Semi-automatic production device for soldering tin sleeve

By designing a semi-automatic production device for solder sleeves and using turntables and automated components to achieve assembly line operations of solder sleeves, the problem of low production efficiency was solved, the degree of automation and production efficiency were improved, and labor costs were reduced.

CN223354943UActive Publication Date: 2025-09-19SHANGHAI CHANGYUAN ELECTRONICS MATERIAL
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Patent Information

Application Number
CN202422827763.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2025-09-19
Estimated Expiration
2034-11-20

AI Technical Summary

Technical Problem

The existing solder sleeve production efficiency is low and the degree of automation is low, which makes it impossible to achieve mass production and meet production requirements.

Method used

A semi-automatic production device for solder sleeves is designed, which includes a turntable, a carrying mechanism, a heating component and a cooling component. The rotation of the turntable enables the carrying mechanism to circulate among the assembly, heating and cooling stations, thereby realizing the assembly line operation of the solder sleeves and facilitating the automated operation of the heating component and the cooling component.

Benefits of technology

The production efficiency and automation level of the solder sleeve are improved, the labor cost is reduced, and the fully automatic production of the solder sleeve is realized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of processing of soldering tin ring heat-shrinkable sleeves, and provides a semi-automatic production device for soldering tin sleeves, which comprises a workbench on which a rotatable turntable is arranged; the bearing mechanisms are arranged around the center axis of the rotating disc in a circumferential array mode, each bearing mechanism comprises a die rod, and the die rods are perpendicular to the rotating disc; the stations comprise at least one assembling station, at least one heating station and at least one cooling station, and each station at least corresponds to one bearing mechanism; along with the rotation of the turntable, the same bearing mechanism circularly moves on the assembling station, the heating station and the cooling station in sequence; the heating assembly is arranged on the workbench and corresponds to the heating station in position; and the cooling assembly is arranged on the workbench and corresponds to the cooling station in position. The automation degree of tin soldering casing pipe production is improved, the production efficiency of the tin soldering casing pipe is improved, and the labor cost is reduced.
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Description

Technical Field

[0001] The present application relates to the field of solder ring heat shrink tubing processing, and in particular to a semi-automatic production device for solder tubing. Background Art

[0002] With the continuous development and innovation of heat shrink tubing applications, a new heat shrink product has emerged on the market: solder sleeves (solder ring heat shrink tubing). Compared to existing heat shrink tubing, solder sleeves have a unique structure. Multiple rings are sequentially arranged at the end of the solder sleeve, typically consisting of two adhesive rings and a tin ring. The adhesive and tin rings are coaxially arranged along the sleeve's axial direction, with the tin ring typically located between the pair of adhesive rings. In the prior art, solder sleeves are typically formed by placing the tin rings and adhesive rings onto a rod-shaped mold (mold rod), then fitting the heat shrink tubing over the tin rings and adhesive rings. The mold rod with the heat shrink tubing is then heated, and the heated heat shrink tubing is then allowed to cool naturally. Finally, the formed solder sleeve is removed from the mold rod. During the solder sleeve forming process, the assembly of the tin rings, adhesive rings, and heat shrink tubing takes approximately 10 seconds, heating takes approximately 30 seconds, and self-cooling takes approximately 5 minutes. Therefore, it takes nearly 6 minutes to manufacture a single solder sleeve. The existing solder sleeve production efficiency is low and the degree of automation is low, which makes it impossible to achieve mass production and meet production requirements. Utility Model Content

[0003] In order to solve the above problems, the present application provides a semi-automatic production device for solder sleeves, which has an ingenious design and a simple structure. The present application improves the degree of automation in the production of solder sleeves, increases the production efficiency of solder sleeves, and reduces labor costs. The technical solutions adopted in the present application are as follows:

[0004] A semi-automatic production device for solder sleeves, comprising:

[0005] A workbench, wherein a rotatable turntable is provided on the workbench; a plurality of supporting mechanisms, wherein the plurality of supporting mechanisms are arranged in a circular array around the central axis of the turntable, the supporting mechanism comprising a mold rod, wherein the mold rod is perpendicular to the turntable, and the mold rod is used to support the solder sleeve; a plurality of workstations, wherein the plurality of workstations comprise at least one assembly station, at least one heating station, and at least one cooling station, and each of the workstations corresponds to at least one supporting mechanism; as the turntable rotates, the same supporting mechanism circulates through the assembly station, the heating station, and the cooling station in sequence; a heating component, wherein the heating component is arranged on the workbench and is positioned corresponding to the heating station, and is used to heat the assembled solder sleeve; a cooling component, wherein the cooling component is arranged on the workbench and is positioned corresponding to the cooling station, and is used to cool the heated solder sleeve.

[0006] By rotating the turntable, the same carrying mechanism is driven to circulate in the assembly station, heating station, and cooling station in sequence. With the help of the automatic heating of the solder sleeve by the heating component and the automatic cooling of the solder sleeve by the cooling component, the assembly line operation of the solder sleeve production is realized. Only one production staff is needed to complete all the production processes of the solder sleeve, and the production staff only needs to work at the assembly station without moving between stations. This improves the degree of automation in the production of solder sleeves, improves the production efficiency of the solder sleeves, and reduces labor costs.

[0007] In some embodiments, a driving assembly is further included, wherein the driving assembly is used to drive the rotation of the carrying mechanism located at the heating station and the rotation of the carrying mechanism located at the cooling station, so as to rotate the mold rod on the corresponding carrying mechanism.

[0008] By driving the support mechanism located at the heating station to rotate and driving the support mechanism located at the cooling station to rotate, the mold rod can be rotated, thereby realizing the rotation of the solder sleeve around its own axis, so that the heating component can uniformly heat the solder sleeve and the cooling component can uniformly cool the solder sleeve.

[0009] In some embodiments, the supporting mechanism further includes a supporting seat, which is rotatably disposed on the turntable, and the mold rod is disposed on the supporting seat; the driving assembly includes a first driving assembly and a second driving assembly; the first driving assembly is disposed on the workbench and its position corresponds to the heating station, and when the turntable is in a stationary state, the first driving assembly drives the rotation of the supporting seat of the supporting mechanism located at the heating station; the second driving assembly is disposed on the workbench and its position corresponds to the cooling station, and when the turntable is in a stationary state, the second driving assembly drives the rotation of the supporting seat of the supporting mechanism located at the cooling station.

[0010] In some embodiments, the first drive assembly and the support base of the support mechanism located at the heating station are both driven by a non-contact transmission assembly; the second drive assembly and the support base of the support mechanism located at the cooling station are also driven by a non-contact transmission assembly.

[0011] Non-contact transmission is achieved between the first drive assembly / the second drive assembly and the support base through a non-contact transmission assembly. On the one hand, it avoids the need to set up a complex clutch mechanism in order to connect and separate the drive assembly and the support base when the drive assembly is set on a workbench. On the other hand, it avoids the need to configure a drive assembly for each support mechanism when the drive assembly is set on a turntable, thereby reducing the cost and structure of realizing mold rod rotation overall.

[0012] In some embodiments, the non-contact transmission component is a magnetic coupling.

[0013] In some embodiments, the semi-automatic production device for solder sleeves further includes a distance adjustment component, wherein a distance adjustment component is provided between the first drive component and the workbench and between the second drive component and the workbench, respectively, and the distance adjustment component is used to adjust the air gap size of the magnetic coupling.

[0014] By setting a distance adjustment component, the distance between the first drive component / the second drive component and the bearing seat can be adjusted, that is, the air gap size of the magnetic coupling can be adjusted. On the one hand, it is beneficial to the control of the torque transmission efficiency or the control of the bearing seat speed. On the other hand, by increasing the distance between the first drive component / the second drive component and the bearing seat, that is, by increasing the air gap of the magnetic coupling, the influence of the magnetic coupling on the rotation of the turntable can be reduced.

[0015] In some embodiments, the semi-automatic production device of the solder sleeve further includes an induction switch and a trigger member, wherein the induction switch is provided on the workbench, and the induction switch is used to control the switch of the first drive component and the second drive component and the switch of the heating component, and the trigger member is provided on the turntable; when the turntable switches between a stationary state and a rotating state, the trigger member causes the induction switch to switch between on and off.

[0016] By setting an induction switch and a trigger component, the first drive component, the second drive component and the heating component can be in a running state when the turntable is in a stationary state, and the first drive component, the second drive component and the heating component can be in a closed state when the turntable is in a rotating state. This realizes automatic control of the switch states of the first drive component, the second drive component and the heating component, so that the first drive component, the second drive component and the heating component work intermittently, avoids the first drive component, the second drive component and the heating component being in a normally open state, reduces resource waste, and extends the service life of the first drive component, the second drive component and the heating component.

[0017] In some embodiments, the heating assembly includes a hot air blower and a first bracket, the first bracket is mounted on the workbench, and the hot air blower is slidably disposed on the first bracket so that the distance between the hot air blower outlet and the mold rod located at the heating station can be adjusted.

[0018] By slidably arranging the hot air blower on the first bracket, the distance between the hot air blower outlet and the mold rod located at the heating station can be adjusted, thereby ensuring the heating effect of the heating component on the solder sleeve.

[0019] In some embodiments, the cooling assembly includes an air knife and a second bracket, the second bracket is mounted on the workbench, and the air knife is provided on the second bracket.

[0020] In some embodiments, the workbench is provided with a plurality of material troughs, and the material troughs are arranged near the assembly station.

[0021] By placing the material trough near the assembly station, it is convenient for production personnel to pick up and place materials at the assembly station, thereby improving the practicality and convenience of the semi-automatic production device of solder sleeves.

[0022] The present application provides a semi-automatic production device for solder sleeves, which has at least one of the following beneficial effects:

[0023] 1. The present application provides a semi-automatic production device for solder sleeves, which drives the same carrying mechanism to circulate in the assembly station, heating station, and cooling station in sequence through the rotation of a turntable, and automatically heats the solder sleeve with the help of a heating component and automatically cools the solder sleeve with the help of a cooling component, thereby realizing the assembly line operation of solder sleeve production. Only one production personnel is required to complete all the production processes of the solder sleeve, and the production personnel only need to work at the assembly station without moving between stations, thereby improving the degree of automation in the production of solder sleeves, improving the production efficiency of the solder sleeves, and reducing labor costs.

[0024] 2. The present application provides a semi-automatic production device for solder sleeves, which can rotate the mold rod by driving the support mechanism located at the heating station and the support mechanism located at the cooling station to rotate, thereby realizing the rotation of the solder sleeve around its own axis, so that the heating component can uniformly heat the solder sleeve and the cooling component can uniformly cool the solder sleeve.

[0025] 3. The present application provides a semi-automatic production device for solder sleeves, which realizes non-contact transmission between the first drive component / the second drive component and the supporting seat through a non-contact transmission component. On the one hand, it avoids the need to set up a complex clutch mechanism in order to connect and separate the drive component and the supporting seat when the drive component is set on a workbench. On the other hand, it avoids the need to configure a drive component for each supporting mechanism when the drive component is set on a turntable, thereby reducing the cost and structure of realizing mold rod rotation overall.

[0026] 4. The present application provides a semi-automatic production device for solder sleeves. By setting a distance adjustment component, the distance between the first drive component / the second drive component and the bearing seat can be adjusted, that is, the air gap size of the magnetic coupling can be adjusted. On the one hand, it is beneficial to the control of the torque transmission efficiency or the control of the bearing seat rotation speed. On the other hand, by increasing the distance between the first drive component / the second drive component and the bearing seat, that is, by increasing the air gap of the magnetic coupling, the influence of the magnetic coupling on the rotation of the turntable can be reduced.

[0027] 5. The present application provides a semi-automatic production device for solder sleeves. By setting an induction switch and a trigger component, the first drive component, the second drive component and the heating component can be in a running state when the turntable is in a stationary state, and the first drive component, the second drive component and the heating component can be in a closed state when the turntable is in a rotating state. This realizes automatic control of the switch state of the first drive component, the second drive component and the heating component, so that the first drive component, the second drive component and the heating component work intermittently, avoids the first drive component, the second drive component and the heating component from being in a normally open state, reduces resource waste, and extends the service life of the first drive component, the second drive component and the heating component.

[0028] 6. The present application provides a semi-automatic production device for solder sleeves, which enables adjustment of the distance between the hot air outlet and the mold rod located at the heating station by slidably arranging the hot air blower on the first bracket, thereby ensuring the heating effect of the heating component on the solder sleeve.

[0029] 7. The semi-automatic production device for solder sleeves provided in this application arranges the material trough near the assembly station, making it easier for production personnel to pick up and place materials at the assembly station, thereby improving the practicality and convenience of the semi-automatic production device for solder sleeves. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] The following will explain the preferred embodiment in a clear and understandable manner with reference to the accompanying drawings to further illustrate the above characteristics, technical features, advantages and implementation methods of a semi-automatic production device for solder sleeves:

[0031] Figure 1 This is a schematic diagram of the overall structure of an embodiment of a semi-automatic production device for solder sleeves;

[0032] Figure 2 yes Figure 1 A front view of an embodiment;

[0033] Figure 3 It is a structural diagram of the carrying mechanism, the first drive assembly (or the second drive assembly), and the distance adjustment assembly;

[0034] Figure 4 yes Figure 1 Left view of the embodiment after hiding some components;

[0035] Figure 5 It is a structural diagram of the heating component;

[0036] Figure 6 yes Figure 1 Enlarged view of part A;

[0037] Figure 7 It is a structural diagram of the cooling component.

[0038] Description of Figure Numbers:

[0039] Workbench 1, turntable 2, carrying mechanism 3, mold rod 4, assembly station 5, heating station 6, cooling station 7, heating component 8, cooling component 9, carrying seat 10, first drive component 11, second drive component 12, magnetic coupling 13, distance adjustment component 14, induction switch 15, trigger 16, hot air blower 17, first bracket 18, air knife 19, second bracket 20, material trough 21. DETAILED DESCRIPTION

[0040] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the specific implementation methods of the present application will be described below with reference to the accompanying drawings. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings and other implementation methods can be obtained based on these drawings without inventive work.

[0041] To simplify the drawings, only the parts relevant to this application are schematically shown in each figure. They do not represent the actual structure of the product. In addition, to simplify the drawings and facilitate understanding, in some figures, only one of the components with the same structure or function is schematically depicted or labeled. In this document, "one" not only means "only one" but also "more than one."

[0042] It should be further understood that the term "and / or" used in this specification and the appended claims refers to and includes any and all possible combinations of one or more of the associated listed items.

[0043] It should be noted that, unless otherwise specified or limited, the terms "mounted," "connected," and "connected" should be understood broadly. For example, they can refer to fixed, removable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediary; and internal communication between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.

[0044] In addition, in the description of the present application, the terms "first", "second", etc. are only used to distinguish the description and cannot be understood as indicating or implying relative importance.

[0045] refer to Figure 1-Figure 7 The present application provides a semi-automatic production device for solder sleeves, comprising: a workbench 1, wherein a rotatable turntable 2 is provided on the workbench 1; a plurality of supporting mechanisms 3, wherein the plurality of supporting mechanisms 3 are arranged in a circular array around the central axis of the turntable 2, and the supporting mechanism 3 includes a mold rod 4, which is perpendicular to the turntable 2 and is used to support the solder sleeve; a plurality of workstations, wherein the plurality of workstations include at least one assembly station 5, at least one heating station 6, and at least one cooling station 7, and each workstation corresponds to at least one supporting mechanism 3; as the turntable 2 rotates, the same supporting mechanism 3 circulates in the assembly station 5, the heating station 6, and the cooling station 7 in turn; a heating component 8, wherein the heating component 8 is arranged on the workbench 1 and its position corresponds to the heating station 6, and the heating component 8 is used to heat the assembled solder sleeve; a cooling component 9, wherein the cooling component 9 is arranged on the workbench 1 and its position corresponds to the cooling station 7, and the cooling component 9 is used to cool the heated solder sleeve.

[0046] It can be understood that, by the rotation of the turntable 2, the same supporting mechanism 3 is driven to circulate in the assembly station 5, the heating station 6, and the cooling station 7 in sequence, and with the help of the automatic heating of the solder sleeve by the heating component 8 and the automatic cooling of the solder sleeve by the cooling component 9, the assembly line operation of the solder sleeve production is realized. Only one production personnel is needed to complete all the production processes of the solder sleeve, and the production personnel only need to work at the assembly station 5 without moving between the stations, which improves the degree of automation in the production of solder sleeves, improves the production efficiency of the solder sleeves, and reduces labor costs.

[0047] In one embodiment, the semi-automatic solder sleeve production apparatus further includes a drive assembly, one for each support mechanism. The drive assembly is mounted on a turntable, and the support mechanisms are driven by the corresponding drive assembly, so that the mold rods on the support mechanisms rotate with the support mechanisms. When the support mechanisms are in the heating station, the drive assembly drives the support mechanisms in the heating station 6 to rotate, allowing the heating assembly 8 to uniformly heat the solder sleeves. When the support mechanisms are in the cooling station 7, the drive assembly drives the support mechanisms in the cooling station 7 to rotate, allowing the cooling assembly 9 to uniformly cool the solder sleeves. The drive assembly can specifically be a motor or a combination of a motor and a reduction mechanism.

[0048] In one embodiment, the carrying mechanism 3 further includes a carrying seat 10, which is rotatably arranged on the turntable 2, and the mold rod 4 is arranged on the carrying seat 10; the semi-automatic production device for solder sleeves further includes a drive assembly, which includes a first drive assembly and a second drive assembly; the first drive assembly is arranged on the workbench 1 and its position corresponds to the heating station 6. When the turntable 2 is in a stationary state, the first drive assembly realizes a contact-type pivotal connection with the carrying seat 10 of the carrying mechanism 3 located at the heating station 6 through a clutch mechanism to drive the carrying mechanism 3 located at the heating station 6. The first drive assembly 11 and the second drive assembly 12 are provided on the workbench 1 and are located corresponding to the cooling station 7. When the turntable 2 is stationary, the second drive assembly is pivotally connected to the support base 10 of the support mechanism 3 located in the cooling station 7 via the clutch mechanism to drive the rotation of the support base 10 of the support mechanism 3 located in the cooling station 7. When the turntable 2 is rotating, the clutch mechanism separates the second drive assembly from the support base 10. The first drive assembly 11 and the second drive assembly 12 can specifically be a motor or a combination of a motor and a reduction mechanism.

[0049] It is understood that the clutch mechanism that enables the pivotal connection and separation of the first drive assembly / second drive assembly from the support base 10 can take various structural forms. One example is described below: the clutch mechanism is a distance adjustment assembly, which is mounted on the workbench 1, and the first drive assembly / second drive assembly is mounted on the clutch mechanism. The first drive assembly / second drive assembly and the support base 10 are connected by gear meshing transmission. When the turntable 2 is stationary, the clutch mechanism adjusts the distance between the first drive assembly / second drive assembly and the support base 10, causing the gears on the first drive assembly / second drive assembly and the gears on the support base 10 to approach each other, thereby causing the gears on the first drive assembly / second drive assembly to mesh with the gears on the support base 10, thereby achieving meshing transmission. When the turntable 2 is rotating, the clutch mechanism causes the gears on the first drive assembly / second drive assembly to move away from the gears on the support base 10, thereby disengaging the gears on the first drive assembly / second drive assembly from the gears on the support base 10. The distance adjustment assembly can specifically be a pneumatic cylinder, an electric cylinder, or a guide rail.

[0050] refer to Figure 2 、 Figure 3 In one embodiment, the supporting mechanism 3 further includes a supporting seat 10, which is rotatably arranged on the turntable 2, and the mold rod 4 is arranged on the supporting seat 10; the semi-automatic production device for solder sleeves further includes a driving assembly, which includes a first driving assembly 11 and a second driving assembly 12; the first driving assembly 11 is arranged on the workbench 1 and its position corresponds to the heating station 6. When the turntable 2 is in a stationary state, the first driving assembly 11 and the supporting seat 10 of the supporting mechanism 3 located at the heating station 6 are driven by a non-contact transmission assembly to drive the rotating shaft 2 at the heating station 6. The first drive assembly 11 / second drive assembly 12 is configured to rotate the support base 10 of the support mechanism 3 of the heating station 6, and when the turntable 2 is in a rotating state, the non-contact transmission assembly no longer transmits the power. The second drive assembly 12 is provided on the workbench 1 and its position corresponds to the cooling station 7. When the turntable 2 is in a stationary state, the second drive assembly 12 and the support base 10 of the support mechanism 3 located in the cooling station 7 are also transmitted through the non-contact transmission assembly to drive the rotation of the support base 10 of the support mechanism 3 located in the cooling station 7. When the turntable 2 is in a rotating state, the non-contact transmission assembly no longer transmits the power. The first drive assembly 11 / second drive assembly 12 can specifically be a motor or a combination of a motor and a reduction mechanism. The non-contact transmission assembly can specifically be a permanent magnet eddy current coupling or a magnetic coupling 13. The magnetic coupling 13 includes a cylindrical magnetic coupling and a flat disc magnetic coupling, preferably a flat disc magnetic coupling. It is understandable that when a flat disc magnetic coupling is used, the driving rotary disc of the flat disc magnetic coupling is provided at the output end of the first driving assembly 11 / the second driving assembly 12 , while the driven rotary disc is provided on the supporting base 10 .

[0051] It is easy to understand that the non-contact transmission between the first drive component 11 / the second drive component 12 and the support base 10 is realized by the non-contact transmission component. On the one hand, it avoids the need to set a complex clutch mechanism in order to connect and separate the drive component and the support base 10 when the drive component is set on the workbench 1. On the other hand, it avoids the need to configure a drive component for each support mechanism 3 when the drive component is set on the turntable 2, thereby reducing the cost and structure of realizing the rotation of the mold rod 4 as a whole.

[0052] In one embodiment, there is no driving assembly to drive the supporting mechanism 3 to rotate, that is, the supporting mechanism 3 is fixed on the turntable 2 and the mold rod 4 cannot rotate.

[0053] It can be understood that in the embodiment where the supporting mechanism 3 cannot rotate, in order to achieve uniform heating and uniform cooling of the solder sleeve, the heating component 8 can be rotated to uniformly heat the solder sleeve, and the cooling component 9 can be rotated to uniformly cool the solder sleeve, or the solder sleeve can be directly uniformly heated or cooled by an annular heater or an annular air knife.

[0054] refer to Figure 3 Regarding the embodiment in which the first drive assembly 11 / second drive assembly 12 and the support base 10 are driven by a magnetic coupling 13, in one embodiment, the semi-automatic solder sleeve production apparatus further includes a distance adjustment assembly 14, one between the first drive assembly 11 and the worktable 1, and one between the second drive assembly 12 and the worktable 1. Distance adjustment assembly 14 is used to adjust the air gap between magnetic coupling 13. Distance adjustment assembly 14 allows adjustment of the distance between the first drive assembly 11 / second drive assembly 12 and the support base 10, that is, the air gap between magnetic coupling 13. This facilitates control of torque transmission efficiency or the speed of support base 10. Furthermore, by increasing the distance between the first drive assembly 11 / second drive assembly 12 and the support base 10, that is, by increasing the air gap between magnetic coupling 13, the effect of magnetic coupling 13 on the rotation of turntable 2 can be reduced. Distance adjustment assembly 14 can be a pneumatic cylinder, an electric cylinder, or a guide rail. Specifically, the distance adjustment assembly 14 is installed on the workbench 1 , and the first driving assembly 11 / the second driving assembly 12 is installed on the moving end or moving part of the distance adjustment assembly 14 .

[0055] refer to Figure 2 、 Figure 4In one embodiment, the semi-automatic solder sleeve production apparatus further includes an inductive switch 15 and a trigger 16. The inductive switch 15 is disposed on the workbench 1 and is used to control the on / off operation of the first and second drive assemblies 11, 12, and the heating assembly 8. The trigger 16 is disposed on the turntable 2. When the turntable 2 switches between a stationary state and a rotating state, the trigger 16 switches the inductive switch 15 between on and off. The inductive switch 15 can be a Hall switch, a proximity switch, or a micro switch. Specifically, when the turntable 2 is stationary, the inductive switch 15 activates the first and second drive assemblies 11, 12, and the heating assembly 8. When the turntable 2 is rotating, the inductive switch 15 deactivates the first and second drive assemblies 11, 12, and the heating assembly 8.

[0056] It is worth noting that, by providing the induction switch 15 and the trigger 16, the first drive assembly 11, the second drive assembly 12 and the heating assembly 8 can be in the running state when the turntable 2 is in the stationary state, and the first drive assembly 11, the second drive assembly 12 and the heating assembly 8 can be in the closed state when the turntable 2 is in the rotating state. This realizes the automatic control of the switching state of the first drive assembly 11, the second drive assembly 12 and the heating assembly 8, so that the first drive assembly 11, the second drive assembly 12 and the heating assembly 8 work intermittently, avoiding the first drive assembly 11, the second drive assembly 12 and the heating assembly 8 being in the normally open state, reducing resource waste, and extending the service life of the first drive assembly 11, the second drive assembly 12 and the heating assembly 8. It can be understood that the cooling assembly 9 can be in the normally open state or can work intermittently. The specific method of realizing intermittent work can refer to the method of realizing intermittent work of the heating assembly 8.

[0057] refer to Figure 1 、 Figure 2 、 Figure 5 、 Figure 6In one embodiment, the heating assembly 8 includes a hot air blower 17 and a first bracket 18. The first bracket 18 is mounted on the workbench 1. The hot air blower 17 is slidably mounted on the first bracket 18 to enable adjustment of the distance between the hot air blower 17's air outlet and the mold rod 4 located in the heating station 6. A specific embodiment of the sliding connection between the hot air blower 17 and the first bracket 18 is described below: the first bracket 18 is provided with a slide rail, with slots formed on both sides of the slide rail. The hot air blower 17 is provided with a slider, which has a slot that fits within the slide rail. The slot wall of the slide rail has a protrusion that fits within the slot. The slider is buckled onto the slide rail, and the protrusion is locked into the slot. It is understood that a locking member may be provided on the slider to prevent accidental sliding of the slider relative to the slide rail. By slidably mounting the hot air blower 17 on the first bracket 18, the distance between the hot air blower 17's air outlet and the mold rod 4 located in the heating station 6 can be adjusted, thereby ensuring that the heating assembly 8 effectively heats the solder sleeve.

[0058] refer to Figure 1 、 Figure 7 In one embodiment, the cooling assembly 9 includes an air knife 19 and a second bracket 20. The second bracket 20 is mounted on the workbench 1, and the air knife 19 is disposed on the second bracket 20. Specifically, the air knife 19 can be a standard air knife 19 or an annular air knife 19. In terms of material, the air knife 19 can be a stainless steel air knife 19 or an aluminum alloy air knife 19.

[0059] refer to Figure 1 In one embodiment, the workbench 1 is provided with a plurality of material troughs 21, which are arranged near the assembly station 5. By arranging the material troughs 21 near the assembly station 5, it is convenient for production personnel to take and place materials at the assembly station 5, thereby improving the practicality and convenience of the semi-automatic production device for solder sleeves.

[0060] It should be noted that the above embodiments can be freely combined as needed. The above are only preferred implementations of the present application. It should be noted that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application, and these improvements and modifications should also be considered as the scope of protection of the present application.

Claims

1. A semi-automatic production device for solder sleeves, characterized in that: include: A workbench, wherein a rotatable turntable is provided on the workbench; A plurality of carrying mechanisms, wherein the plurality of carrying mechanisms are arranged in a circular array around the central axis of the turntable, the carrying mechanisms comprising a mold rod, the mold rod being perpendicular to the turntable and being used to carry the solder sleeve; a plurality of workstations, wherein the plurality of workstations include at least one assembly workstation, at least one heating workstation, and at least one cooling workstation, and each of the workstations corresponds to at least one of the supporting mechanisms; as the turntable rotates, the same supporting mechanism circulates over the assembly workstation, the heating workstation, and the cooling workstation in sequence; A heating assembly, the heating assembly being disposed on the workbench and positioned corresponding to the heating station, the heating assembly being used to heat the assembled solder sleeve; A cooling component is provided on the workbench and is positioned corresponding to the cooling station, and is used to cool the heated solder sleeve.

2. The semi-automatic production device for solder sleeves according to claim 1, characterized in that: It also includes a driving assembly, which is used to drive the rotation of the carrying mechanism located at the heating station and the rotation of the carrying mechanism located at the cooling station, so as to rotate the mold rods on the corresponding carrying mechanisms.

3. The semi-automatic production device for solder sleeves according to claim 2, characterized in that: The bearing mechanism further comprises a bearing seat, the bearing seat being rotatably arranged on the turntable, and the mold rod being arranged on the bearing seat; The driving assembly includes a first driving assembly and a second driving assembly; the first driving assembly is arranged on the workbench and its position corresponds to the heating station. When the turntable is in a stationary state, the first driving assembly drives the rotation of the supporting seat of the supporting mechanism located at the heating station; the second driving assembly is arranged on the workbench and its position corresponds to the cooling station. When the turntable is in a stationary state, the second driving assembly drives the rotation of the supporting seat of the supporting mechanism located at the cooling station.

4. The semi-automatic production device for solder sleeves according to claim 3, characterized in that: The first drive assembly and the support base of the support mechanism located at the heating station are both driven by a non-contact transmission assembly; the second drive assembly and the support base of the support mechanism located at the cooling station are also driven by a non-contact transmission assembly.

5. The semi-automatic production device for solder sleeves according to claim 4, characterized in that: The non-contact transmission component is a magnetic coupling.

6. The semi-automatic production device for solder sleeves according to claim 5, characterized in that: It also includes a distance adjustment component, a distance adjustment component is respectively provided between the first drive component and the workbench, and between the second drive component and the workbench, and the distance adjustment component is used to adjust the air gap size of the magnetic coupling.

7. The semi-automatic production device for solder sleeves according to claim 4, characterized in that: It also includes an induction switch and a trigger member. The induction switch is arranged on the workbench, and is used to control the switching of the first drive component and the second drive component and the switching of the heating component. The trigger member is arranged on the turntable; when the turntable switches between a stationary state and a rotating state, the trigger member causes the induction switch to switch between on and off.

8. A semi-automatic production device for solder sleeves according to any one of claims 1 to 7, characterized in that: The heating assembly includes a hot air blower and a first bracket, the first bracket is installed on the workbench, and the hot air blower is slidably arranged on the first bracket so that the distance between the hot air blower outlet and the mold rod located at the heating station can be adjusted.

9. A semi-automatic production device for solder sleeves according to any one of claims 1 to 7, characterized in that: The cooling assembly includes an air knife and a second bracket, the second bracket is installed on the workbench, and the air knife is provided on the second bracket.

10. A semi-automatic production device for solder sleeves according to any one of claims 1 to 7, characterized in that: The workbench is provided with a plurality of material troughs, and the material troughs are arranged near the assembly station.

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