Duplex temperature sensing cylinder machine

By designing a dual-station temperature sensing cylinder machine that integrates feeding, conveying, moving, necking, and shaping components, the low efficiency problem caused by manual transfer of temperature sensing cylinders between independent devices is solved, and efficient automated processing of temperature sensing cylinders is achieved.

CN114453497BActive Publication Date: 2025-11-25GUANGDONG KEXIN ELECTRIC CO LTD
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Patent Information

Application Number
CN202210253213.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-15
Publication Date
2025-11-25
Estimated Expiration
2042-03-15

AI Technical Summary

Technical Problem

The temperature sensing cylinder needs to be manually transferred between separate devices during the necking and shaping processes, resulting in low processing efficiency.

Method used

Design a dual-station temperature sensing cylinder machine that integrates feeding, conveying, moving, necking and shaping components. The moving component drives the temperature sensing cylinder to pass through the necking and shaping components in sequence for processing, realizing automated production line operation.

Benefits of technology

This improved the processing efficiency and precision of the temperature sensing cylinder, avoided manual transfer, and enabled continuous processing of the temperature sensing cylinder.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a double-station temperature sensing cylinder machine, wherein the double-station temperature sensing cylinder machine comprises a base, a feeding assembly, a conveying assembly, a moving assembly, a necking assembly and a shaping assembly; the feeding assembly, the conveying assembly, the moving assembly, the necking assembly and the shaping assembly are all installed on the base; the conveying assembly is arranged on one side of the feeding assembly; the conveying assembly carries the temperature sensing cylinder discharged from the feeding assembly and moves the temperature sensing cylinder to the moving assembly; the moving assembly drives the temperature sensing cylinder to pass through the necking assembly and the shaping assembly in sequence, so that the temperature sensing cylinder is driven by the moving assembly to complete necking and shaping in sequence.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of temperature sensing cylinder machines, in particular to a double-station temperature sensing cylinder machine. BACKGROUND

[0002] With the development of science and technology, temperature sensing cylinders are gradually applied to various industries. In the production process, the temperature sensing cylinders need to be necked and shaped. In the prior art, necking and shaping are independent devices, so the operator needs to manually transfer the temperature sensing cylinder between the necking device and the shaping device, resulting in the need to change devices back and forth to complete necking and shaping, which reduces the processing efficiency of the temperature sensing cylinder. SUMMARY

[0003] To solve the above technical problems, the present application adopts the following technical solutions:

[0004] According to one aspect of the present application, the present application provides a double-station temperature sensing cylinder machine, comprising a base, a feeding assembly, a conveying assembly, a moving assembly, a necking assembly and a shaping assembly; the feeding assembly, the conveying assembly, the moving assembly, the necking assembly and the shaping assembly are all installed on the base; the conveying assembly is arranged on one side of the feeding assembly; the conveying assembly carries the temperature sensing cylinder discharged from the feeding assembly and moves the temperature sensing cylinder to the moving assembly; the moving assembly drives the temperature sensing cylinder to pass through the necking assembly and the shaping assembly in turn, so that the temperature sensing cylinder completes necking and shaping in turn under the driving of the moving assembly.

[0005] Optionally, the feeding assembly comprises a vibrating disc and a feeding track, the feeding track is connected to the discharge end of the vibrating disc and extends towards the conveying assembly.

[0006] Optionally, the conveying assembly comprises a support seat, a first conveying module and a second conveying module; the support seat comprises a support groove for supporting the temperature sensing cylinder, and the support groove is connected to the discharge end of the feeding track; the first conveying module and the second conveying module are arranged on both sides of the support seat and jointly act on both ends of the temperature sensing cylinder to convey the temperature sensing cylinder to the moving assembly.

[0007] Optionally, the first conveying module comprises a first air cylinder and a thimble; the thimble is connected to the output end of the first air cylinder and abuts against one end of the temperature sensing cylinder under the driving of the first air cylinder; the second conveying module comprises a second air cylinder and a needle; the needle is connected to the output end of the second air cylinder and abuts against the other end of the temperature sensing cylinder under the driving of the second air cylinder, so that the temperature sensing cylinder is displaced under the driving of the thimble and the needle.

[0008] Optionally, the double-station temperature sensing barrel machine further comprises a hopper, the hopper is arranged on one side of the moving assembly; the temperature sensing barrel is moved to the hopper by the moving assembly under the driving of the ejector pin and the needle.

[0009] Optionally, the moving assembly comprises a positioning seat, a third cylinder and a pressing seat, the positioning seat carries the temperature sensing barrel conveyed by the first conveying module and the second conveying module; the third cylinder is connected with the pressing seat and drives the pressing seat to move towards the pressing seat and press the temperature sensing barrel.

[0010] Optionally, the moving assembly further comprises a first sliding seat and a fourth cylinder; the first sliding seat carries the positioning seat, the third cylinder and the pressing seat and is movably connected with the base; the fourth cylinder is connected with the first sliding seat and drives the first sliding seat to move towards the necking station and the shaping station.

[0011] Optionally, the double-station temperature sensing barrel machine further comprises a sliding assembly, the sliding assembly carries the necking assembly and the shaping assembly arranged adjacently and drives the necking assembly and the shaping assembly to move to the necking station and the shaping station respectively, so that the necking assembly and the shaping assembly sequentially perform necking processing and shaping processing on the temperature sensing barrel.

[0012] Optionally, the sliding assembly, the necking assembly and the shaping assembly each have two, one sliding assembly carries one necking assembly and one shaping assembly; wherein two sliding assemblies are arranged on two sides of the sliding seat respectively, two necking assemblies are arranged oppositely and perform necking processing on two ends of the temperature sensing barrel; two shaping assemblies are arranged oppositely and perform shaping processing on two ends of the temperature sensing barrel.

[0013] Optionally, the necking assembly comprises a necking end and a first rotating shaft connected with each other; the shaping assembly comprises a shaping end and a second rotating shaft connected with each other; the sliding assembly is connected with a driving motor and a transmission mechanism, one end of the transmission mechanism is connected with the first rotating shaft and the second rotating shaft, and the other end of the transmission mechanism is connected with the driving motor, so that the driving motor drives the necking end and the shaping end to rotate synchronously through the transmission mechanism.

[0014] From the above technical solutions, it can be seen that the embodiments of the present application have at least the following advantages and positive effects:

[0015] In the dual-station temperature sensing cylinder machine of this invention, the conveying component is disposed on one side of the feeding component; the conveying component carries the temperature sensing cylinder discharged from the feeding component and moves the temperature sensing cylinder to the moving component; the moving component drives the temperature sensing cylinder to pass sequentially through the necking component and the shaping component, so that the temperature sensing cylinder completes necking and shaping sequentially under the drive of the moving component. The temperature sensing cylinder passes sequentially through the feeding component, the conveying component, and the moving component, and passes through the necking component and the shaping component under the drive of the moving component, so that the necking component and the shaping component can perform necking and shaping processing on the temperature sensing cylinder. This allows the dual-station temperature sensing cylinder machine to integrate necking and shaping processing, and the temperature sensing cylinder does not need to be manually transferred, thereby improving the processing efficiency and accuracy of the temperature sensing cylinder. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the dual-station temperature sensing cylinder machine proposed in this invention;

[0018] Figure 2 This is a top view of the dual-station temperature sensing cylinder machine proposed in this invention;

[0019] Figure 3 This is a partial schematic diagram of the dual-station temperature sensing cylinder machine proposed in this invention;

[0020] Figure 4 This is a schematic diagram of the moving component in the dual-station temperature sensing cylinder machine proposed in this invention;

[0021] Figure 5 This is another schematic diagram of the dual-station temperature sensing cylinder machine proposed in this invention;

[0022] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0023] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0024] It should be noted that all the direction indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present application are only used to explain the relative position relationship, movement condition, etc. between the components in a certain specific posture (as shown in the drawings), and if the specific posture changes, the direction indications will also change accordingly.

[0025] In the present application, unless otherwise explicitly specified and limited, the terms "connection", "fixation", etc. should be understood in a broad sense, for example, "fixation" can be fixed connection, or detachable connection, or integral; can be mechanical connection, or electrical connection; can be direct connection, or indirect connection through an intermediate medium; can be internal communication of two elements or interaction relationship between two elements, unless otherwise explicitly limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0026] In addition, if the present application has a description of "first", "second", etc., the description of "first", "second", etc. is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first" and "second" can explicitly or implicitly include at least one of the features. In addition, the meaning of "and / or" appearing throughout the text includes three parallel solutions. For example, "A and / or B" includes A solution, or B solution, or A and B solution. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the fact that a person skilled in the art can realize it, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, nor is it within the scope of protection required by the present application.

[0027] With the development of science and technology, temperature sensing cylinders are gradually applied to various industries. In the production process, the temperature sensing cylinder needs to be necked and shaped. In the prior art, necking and shaping are independent devices, so the operator needs to manually transfer the temperature sensing cylinder between the necking device and the shaping device, resulting in the need to change the device back and forth to complete the necking and shaping of the temperature sensing cylinder, which reduces the processing efficiency of the temperature sensing cylinder.

[0028] Referring to Figures 1 to 5 The present application provides a double-station temperature sensing cylinder machine 100, which comprises a base 1, a feeding assembly 2, a conveying assembly 3, a moving assembly 4, a necking assembly 5, a shaping assembly 6, a sliding assembly 7, the feeding assembly 2, the conveying assembly 3, the moving assembly 4, the necking assembly 5, the shaping assembly 6, and the sliding assembly 7 are all mounted on the base 1.

[0029] The base 1 is a supporting table of the double-station temperature sensing barrel machine 100, and carries the feeding assembly 2, the conveying assembly 3, the moving assembly 4, the necking assembly 5, the shaping assembly 6 and the sliding assembly 7.

[0030] Referring to Figures 1 to 5 The feeding assembly 2 is mainly used for automatically feeding the temperature sensing barrels, wherein the feeding assembly 2 comprises a vibrating disc 21 and a feeding track 22. The vibrating disc 21 is arranged on a support 211 and at one side of the feeding track 22. The vibrating disc 21 moves the temperature sensing barrels in a specific direction by vibration principle, so as to move the temperature sensing barrels one by one towards the feeding track 22.

[0031] The feeding track 22 is connected to the discharging end of the vibrating disc 21 and extends towards the conveying assembly 3. The feeding track 22 can be made of bent sheet metal or injection molded plastic. The feeding track 22 comprises a connected inclined section and a vertical section. The inclined section is connected to the discharging end of the vibrating disc 21, and the vertical section is connected to the feeding end of the conveying assembly 3. The temperature sensing barrels slide along the feeding track 22 based on their own gravity, and are moved from the vibrating disc 21 to the conveying assembly 3 through the feeding track 22, so as to realize automatic feeding of the temperature sensing barrels, improve the processing efficiency of the double-station temperature sensing barrel machine 100, and avoid manual feeding.

[0032] Referring to Figures 1 to 5 The conveying assembly 3 comprises a support seat 31, a first conveying module 32 and a second conveying module 33. The first conveying module 32 and the second conveying module 33 are arranged at two sides of the support seat 31 and jointly act on two ends of the temperature sensing barrels, so as to convey the temperature sensing barrels to the moving assembly 4.

[0033] The support seat 31 comprises a support groove 311 connected to the discharging end of the feeding track 22. The support groove 311 is used for supporting the temperature sensing barrels and receiving the temperature sensing barrels conveyed through the feeding track 22. Since the support groove 311 is adapted to the support seat 31, the support seat 31 can preliminarily position the temperature sensing barrels, and the support groove 311 can also realize the connection between the conveying assembly 3 and the feeding track 22. The support groove 311 can be a circular arc groove, which is not limited herein.

[0034] The conveying assembly 3 is arranged at one side of the feeding assembly 2. The conveying assembly 3 carries the temperature sensing barrels discharged from the feeding assembly 2 and moves the temperature sensing barrels to the moving assembly 4, so as to realize the station transfer of the temperature sensing barrels between the feeding assembly 2 and the moving assembly 4.

[0035] The first conveying module 32 comprises a first air cylinder 321 and a thimble 322. The thimble 322 is connected to the output end of the first air cylinder 321 and abuts against one end of the temperature sensing barrel under the driving of the first air cylinder 321, so as to move the temperature sensing barrel from the support groove 311 to the moving assembly 4.

[0036] In addition, the second conveying module 33 comprises a second air cylinder 331 and a needle head 332; the needle head 332 is connected to the output end of the second air cylinder 331 and is driven by the second air cylinder 331 to abut against the other end of the temperature sensing cylinder; through the contact of the needle head 332 and the ejector pin 322 on the two ends of the temperature sensing cylinder, the temperature sensing cylinder is clamped by the needle head 332 and the ejector pin 322, so that the temperature sensing cylinder is displaced under the clamping force, thereby facilitating the temperature sensing cylinder to move from the supporting groove 311 to the moving assembly 4 and to be displaced in a suspended state, ensuring the stability of the temperature sensing cylinder during movement. In addition, the clamping of the needle head 332 and the ejector pin 322 on the two ends of the temperature sensing cylinder facilitates the calibration of the positional accuracy of the temperature sensing cylinder relative to the moving assembly 4, and based on the restriction of the two ends of the temperature sensing cylinder, it is ensured that the temperature sensing cylinder can be accurately positioned in the moving assembly 4.

[0037] Referring to Figures 1 to 5 , the double-station temperature sensing cylinder machine 100 further comprises a hopper 8 arranged on one side of the moving assembly 4; the temperature sensing cylinder is driven by the ejector pin 322 and the needle head 332 to move from the moving assembly 4 to the hopper 8. When the protruding position of the ejector pin 322 is greater than that of the needle head 332, the temperature sensing cylinder moves towards the hopper 8 under the action of the clamping force, and the temperature sensing cylinder is suspended in the air under the action of the clamping force, so that the temperature sensing cylinder is separated from the moving assembly 4 and is above the hopper 8, thereby facilitating the collection of the temperature sensing cylinder by the hopper 8. Optionally, the temperature sensing cylinder enters the hopper 8 after completing the necking and shaping processes, and the hopper 8 realizes the collection of the temperature sensing cylinder in a finished state. The hopper 8 can be bent from a plate member and arranged downwardly inclined.

[0038] The moving assembly 4 drives the temperature sensing cylinder to sequentially pass through the necking assembly 5 and the shaping assembly 6, so that the temperature sensing cylinder sequentially completes necking and shaping under the driving of the moving assembly 4. The temperature sensing cylinder sequentially passes through the feeding assembly 2, the conveying assembly 3 and the moving assembly 4, and passes through the necking assembly 5 and the shaping assembly 6 under the driving of the moving assembly 4, so as to facilitate the necking assembly 5 and the shaping assembly 6 to perform necking and shaping processes on the temperature sensing cylinder, so that the double-station temperature sensing cylinder machine 100 integrates the necking and shaping processes, and the temperature sensing cylinder does not need to be transferred manually, thereby improving the processing efficiency and accuracy of the temperature sensing cylinder.

[0039] The moving assembly 4 comprises a positioning seat 41, a third air cylinder 42 and a pressing seat 43; the positioning seat 41 carries the temperature sensing cylinder conveyed by the first conveying module 32 and the second conveying module 33 and supports and positions the temperature sensing cylinder. The positioning seat 41 is provided with a positioning groove, and the temperature sensing cylinder is positioned and connected through the positioning groove, thereby realizing the preliminary positioning of the temperature sensing cylinder.

[0040] The third cylinder 42 is connected with the pressing base 43 and drives the pressing base 43 to move towards the pressing base 43 and press the temperature sensing cylinder. The pressing base 43 is pivoted to the base 1 and swings under the drive of the third cylinder 42, so that the pressing base 43 is pressed or separated from the temperature sensing cylinder. The temperature sensing cylinder is clamped by the pressing base 43 and the positioning base 41, so as to ensure the stability of the temperature sensing cylinder during movement and facilitate the processing of the temperature sensing cylinder by the necking assembly 5 and the shaping assembly 6, thereby ensuring the processing precision of the temperature sensing cylinder.

[0041] The moving assembly 4 further comprises a first sliding base 45 and a fourth cylinder 46. The first sliding base 45 carries the positioning base 41, the third cylinder 42 and the pressing base 43 and drives them to move synchronously. The first sliding base 45 is movably connected with the base 1 and moves along the width direction of the base 1. The base 1 is provided with a guide rail, and the first sliding base 45 is embedded in the guide rail and moves along the guide rail.

[0042] The fourth cylinder 46 is connected with the first sliding base 45 and drives the first sliding base 45 to move towards the necking station and the shaping station, so that the temperature sensing cylinder in the moving assembly 4 sequentially passes through the necking assembly 5 and the shaping assembly 6 and is transferred between the necking assembly 5 and the shaping assembly 6, thereby realizing the necking processing and shaping processing of the temperature sensing cylinder in the double-station temperature sensing cylinder machine 100 and avoiding manual transfer.

[0043] Referring to Figures 1 to 5 The sliding assembly 7 carries the necking assembly 5 and the shaping assembly 6 arranged adjacent to each other. The necking assembly 5 and the shaping assembly 6 are spaced apart along the width direction of the sliding assembly 7.

[0044] The sliding assembly 7 drives the necking assembly 5 and the shaping assembly 6 to move to the necking station and the shaping station respectively, so that the necking assembly 5 performs necking processing on the temperature sensing cylinder in the necking station, and the shaping assembly 6 performs shaping processing on the temperature sensing cylinder in the shaping station. The necking assembly 5 and the shaping assembly 6 sequentially perform necking processing and shaping processing on the temperature sensing cylinder.

[0045] The sliding assembly 7 comprises a fifth cylinder 71 and a sliding base 72. The sliding base 72 supports the necking assembly 5 and the shaping assembly 6 and moves along the length direction of the base 1 under the drive of the fifth cylinder 71, so as to realize the movement of the necking assembly 5 relative to the necking station and the movement of the shaping assembly 6 relative to the shaping station. Since the necking assembly 5 and the shaping assembly 6 are both installed on the sliding base 72, the sliding base 72 realizes the synchronous movement of the necking assembly 5 and the shaping assembly 6, thereby improving the processing efficiency of the temperature sensing cylinder.

[0046] The necking assembly 5 comprises a necking end 51 and a first rotating shaft 52 connected with each other; the shaping assembly 6 comprises a shaping end 61 and a second rotating shaft 62 connected with each other; the sliding assembly 7 is connected with a driving motor 73 and a transmission mechanism 74, one end of the transmission mechanism 74 is connected with the first rotating shaft 52 and the second rotating shaft 62, and the other end of the transmission mechanism 74 is connected with the driving motor 73, so that the driving motor 73 drives the necking end 51 and the shaping end 61 to rotate synchronously through the transmission mechanism 74, thereby realizing synchronous working of the shaping end 61 and the necking end 51 through one motor, avoiding separate use of multiple motors, and reducing the cost of the double-station temperature sensing barrel machine 100. Optionally, the transmission mechanism 74 is a synchronous belt transmission mechanism.

[0047] In addition, the sliding assembly 7, the necking assembly 5 and the shaping assembly 6 are both two, one sliding assembly 7 carries one necking assembly 5 and one shaping assembly 6; wherein the two sliding assemblies 7 are arranged on the two sides of the sliding seat, the two necking assemblies 5 are arranged oppositely and perform necking processing on the two ends of the temperature sensing barrel; the two shaping assemblies 6 are arranged oppositely and perform shaping processing on the two ends of the temperature sensing barrel, wherein the two sides of the temperature sensing barrel between the positioning seat 41 and the pressing seat 43 are both provided with the necking assembly 5 or the shaping assembly 6, at this time, the two ends of the temperature sensing barrel can be synchronously necked on the necking station by the two necking assemblies 5, and the two ends of the temperature sensing barrel can be synchronously shaped on the shaping station by the two necking assemblies 5.

[0048] From the above technical solution, it can be known that the embodiment of the present application has at least the following advantages and positive effects:

[0049] In the double-station temperature sensing barrel machine 100 of the embodiment of the present application, the conveying assembly 3 is arranged on one side of the feeding assembly 2; the conveying assembly 3 carries the temperature sensing barrel discharged from the feeding assembly 2 and moves the temperature sensing barrel to the moving assembly 4; the moving assembly 4 drives the temperature sensing barrel to pass through the necking assembly 5 and the shaping assembly 6 in turn, so that the temperature sensing barrel is sequentially necked and shaped under the driving of the moving assembly 4, wherein the temperature sensing barrel passes through the feeding assembly 2, the conveying assembly 3 and the moving assembly 4 in turn and passes through the necking assembly 5 and the shaping assembly 6 under the driving of the moving assembly 4, so as to make the necking assembly 5 and the shaping assembly 6 perform necking processing and shaping processing on the temperature sensing barrel, so that the double-station temperature sensing barrel machine 100 integrates necking processing and shaping processing, and the temperature sensing barrel does not need to be transferred artificially, thereby improving the processing efficiency and the processing precision of the temperature sensing barrel.

[0050] The above description is only optional embodiments of the present application, and does not limit the patent range of the present application, and any equivalent structural transformation made according to the content of the present application specification and drawings, or direct / indirect application in other related technical fields is included in the patent protection range of the present application.

Claims

1. A duplex temperature-sensing tube machine, characterized in that, The double-station temperature sensing cylinder machine comprises a base, a feeding assembly, a conveying assembly, a moving assembly, a necking assembly and a shaping assembly; the feeding assembly, the conveying assembly, the moving assembly, the necking assembly and the shaping assembly are all mounted on the base; The conveying assembly is arranged on one side of the feeding assembly; the conveying assembly carries the temperature sensing cylinder discharged from the feeding assembly and moves the temperature sensing cylinder to the moving assembly; The moving assembly drives the temperature sensing cylinder to pass through the necking assembly and the shaping assembly in sequence, so that the temperature sensing cylinder is sequentially subjected to necking and shaping under the driving of the moving assembly; The feeding assembly comprises a vibrating disc and a feeding track; the feeding track is connected to the discharge end of the vibrating disc and extends towards the conveying assembly; The conveying assembly comprises a support seat, a first conveying module and a second conveying module; the support seat comprises a support groove for supporting the temperature sensing cylinder; the support groove is connected to the discharge end of the feeding track; the first conveying module and the second conveying module are arranged on both sides of the support seat and jointly act on both ends of the temperature sensing cylinder to convey the temperature sensing cylinder to the moving assembly; The first conveying module comprises a first air cylinder and a plunger; the plunger is connected to the output end of the first air cylinder and abuts against one end of the temperature sensing cylinder under the driving of the first air cylinder; the second conveying module comprises a second air cylinder and a needle; the needle is connected to the output end of the second air cylinder and abuts against the other end of the temperature sensing cylinder under the driving of the second air cylinder, so that the temperature sensing cylinder is displaced under the driving of the plunger and the needle; The moving assembly comprises a positioning seat, a third air cylinder and a pressing seat; the positioning seat carries the temperature sensing cylinder conveyed by the first conveying module and the second conveying module; the third air cylinder is connected to the pressing seat and drives the pressing seat to move towards the positioning seat and press the temperature sensing cylinder; The moving assembly further comprises a first sliding seat and a fourth air cylinder; the first sliding seat carries the positioning seat, the third air cylinder and the pressing seat and is movably connected to the base; the fourth air cylinder is connected to the first sliding seat and drives the first sliding seat to move towards the necking station and the shaping station; The double-station temperature sensing cylinder machine further comprises sliding assemblies; the sliding assemblies carry the adjacent necking assembly and shaping assembly and drive the necking assembly and the shaping assembly to move to the necking station and the shaping station respectively, so that the necking assembly and the shaping assembly sequentially perform necking processing and shaping processing on the temperature sensing cylinder; The sliding assemblies, the necking assemblies and the shaping assemblies are all two; one sliding assembly carries one necking assembly and one shaping assembly; the two sliding assemblies are arranged on both sides of the first sliding seat; the two necking assemblies are oppositely arranged and perform necking processing on both ends of the temperature sensing cylinder; the two shaping assemblies are oppositely arranged and perform shaping processing on both ends of the temperature sensing cylinder.

2. A double-station heat-sensitive tuber machine as claimed in claim 1, characterized in that The double-station temperature sensing cylinder machine further comprises a hopper; the hopper is arranged on one side of the moving assembly; the temperature sensing cylinder is moved by the moving assembly to the hopper under the driving of the plunger and the needle.

3. A double-station heat-sensitive cylinder machine as claimed in claim 1, characterized in that The necking assembly comprises a necking end and a first rotating shaft connected with each other; the shaping assembly comprises a shaping end and a second rotating shaft connected with each other; The sliding assembly is connected with a driving motor and a transmission mechanism, one end of the transmission mechanism is connected with the first rotating shaft and the second rotating shaft, and the other end of the transmission mechanism is connected with the driving motor, so that the driving motor drives the necking end and the shaping end to rotate synchronously through the transmission mechanism.

Citation Information

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