Switch light handle body mold

By combining a three-layer insert structure with a power component, the main mold of the switch light handle solves the problem of traditional molds not being able to demold smoothly, and achieves product ejection without damage and efficient production.

CN122442886APending Publication Date: 2026-07-24江门塚田正川科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
江门塚田正川科技有限公司
Filing Date
2026-06-18
Publication Date
2026-07-24

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    Figure CN122442886A_ABST
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Abstract

The application provides a combined switch light handle main body mold, which comprises a front mold and a rear mold, the front mold is provided with a front mold core and two first row position assemblies, the first row position assembly comprises a first insert, a first power piece and a first row position seat, the two ends of the first insert are connected with the first row position seat and the front mold core respectively, and the first power piece can force the first insert to demold; the rear mold is provided with a rear mold core, a third row position assembly and two second row position assemblies, the rear mold core forms a cavity with the front mold core, and the two second row position assemblies are arranged on the two sides of the rear mold core; the second row position assembly comprises a second insert, a third insert, a second row position seat and a second power piece, the first insert, the second insert and the third insert are sequentially arranged in the opening direction, the second end of each of the second insert and the third insert is inserted into the rear mold core, and the second power piece can force the second insert and the third insert to demold; the combined switch light handle main body with complex structure can be formed through the sequential demolding of the multilayer row position assemblies.
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Description

Technical Field

[0001] This invention relates to the field of molds, specifically to a main mold for a combination switch light handle. Background Technology

[0002] like Figure 1 As shown, Product 1, from top to bottom, includes a first column 11, a first protruding structure 12, a groove 13, a second protruding structure 14, and a second column 15. A first annular groove 16 is formed between the first protruding structure 12 and the first column 11, with an opening facing the side where the first column 11 is located. A second annular groove 17 is formed between the second protruding structure 14 and the second column 15, with an opening facing the side where the second column 15 is located. The groove 13 has a radially spaced opening. Due to the complex structure of Product 1, which involves undercut structures in different positions and orientations, traditional ejection structures cannot achieve demolding. Forced ejection would damage Product 1, affecting its precision and usability, making it inconvenient for production and practical. Summary of the Invention

[0003] The purpose of this invention is to provide a combination switch light handle body mold for sequential demolding of multi-layer row components.

[0004] To achieve the above objectives, the present invention provides a main body mold for a combination switch light handle, comprising a front mold and a rear mold. The front mold is provided with a front mold core and two first sliding components, which are respectively disposed on both sides of the front mold core in a first direction. Each first sliding component includes a first insert, a first power component, and a first sliding seat. The first end of the first insert is connected to the first sliding seat, and the second end of the first insert is inserted into the front mold core. The first power component is slidably connected to the first sliding seat to force the first sliding seat and the first insert to move along a first direction, which is perpendicular to the mold opening direction. The rear mold is provided with a rear mold core, a third sliding component, and two second sliding components. The rear mold core and the front mold core are connected along the mold opening direction. The mold cavity is formed by corresponding directions. Two second sliding components are respectively set on both sides of the rear mold core in the first direction, and a third sliding component is set on one side of the rear mold core in the second direction. The second direction, the first direction, and the mold opening direction are perpendicular to each other. The second sliding component includes a second insert, a third insert, a second sliding seat, and a second power component. The first insert, the second insert, and the third insert are arranged sequentially along the mold opening direction. The first end of each of the second insert and the third insert is connected to the second sliding seat, and the second end of each of the second insert and the third insert is inserted into the rear mold core. The second power component is connected to the second sliding seat to force the second sliding seat, the second insert, and the third insert to move along the first direction.

[0005] As can be seen from the above scheme, by setting the first insert, the second insert and the third insert in sequence along the mold opening direction, they are used to realize the undercut demolding of different parts of the product respectively. The present invention adopts a three-layer insert structure, which can realize the orderly ejection of each part. It can effectively realize the ejection operation without damaging the product. Moreover, its structure is simple, the production cost is low, it is easy to produce and use, and it is highly practical.

[0006] A further option is that the front mold core has first tunnel holes on both sides in the first direction, and the two first tunnel holes are connected to the first end of the cavity. The two first inserts are slidably inserted into the corresponding first tunnel holes.

[0007] As can be seen from the above scheme, by setting the first tunnel hole in the front mold core, not only can the movement direction of the first insert be limited, but the mold structure can also be effectively simplified and the number of scattered inserts reduced.

[0008] A further option is that the first power component and the second sliding seat are arranged correspondingly along the mold opening direction. One end of the first power component is provided with a protrusion, and the second sliding seat is provided with a groove, and the protrusion can cooperate with the groove.

[0009] As can be seen from the above scheme, with the above settings, when the mold is closed, the protrusion is embedded in the groove, which can further lock the mold closing position of the second row seat, thereby fixing the mold closing positions of the second insert and the third insert, which is conducive to improving the injection molding quality of the product and avoiding the formation of unnecessary clamping lines on the product.

[0010] A further option is to provide second tunnel holes on both sides of the rear mold core in the first direction, with the two second tunnel holes communicating with the second end of the cavity respectively, and the two third inserts being slidably inserted into the corresponding second tunnel holes.

[0011] As can be seen from the above scheme, by opening a second tunnel hole in the rear mold core, the movement direction of the third insert can be restricted, and the mold structure can be simplified, reducing the number of scattered inserts.

[0012] A further option is to provide two mounting holes on the side of the rear mold core near the front mold core. The two mounting holes are respectively located on both sides of the rear mold core in the first direction, and both mounting holes are connected to the cavity. The two second inserts are slidably inserted into the corresponding mounting holes.

[0013] As can be seen from the above scheme, by opening mounting holes on the rear mold core, the movement direction of the second insert can be restricted, and the mold structure can be simplified, reducing the number of scattered inserts.

[0014] A further embodiment is that the third slide assembly includes a fourth insert, a third slide seat, and a third power component. The first end of the fourth insert is connected to the third slide seat, and the second end of the fourth insert is inserted into the rear mold core and partially embedded between the two second inserts. The third power component is slidably connected to the third slide seat to force the third slide seat and the fourth insert to move along the second direction.

[0015] As can be seen from the above scheme, the above settings are used for the middle structure of the molded product, which facilitates orderly demolding.

[0016] A further embodiment is that a first central insert is provided in the front mold core, one end of which is fixedly connected to the front mold core, and the second end of which is located between the second ends of the first insert and the second insert; a second central insert is provided in the rear mold core, one end of which is fixedly connected to the rear mold core, and the second end of which is located between the second end of the second insert and the second end of the third insert.

[0017] As can be seen from the above scheme, with the above settings, the structure used for the inner side of the molded product moves together with the front mold core and the second center insert moves with the rear mold core during demolding, which is conducive to achieving an orderly and smooth demolding process.

[0018] A further embodiment is that a front insert and a front ejector pin are provided in the front mold core. The front insert extends along the mold opening direction and is positioned above the first insert. One end of the front ejector pin is positioned inside the front insert, and the other end of the front ejector pin extends into the first center insert. A rear insert is provided in the rear mold core. The rear insert extends along the mold opening direction and is positioned below the third insert. An ejector pin hole is provided in the rear insert.

[0019] As can be seen from the above scheme, the front insert and front ejector pin are used to form the upper end of the product, and the rear insert is used to form the lower end of the product, while also facilitating the ejector pin to eject the product.

[0020] A further embodiment is that the front mold also includes a top plate and a front template. The top plate is located on the side of the front template facing away from the rear mold. The front mold core is located inside the front template. The first end of the first power component is connected to the top plate, and the second end of the first power component passes through the front template and is inserted into the first row seat.

[0021] As can be seen from the above scheme, by setting up the above, the mold between the top plate and the front plate is opened first before the mold between the front plate and the rear plate, so as to drive the first power component to move upward along the mold opening direction, so as to drive the first row seat and the first insert to be demolded.

[0022] A further design involves providing two cavities between the front mold core and the rear mold core, with the two cavities arranged along a second direction. Each cavity is provided with a third sliding component, two first sliding components, and two second sliding components. The main body mold of the combination switch light handle is provided with two front mold cores and two rear mold cores, with the two front mold cores corresponding to the two rear mold cores one-to-one, and the two front mold cores arranged along a first direction.

[0023] As can be seen from the above scheme, with the above settings, two products can be formed simultaneously between the front mold core and the rear mold core, which is beneficial to improving production efficiency; by setting two front mold cores and two rear mold cores, four products can be formed at one time, which further improves production efficiency. Attached Figure Description

[0024] Figure 1 This is a structural diagram of the product.

[0025] Figure 2 This is a structural diagram of an embodiment of the present invention.

[0026] Figure 3 This is a cross-sectional view of an embodiment of the present invention.

[0027] Figure 4 This is a structural diagram of a key component in an embodiment of the present invention.

[0028] Figure 5 This is a top view of a key component in an embodiment of the present invention.

[0029] Figure 6 yes Figure 5 Sectional view at point AA.

[0030] Figure 7 yes Figure 5 Sectional view at point BB.

[0031] Figure 8 This is an exploded view of a key component in an embodiment of the present invention.

[0032] Figure 9 This is a structural diagram of the key components in this embodiment of the invention, omitting the front mold core and the rear mold core.

[0033] Figure 10 This is a structural diagram of the front mold core and the rear mold core in an embodiment of the present invention.

[0034] Explanation of reference numerals in the attached figures: 1-Product, 11-First column, 12-First protrusion structure, 13-Groove, 14-Second protrusion structure, 15-Second column, 16-First annular groove, 17-Second annular groove; 2-Front mold, 21-Top plate, 22-Front template, 23-Front mold core, 231-First tunnel hole, 24-First sliding assembly, 241-First insert, 2411-First forming groove, 242-First power component, 2421-Angled action part, 2422-Protrusion, 243-First sliding seat, 2431-First angled sliding hole, 25-First center insert, 26-Front insert, 261-Front forming groove, 27-Front ejector pin; 3-Rear mold, 31-Rear mold base, 32-Ejector plate, 33-Base plate, 34-Rear mold core, 341-Second tunnel hole, 342-Mounting hole, 35-Third sliding assembly, 351-Fourth insert, 3511-Fourth forming groove, 352-Third sliding seat, 353-Third power component, 36-Second sliding assembly, 361-Second insert, 3611-Second forming groove, 362-Third insert, 3621-Third forming groove, 363-Second sliding seat, 3631-First inclined slide, 3632-Groove, 364-Second power component one, 3641-First inclined slider, 365-Second power component two, 37-Second center insert, 38-Rear insert, 381-Rear forming groove, 382-Ejector hole, 39-Lower ejector pin; 4-Cavity, 41-First columnar cavity, 42-First protruding structural cavity, 43-Groove cavity, 44-Second protruding structural cavity, 45-Second columnar cavity.

[0035] The present invention will be further described below with reference to the accompanying drawings and embodiments. Detailed Implementation

[0036] See Figure 2 and Figure 3 The combination switch light handle body mold provided in this embodiment includes a front mold 2 and a rear mold 3. The front mold 2 has two front mold cores 23 arranged along a first direction; the rear mold 3 has two rear mold cores 34 arranged along the first direction, with each front mold core 23 corresponding to one of the two rear mold cores 34. Two cavities 4 are provided between each front mold core 23 and its corresponding rear mold core 34, arranged along a second direction, achieving four cavities in one mold, which helps improve production efficiency. The first direction, the second direction, and the mold opening direction are all perpendicular to each other.

[0037] See Figures 3 to 9 The front mold 2 also includes a top plate 21, a front template 22, and multiple first sliding components 24. The top plate 21 is located on the side of the front template 22 facing away from the rear mold 3, the front mold core 23 is located inside the front template 22, and each front mold core 23 has two first sliding components 24 on both sides in the first direction.

[0038] The rear mold 3 also includes a rear mold base 31, an ejector plate 32, a base plate 33, multiple second sliding components 36, and multiple third sliding components 35. The rear mold core 34 is disposed on the rear mold base 31, and each rear mold core 34 has two second sliding components 36 on both sides in the first direction, and two third sliding components 35 on both sides in the second direction.

[0039] The front mold core 23 and the rear mold core 34 are correspondingly arranged along the mold opening direction to form two cavities 4. The two cavities 4 are arranged along the second direction, and each cavity 4 extends along the mold opening direction.

[0040] In this embodiment, each cavity 4 is provided with a third positioning component 35, two first positioning components 24, and two second positioning components 36. The cavity 4 includes, from top to bottom, a first cylindrical cavity 41, a first protruding structure cavity 42, a recessed cavity 43, a second protruding structure cavity 44, and a second cylindrical cavity 45. The first cylindrical cavity 41, the first protruding structure cavity 42, the recessed cavity 43, the second protruding structure cavity 44, and the second cylindrical cavity 45 are respectively provided in a one-to-one correspondence with the first cylindrical body 11, the first protruding structure 12, the recessed portion 13, the second protruding structure 14, and the second cylindrical body 15.

[0041] The first sliding assembly 24 is disposed on the front mold base 22. The first sliding assembly 24 includes a first insert 241, a first power component 242, and a first sliding seat 243. The first end of the first insert 241 is connected to the first sliding seat 243, and the second end of the first insert 241 is inserted into the front mold core 23. The second end of the first insert 241 has a first forming groove 2411. Both first forming grooves 2411 communicate with the first column cavity 41 for forming the first column 11 of product 1. The first power component 242 is slidably connected to the first sliding seat 243 to force the first sliding seat 243 and the first insert 241 to move along a first direction. Specifically: The first power component 242 is preferably an inclined top. The first end of the first power component 242 is fixed to the top plate 21 by screws. The middle part of the first power component 242 is inserted into the front template 22. The second end of the first power component 242 is provided with an inclined action part 2421, which extends downwards and inclines away from the cavity 4 along the mold opening direction. The first slide seat 243 has a first inclined sliding hole 2431, which is connected to the inclined action part 2421. The inclined action part 2421 is slidably inserted into the first inclined sliding hole 2431.

[0042] The second positioning assembly 36 includes a second insert 361, a third insert 362, a second positioning seat 363, and a second power component. The first insert 241, the second insert 361, and the third insert 362 are arranged sequentially along the mold opening direction, with the first end of each of the second insert 361 and the third insert 362 connected to the second positioning seat 363, and the second end of each of the second insert 361 and the third insert 362 inserted into the rear mold core 34. The second end of the second insert 361 has a second forming groove 3611, which communicates with the groove cavity 43. In this embodiment, the two second inserts 361 are respectively located on the left and right sides of the groove cavity 43. The second end of the third insert 362 has a third forming groove 3621, which communicates with the second column cavity 45. In this embodiment, the two third inserts 362 are respectively located on the left and right sides of the second column cavity 45. The second power member is slidably connected to the second row seat 363 to force the second row seat 363, the second insert 361 and the third insert 362 to move along the first direction.

[0043] The structures of the second power components on both sides of the rear mold core 34 can be the same or different; in this embodiment, the latter is preferred. Specifically, the second sliding assembly 36 located between the two rear mold cores 34 can share one second power component, which is named second power component one 364 for ease of explanation. The second power components of the two second sliding assemblies 36 located on the opposite sides of the two rear mold cores 34 are independently provided, and both of these second power components are named second power component two 365.

[0044] In this embodiment, the upper part of the second power component 364 is connected to the front mold core 23, and the lower two sides of the second power component 364 are provided with first inclined sliders 3641. The corresponding second row seats 363 are provided with first inclined grooves 3631, which slide in conjunction with the first inclined sliders 3641 to simultaneously drive the second row seats 363 on both sides to move, and the two second row seats 363 move in opposite directions. The sliding contact between the first inclined grooves 3631 and the first inclined sliders 3641 is conventional technology in the art and will not be described in detail here.

[0045] In this embodiment, the second power component 365 is preferably an inclined rod extending downwards from the cavity 4 in the mold opening direction. The upper part of the inclined rod is connected to the first fixed seat of the front mold base 22, and the lower part of the inclined rod is slidably inserted into the first inclined groove 3631 of the corresponding second row seat 363 to drive the second row seat 363 to move along the first direction.

[0046] The second row seat 363 is located below the first row seat 243. The lower part of the first power member 242 is provided with a protrusion 2422, which protrudes from the first inclined sliding hole 2431 of the first row seat 243. The cross-sectional shape of the protrusion 2422 is an inverted trapezoid. The protrusion 2422 is provided with a first inclined surface on both sides in the first direction, and both first inclined surfaces extend inclinedly towards the center of the protrusion 2422 along the mold opening direction.

[0047] The top surface of the second row seat 363 has a trapezoidal groove 3632 with an upward-facing opening. During mold closing, the protrusion 2422 is embedded in the groove 3632 and engages with it to prevent the second row seat 363 from shifting, ensuring that the second insert 361 and the third insert 362 are properly closed, thereby guaranteeing the injection molding quality of product 1.

[0048] The third positioning assembly 35 includes a fourth insert 351, a third positioning seat 352, and a third power component 353. The first end of the fourth insert 351 is connected to the third positioning seat 352, and the second end of the fourth insert 351 is inserted into the rear mold core 34 and partially embedded between two second inserts 361. The second end of the fourth insert 351 is provided with a protrusion 3512 and a fourth forming groove 3511. The protrusion 3512 is embedded between the two second inserts 361, and the fourth forming groove 3511 forms part of the cavity wall of the second cylindrical cavity 45.

[0049] The third power member 353 is preferably an inclined rod that extends downwards and away from the cavity 4 in the mold opening direction. The upper part of the third power member 353 is connected to the second fixed seat of the front mold base 22, and the lower part of the third power member 353 is slidably connected to the third row seat 352, so as to force the third row seat 352 and the fourth insert 351 to move in the second direction.

[0050] A first center insert 25 is provided in the center hole of the front mold core 23. One end of the first center insert 25 is fixedly connected to the front mold core 23, and the other end of the first center insert 25 is located between the second ends of the first insert 241 and the second insert 361. The first protruding structural cavity 42 is located between the first center insert 25 and the wall of the center hole of the front mold core 23.

[0051] A second center insert 37 is provided in the center hole of the rear mold core 34. One end of the second center insert 37 is fixedly connected to the rear mold core 34, and the other end of the second center insert 37 is located between the second ends of the second insert 361 and the third insert 362. The second protruding structural cavity 44 is located between the second center insert 37 and the wall of the center hole of the rear mold core 34.

[0052] The front insert 26 and the front ejector pin 27 are provided in the middle of the front mold core 23. The front insert 26 is located above the first insert 241 and extends along the mold opening direction. The lower part of the front insert 26 is provided with a front forming groove 261, which communicates with the first column cavity 41. One end of the front ejector pin 27 is inserted into the front insert 26, and the other end of the front ejector pin 27 passes through the front insert 26 and between the two first inserts 241 and is inserted into the first center insert 25.

[0053] A rear insert 38 is provided in the middle of the rear mold core 34. The rear insert 38 is located below the third insert 362 and extends along the mold opening direction. A rear forming groove 381 is provided on the upper part of the rear insert 38, which communicates with the second column cavity 45. An ejector pin hole 382 is provided through the rear insert 38 from top to bottom. The upper part of the lower ejector pin 39 is inserted into the ejector pin hole 382 and extends towards the end of the second column cavity 45. The lower part of the lower ejector pin 39 is connected to the ejector plate 32.

[0054] See Figure 10 and combined Figure 6 Two first tunnel holes 231 are formed on both sides of the front mold core 23 in the first direction. The two first tunnel holes 231 are arranged along the second direction and extend along the first direction to communicate with the first end of the cavity 4. Two first inserts 241 are slidably inserted into the corresponding first tunnel holes 231.

[0055] Two second tunnel holes 341 are formed on both sides of the rear mold core 34 in the first direction. The two second tunnel holes 341 are arranged along the second direction and extend along the first direction to communicate with the second end of the cavity 4. Two third inserts 362 are slidably inserted into the corresponding second tunnel holes 341.

[0056] The rear mold core 34, near the end of the front mold core 23, is provided with four mounting holes 342. These four mounting holes 342 are respectively located on both sides of the cavity 4 in the first direction, with two mounting holes 342 on the same side arranged along the second direction. The mounting holes 342 communicate with the cavity 4. In the mold opening direction, the mounting holes 342 are located between the first tunnel hole 231 and the second tunnel hole 341, and two second inserts 361 are slidably inserted into their corresponding mounting holes 342.

[0057] Combination Figure 3 , Figure 6 and Figure 7When the mold is opened, firstly, the top plate 21 and the front mold base 22 are opened, so that the first sliding seat 243 and the first insert 241 are moved away from the cavity 4 by the first power component 242, so that the first insert 241 is demolded from the product 1; then, the front mold base 22 and the rear mold base 31 are opened, and the second power component is driven to move the second sliding seat 363, the second insert 361 and the third insert 362 away from the cavity 4, so that the second insert 361 and the third insert 362 are both demolded from the product 1; at the same time, the third power component 353 is driven to move the third sliding seat 352 and the fourth insert 351 away from the cavity 4, so that the fourth insert 351 is demolded from the product 1.

[0058] In summary, the present invention uses a three-layer insert structure to achieve the undercut of different parts of the product by arranging the first insert, the second insert and the third insert in sequence along the mold opening direction. The present invention adopts a three-layer insert structure to achieve orderly ejection of each part, which can effectively eject the product without damaging it. Moreover, the structure is simple, the production cost is low, it is easy to produce and use, and it is highly practical.

[0059] Finally, it should be emphasized that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A main mold for a combination switch light handle, comprising a front mold and a rear mold, characterized in that: The front mold is provided with a front mold core and two first sliding components. The two first sliding components are respectively disposed on both sides of the front mold core in a first direction. The first sliding component includes a first insert, a first power component and a first sliding seat. The first end of the first insert is connected to the first sliding seat and the second end of the first insert is inserted into the front mold core. The first power component is slidably connected to the first sliding seat to force the first sliding seat and the first insert to move along the first direction, which is perpendicular to the mold opening direction. The rear mold is provided with a rear mold core, a third sliding component and two second sliding components. The rear mold core and the front mold core are correspondingly arranged along the mold opening direction and form a cavity. The two second sliding components are respectively arranged on both sides of the rear mold core in the first direction, and the third sliding component is arranged on one side of the rear mold core in the second direction. The second direction, the first direction and the mold opening direction are perpendicular to each other. The second sliding assembly includes a second insert, a third insert, a second sliding seat, and a second power component. The first insert, the second insert, and the third insert are arranged sequentially along the mold opening direction. The first ends of the second insert and the third insert are connected to the second sliding seat, and the second ends of the second insert and the third insert are inserted into the rear mold core. The second power component is slidably connected to the second sliding seat to force the second sliding seat, the second insert, and the third insert to move along the first direction.

2. The main body mold of the combination switch light handle according to claim 1, characterized in that: The front mold core has first tunnel holes on both sides in the first direction. Both first tunnel holes are connected to the first end of the cavity. The two first inserts are slidably inserted into the corresponding first tunnel holes.

3. The main body mold of the combination switch light handle according to claim 1, characterized in that: The first power component and the second row seat are arranged correspondingly along the mold opening direction. One end of the first power component is provided with a protrusion, and the second row seat is provided with a groove. The protrusion can cooperate with the groove.

4. The main body mold of the combination switch light handle according to claim 1, characterized in that: The rear mold core has two second tunnel holes on both sides in the first direction. The two second tunnel holes are respectively connected to the second end of the cavity. The two third inserts are respectively slidably inserted into the corresponding second tunnel holes.

5. The main body mold of the combination switch light handle according to claim 1, characterized in that: The rear mold core is also provided with two mounting holes on the side near the front mold core. The two mounting holes are respectively located on both sides of the rear mold core in the first direction, and both mounting holes are connected to the cavity. The two second inserts are respectively slidably inserted into the corresponding mounting holes.

6. The main body mold of the combination switch light handle according to claim 1, characterized in that: The third row component includes a fourth insert, a third row seat, and a third power component. The first end of the fourth insert is connected to the third row seat, and the second end of the fourth insert is inserted into the rear mold core and partially embedded between the two second inserts. The third power member is slidably connected to the third row seat to force the third row seat and the fourth insert to move along the second direction.

7. The main body mold of the combination switch light handle according to claim 1, characterized in that: A first central insert is provided inside the front mold core. One end of the first central insert is fixedly connected to the front mold core, and the second end of the first central insert is disposed between the second ends of the first insert and the second insert, respectively. A second central insert is provided inside the rear mold core. One end of the second central insert is fixedly connected to the rear mold core, and the second end of the second central insert is disposed between the second ends of the second insert and the third insert.

8. The main body mold of the combination switch light handle according to claim 7, characterized in that: The front mold core is provided with a front insert and a front ejector pin. The front insert extends along the mold opening direction and is disposed above the first insert. One end of the front ejector pin is disposed in the front insert, and the other end of the front ejector pin extends into the first center insert. A rear insert is provided inside the rear mold core. The rear insert extends along the mold opening direction and is located below the third insert. An ejector pin hole is provided inside the rear insert.

9. The main body mold of the combination switch light handle according to claim 1, characterized in that: The front mold also includes a top plate and a front template. The top plate is disposed on the side of the front template facing away from the rear mold. The front mold core is disposed inside the front template. The first end of the first power component is connected to the top plate, and the second end of the first power component passes through the front template and is inserted into the first sliding seat.

10. The main body mold of the combination switch light handle according to any one of claims 1 to 9, characterized in that: Two cavities are provided between the front mold core and the rear mold core. The two cavities are arranged along the second direction, and each cavity is correspondingly provided with the third sliding component, two first sliding components, and two second sliding components. The main body mold of the combination switch light handle is provided with two front mold cores and two rear mold cores, with the two front mold cores and the two rear mold cores corresponding one-to-one, and the two front mold cores are arranged along the first direction.