used to drive the second abutting portion to abut against one end face of the radiator. The second mounting base is connected to the connecting portion.
[0014] In one embodiment, the angle between the first positioning component and the extension direction of the heat sink and the extension direction of the second positioning component is 90°.
[0015] In one embodiment, the fixing fixture structure for easy side drilling further includes a left positioning component and a right positioning component arranged opposite to each other. Both the left positioning component and the right positioning component are connected to the fixture base. A portion of the left positioning component is located on the left side of the placement slot, and the left positioning component is used to abut against the left end face of the radiator. A portion of the right positioning component is located on the right side of the placement slot, and the right positioning component is used to abut against the right end face of the radiator.
[0016] In one embodiment, the left positioning component includes a left fixing part and a left abutting part connected together. The left fixing part is connected to the clamp base, and the left abutting part is located on the left side of the placement slot. The left abutting part is used to abut against the left end face of the heat sink.
[0017] In one embodiment, the right-side positioning component includes a right-side drive member, a right-side mounting base, and a right-side abutment member. The right-side drive member is mounted on the right-side mounting base, and the power output end of the right-side drive member is connected to the right-side abutment member. The right-side drive member is used to drive the right-side abutment member to abut against the right end face of the radiator. A portion of the right-side abutment member is located on the right side of the placement slot, and the right-side mounting base is connected to the clamp base.
[0018] In one embodiment, the right-side abutment includes a right-side transition portion and a right-side abutment portion connected together. The right-side transition portion is connected to the power output end of the right-side drive member, and the right-side abutment portion is located on the right side of the placement slot. The right-side abutment portion is used to abut against the right end face of the radiator.
[0019] A radiator processing apparatus includes a main body and a side-drilling facilitating fixture structure as described in any of the above embodiments. The side-drilling facilitating fixture structure is connected to the main body and is used to clamp and fix the radiator. The main body is provided with a first drilling mechanism and a second drilling mechanism opposite to each other. The first drilling mechanism is used to drill a hole at one end of the radiator, and the second drilling mechanism is used to drill a hole at the other end of the radiator.
[0020] Compared with the prior art, this disclosure has at least the following advantages:
[0021] Because the radiator is rectangular, it has a top end face, a bottom end face, a front end face, a rear end face, a left end face, and a right end face. The cross-section of the placement slot is L-shaped. The radiator is placed in the placement slot so that the bottom end face and the rear end face of the radiator are in contact with the wall of the placement slot. The first positioning component is located in the placement slot and is used to abut against one end face of the radiator so that it abuts against the front end face of the radiator to hold the radiator in the placement slot. The second positioning component is located above the placement slot and is used to abut against one end face of the radiator so that it abuts against the top end face of the radiator to hold the radiator in the placement slot. The fixture base, the first positioning component, and the second positioning component work together to fix the radiator in the placement slot. The left end face and the right end face of the radiator are exposed in the placement slot. The left end face and the right end face of the radiator are both threaded surfaces, that is, the left end face and the right end face of the radiator need to be drilled so that threaded holes are opened at both ends of the radiator.
[0022] During the drilling process of the radiator in the radiator processing device, the fixture base, the first positioning component, and the second positioning component work together to fix the radiator in the placement groove. Both the left and right end faces of the radiator are exposed in the placement groove. The fixture base is used to connect to the main body of the device. The main body of the device is equipped with a first drilling mechanism and a second drilling mechanism. The first drilling mechanism is used to drill a hole at one end of the radiator, i.e., the left end face of the radiator. The second drilling mechanism is used to drill a hole at the other end of the radiator, i.e., the right end face of the radiator. This allows both the first and second drilling mechanisms of the main body of the device to facilitate drilling of the radiator. Side drilling allows for the creation of threaded holes at both ends of the radiator, enabling a single-pass drilling process. This reduces the number of drilling steps required by the radiator processing equipment, thus solving the problem in existing technologies where the equipment must first complete drilling at one end before drilling at the other. It also avoids the need for clamping and limiting the radiator again, resulting in fewer drilling steps and a faster drilling speed, ultimately leading to higher processing efficiency. Attached Figure Description
[0023] To more clearly illustrate the technical solutions of the embodiments of this disclosure, the accompanying drawings used in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this disclosure and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0024] Figure 1 This is a schematic diagram of a fixing fixture structure for facilitating side drilling according to one embodiment;
[0025] Figure 2 for Figure 1 A schematic diagram of the fixing fixture structure that facilitates side drilling from another perspective;
[0026] Figure 3 for Figure 1 The diagram shows a structural schematic of a fixed clamp structure that facilitates side drilling from one perspective. Detailed Implementation
[0027] To facilitate understanding of this disclosure, a more complete description will be given below with reference to the accompanying drawings, which illustrate preferred embodiments of the present disclosure. However, this disclosure can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure.
[0028] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0029] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of this disclosure. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0030] like Figures 1 to 3 As shown, in one embodiment, a fixing fixture structure 10 for easy side drilling is used to connect to the main body of the device.
[0031] Furthermore, the fixing fixture structure 10 for facilitating side drilling includes a fixture base 100, a first positioning component 200, and a second positioning component 300. The fixture base 100 is used to connect with the main body of the device, and the fixture base 100 has a placement groove 110 for placing the heat sink 30. The first positioning component 200 is located in the placement groove 110 and connected to the fixture base 100. The first positioning component 200 is used to abut against one end face of the heat sink 30 to hold the heat sink 30 in the placement groove 110. The second positioning component 300 is located above the placement groove 110 and connected to the fixture base 100. The second positioning component 300 is used to abut against one end face of the heat sink 30 to hold the heat sink 30 in the placement groove 110. There is an angle between the extension direction of the first positioning component 200 abutting against the heat sink 30 and the extension direction of the second positioning component 300 abutting against the heat sink 30.
[0032] In this embodiment, the cross-section of the placement slot 110 is L-shaped. The radiator 30 is cuboid in shape and has an upper end face, a lower end face, a front end face, a rear end face, a left end face, and a right end face. The fixture base 100 has a placement slot 110 for placing the radiator 30, that is, the radiator 30 is placed in the placement slot 110 so that the lower end face and the rear end face of the radiator 30 are in contact with the slot wall of the placement slot 110.
[0033] The aforementioned fixing fixture structure 10 for easy side drilling, since the radiator 30 is cuboid in shape, has an upper end face, a lower end face, a front end face, a rear end face, a left end face, and a right end face, and the placement groove 110 has an L-shaped cross-section, the radiator 30 is placed in the placement groove 110 so that the lower end face and the rear end face of the radiator 30 are in contact with the groove wall of the placement groove 110, the first positioning component 200 is located in the placement groove 110, the first positioning component 200 is used to abut against one end face of the radiator 30 so that the first positioning component 200 is used to abut against the front end face of the radiator 30, so that the radiator 30 is held in place in the placement groove 110; the second positioning component 300... Located above the placement groove 110, the second positioning component 300 is used to abut against one end face of the radiator 30, so that the second positioning component 300 is used to abut against the upper end face of the radiator 30, so that the radiator 30 is held in the placement groove 110, so that the clamp base 100, the first positioning component 200 and the second positioning component 300 work together to fix the radiator 30 in the placement groove 110. The left end face and the right end face of the radiator 30 are exposed in the placement groove 110. The left end face and the right end face of the radiator 30 are both threaded surfaces, that is, the left end face and the right end face of the radiator 30 need to be drilled so that threaded holes are opened at both ends of the radiator 30.
[0034] During the drilling process of the radiator 30 by the radiator processing device, the fixture base 100, the first positioning component 200, and the second positioning component 300 work together to fix the radiator 30 in the placement groove 110. Both the left and right end faces of the radiator 30 are exposed in the placement groove 110. The fixture base 100 is used to connect to the main body of the device. The main body of the device is provided with a first drilling mechanism 201 and a second drilling mechanism 202. The first drilling mechanism 201 is used to drill a hole at one end of the radiator 30, i.e., the left end face of the radiator 30. The second drilling mechanism 202 is used to drill a hole at the other end of the radiator 30, i.e., the right end face of the radiator 30. This allows the first drilling mechanism 201 of the main body of the device to be positioned such that... Both the first and second drilling mechanisms 1 and 202 facilitate side drilling of the radiator 30, allowing the radiator 30 to have threaded holes at both ends. This enables the threaded holes at both ends of the radiator 30 to be drilled in one go, reducing the number of drilling steps required by the radiator processing device. This solves the problem in the prior art where the radiator processing device first completes drilling at one end and then at the other end. It also avoids the need for the radiator processing device to perform a series of operations such as clamping and limiting the radiator 30 again, resulting in fewer steps when drilling the radiator 30. Consequently, the processing speed of the radiator processing device when drilling the radiator 30 is faster, and the processing efficiency of the radiator processing device is higher.
[0035] like Figures 1 to 3 As shown, in one embodiment, the first positioning component 200 includes a first driving member 210, a first mounting base 220, and a first abutting portion 230. The first driving member 210 is mounted on the first mounting base 220, and the power output end of the first driving member 210 is connected to the first abutting portion 230. The first driving member 210 is used to drive the first abutting portion 230 to abut against one end face of the radiator 30. The first mounting base 220 is located in the placement groove 110 and connected to the clamp base 100. In this embodiment, the first driving member 210 is a drive motor or a drive cylinder.
[0036] like Figures 1 to 3 As shown, in one embodiment, the clamp base 100 has a protruding connecting portion 120, which is connected to the second positioning component 300. In this embodiment, the clamp base 100 and the connecting portion 120 are integrally formed, resulting in high structural strength between the clamp base 100 and the connecting portion 120.
[0037] like Figures 1 to 3As shown, in one embodiment, the second positioning component 300 includes a second driving member 310, a second mounting base 320, and a second abutting portion 330. The second driving member 310 is mounted on the second mounting base 320, and the power output end of the second driving member 310 is connected to the second abutting portion 330. The second driving member 310 is used to drive the second abutting portion 330 to abut against one end face of the radiator 30. The second mounting base 320 is connected to the connecting portion 120. In this embodiment, the second driving member 310 is a drive motor or a drive cylinder.
[0038] like Figure 1 As shown, in one embodiment, the angle between the first positioning component 200 abutting against the extending direction of the heat sink 30 and the second positioning component 300 abutting against the extending direction of the heat sink 30 is 90°, so that the extending direction of the first positioning component 200 abutting against the extending direction of the heat sink 30 and the extending direction of the second positioning component 300 abutting against the extending direction of the heat sink 30 are perpendicular to each other.
[0039] like Figures 1 to 3 As shown, in one embodiment, the fixing fixture structure 10 for facilitating side drilling further includes a left positioning component 400 and a right positioning component 500 disposed opposite to each other. Both the left positioning component 400 and the right positioning component 500 are connected to the fixture base 100. A portion of the left positioning component 400 is located on the left side of the placement groove 110 and is used to abut against the left end face of the radiator 30. A portion of the right positioning component 500 is located on the right side of the placement groove 110 and is used to abut against the right end face of the radiator 30.
[0040] like Figures 1 to 3 As shown, in one embodiment, the left positioning component 400 includes a left fixing part 410 and a left abutting part 420 connected to each other. The left fixing part 410 is connected to the clamp base 100, and the left abutting part 420 is located on the left side of the placement groove 110. The left abutting part 420 is used to abut against the left end face of the heat sink 30. In this embodiment, the projected area of the left abutting part 420 on the left end face of the heat sink 30 is smaller than the actual area of the left end face, that is, the left abutting part 420 cannot block the left end face, thus avoiding the problem of the left abutting part 420 interfering with the drilling process of the first drilling mechanism 201.
[0041] like Figures 1 to 3As shown, in one embodiment, the right-side positioning assembly 500 includes a right-side drive member 510, a right-side mounting base 520, and a right-side abutment member 530. The right-side drive member 510 is mounted on the right-side mounting base 520, and the power output end of the right-side drive member 510 is connected to the right-side abutment member 530. The right-side drive member 510 is used to drive the right-side abutment member 530 to abut against the right end face of the radiator 30. A portion of the right-side abutment member 530 is located on the right side of the placement slot 110. The right-side mounting base 520 is connected to the clamp base 100. In this embodiment, the right-side drive member 510 is a drive motor or a drive cylinder.
[0042] like Figures 1 to 3 As shown, in one embodiment, the right-side abutment 530 includes a right-side transition portion 531 and a right-side abutment portion 532 connected together. The right-side transition portion 531 is connected to the power output end of the right-side drive member 510, and the right-side abutment portion 532 is located on the right side of the placement groove 110, and is used to abut against the right end face of the radiator 30. In this embodiment, the projected area of the right-side abutment portion 532 on the right end face of the radiator 30 is smaller than the actual area of the right end face, that is, the right-side abutment portion 532 cannot block the right end face, thus avoiding the problem of the right-side abutment portion 532 interfering with the drilling process of the second drilling mechanism 202.
[0043] This disclosure also provides a radiator processing apparatus, including an apparatus body and a fixing clamp structure 10 for side drilling according to any of the above embodiments. The fixing clamp structure 10 for side drilling is connected to the apparatus body and is used to clamp and fix the radiator 30. The apparatus body is provided with a first drilling mechanism 201 and a second drilling mechanism 202 opposite to each other. The first drilling mechanism 201 is used to drill a hole at one end of the radiator 30, and the second drilling mechanism 202 is used to drill a hole at the other end of the radiator 30.
[0044] Compared with the prior art, this disclosure has at least the following advantages:
[0045] Since the radiator 30 is rectangular, it has a top end face, a bottom end face, a front end face, a rear end face, a left end face, and a right end face. The cross-section of the placement groove 110 is L-shaped. The radiator 30 is placed in the placement groove 110 so that the bottom end face and the rear end face of the radiator 30 are in contact with the groove wall of the placement groove 110. The first positioning component 200 is located in the placement groove 110 and is used to abut against one end face of the radiator 30, so that the first positioning component 200 abuts against the front end face of the radiator 30 to hold the radiator 30 in place in the placement groove 110. The second positioning component 300 is located in the placement groove 110. Above, the second positioning component 300 is used to abut against one end face of the radiator 30, so that the second positioning component 300 is used to abut against the upper end face of the radiator 30, so that the radiator 30 is held in the placement groove 110, so that the clamp base 100, the first positioning component 200 and the second positioning component 300 work together to fix the radiator 30 in the placement groove 110. The left end face and the right end face of the radiator 30 are exposed in the placement groove 110. The left end face and the right end face of the radiator 30 are both threaded surfaces, that is, the left end face and the right end face of the radiator 30 need to be drilled so that threaded holes are opened at both ends of the radiator 30.
[0046] During the drilling process of the radiator 30 by the radiator processing device, the fixture base 100, the first positioning component 200, and the second positioning component 300 work together to fix the radiator 30 in the placement groove 110. Both the left and right end faces of the radiator 30 are exposed in the placement groove 110. The fixture base 100 is used to connect to the main body of the device. The main body of the device is provided with a first drilling mechanism 201 and a second drilling mechanism 202. The first drilling mechanism 201 is used to drill a hole at one end of the radiator 30, i.e., the left end face of the radiator 30. The second drilling mechanism 202 is used to drill a hole at the other end of the radiator 30, i.e., the right end face of the radiator 30. This allows the first drilling mechanism 201 of the main body of the device to be positioned such that... Both the first and second drilling mechanisms 1 and 202 facilitate side drilling of the radiator 30, allowing the radiator 30 to have threaded holes at both ends. This enables the threaded holes at both ends of the radiator 30 to be drilled in one go, reducing the number of drilling steps required by the radiator processing device. This solves the problem in the prior art where the radiator processing device first completes drilling at one end and then at the other end. It also avoids the need for the radiator processing device to perform a series of operations such as clamping and limiting the radiator 30 again, resulting in fewer steps when drilling the radiator 30. Consequently, the processing speed of the radiator processing device when drilling the radiator 30 is faster, and the processing efficiency of the radiator processing device is higher.
[0047] The embodiments described above are merely illustrative of several implementations of this disclosure, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the disclosed patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this disclosure, and these all fall within the protection scope of this disclosure. Therefore, the protection scope of this patent should be determined by the appended claims.
Claims
1. A fixed jig structure for facilitating lateral drilling for use in connection with a device body, characterized by, The utility model provides a fixing clamp structure for facilitating side drilling, comprising: a clamp base connected with the device body, the clamp base being provided with a placing groove for placing a heat sink; a first positioning assembly located in the placing groove and connected with the clamp base, the first positioning assembly being used for abutting against an end face of the heat sink to hold the heat sink in the placing groove; a second positioning assembly located above the placing groove and connected with the clamp base, the second positioning assembly being used for abutting against an end face of the heat sink to hold the heat sink in the placing groove, and the first positioning assembly and the second positioning assembly abut against the heat sink at angles to each other.
2. The fixed-jig structure for facilitating a side tracking according to claim 1, wherein The first positioning assembly comprises a first driving member, a first mounting seat and a first holding part, the first driving member is mounted on the first mounting seat, a power output end of the first driving member is connected with the first holding part, the first driving member is used for driving the first holding part to abut against an end face of the heat sink, and the first mounting seat is located in the placing groove and connected with the clamp base.
3. The fixed-jig structure for facilitating a side tracking according to claim 1, wherein The clamp base is provided with a connecting part connected with the second positioning assembly.
4. The secure fixture structure for lateral drilling according to claim 3, wherein The second positioning assembly comprises a second driving member, a second mounting seat and a second holding part, the second driving member is mounted on the second mounting seat, a power output end of the second driving member is connected with the second holding part, the second driving member is used for driving the second holding part to abut against an end face of the heat sink, and the second mounting seat is connected with the connecting part.
5. The secure fixture structure for facilitating a lateral drilling according to claim 1, wherein, The angle between the extension direction of the first positioning assembly and the extension direction of the second positioning assembly is 90°.
6. The secure fixture structure for facilitating a lateral drilling according to claim 1, wherein, The fixing clamp structure for facilitating side drilling further comprises a left positioning assembly and a right positioning assembly arranged oppositely, the left positioning assembly and the right positioning assembly are connected with the clamp base, part of the left positioning assembly is located on the left side of the placing groove, and the left positioning assembly is used for abutting against a left end face of the heat sink; part of the right positioning assembly is located on the right side of the placing groove, and the right positioning assembly is used for abutting against a right end face of the heat sink.
7. The secure fixture structure for lateral drilling according to claim 6, wherein The left positioning assembly comprises a left fixing part and a left holding part connected with each other, the left fixing part is connected with the clamp base, and the left holding part is located on the left side of the placing groove and used for abutting against a left end face of the heat sink.
8. The secure fixture structure for facilitating a lateral drilling according to claim 6, wherein, The right positioning assembly comprises a right driving member, a right mounting seat and a right holding member, the right driving member is mounted on the right mounting seat, a power output end of the right driving member is connected with the right holding member, the right driving member is used for driving the right holding member to abut against a right end face of the heat sink, part of the right holding member is located on the right side of the placing groove, and the right mounting seat is connected with the clamp base.
9. The secure fixture structure for facilitating a lateral drilling according to claim 8, wherein, The right side abutting member comprises a right side transition part and a right side abutting part connected with each other, the right side transition part is connected to the power output end of the right side driving member, and the right side abutting part is located at the right side of the placing groove and used for abutting against the right end surface of the heat radiator.
10. A heat sink processing apparatus characterized by comprising: The device body is provided with a first drilling mechanism and a second drilling mechanism in opposite positions, the first drilling mechanism is used for drilling one end of the heat radiator, and the second drilling mechanism is used for drilling the other end of the heat radiator.
Citation Information
Patent Citations
A drilling and machining equipment for positioning finned heat sinks
CN116275196B