A multi-station feeding belt tensioning machine
The strapping machine, with its multi-station feeding design, adopts a dual-station transport tray and linear sliding guide structure, which solves the problem of waiting time during the feeding process of traditional strapping machines and achieves efficient automated feeding and processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CRRC SMART IND INVESTMENT (SHANGHAI) CO LTD
- Filing Date
- 2025-06-24
- Publication Date
- 2026-05-26
Smart Images

Figure CN224277706U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of belt binding technology, and in particular to a belt binding machine with multi-station feeding. Background Technology
[0002] With the intelligent and flexible upgrading of the manufacturing industry, the packaging process has placed higher demands on the efficiency, flexibility and compatibility of equipment. Strapping machines are used for bundling and fixing products and are widely used in industries such as rubber, electronics, pharmaceuticals, logistics and daily necessities. Traditional single-station strapping machines can no longer meet the needs of large-scale and multi-variety production scenarios.
[0003] Traditional semi-automatic strapping machines typically feed materials from one side and then process them, remaining stationary during the processing, which wastes time and affects processing efficiency. Utility Model Content
[0004] The purpose of this utility model is to provide a multi-station feeding strapping machine, which aims to solve the problem that traditional semi-automatic strapping machines usually feed materials on one side and then process them, resulting in wasted time and reduced processing efficiency due to the static waiting during the processing.
[0005] To achieve the above objectives, this utility model provides a multi-station feeding strapping machine, including a workbench, a support frame, and a feeding assembly. The feeding assembly includes a receiving component, a strapping machine, a control component, a clamping device, a slider, a transport disk, a rack and pinion rotating component, a linear sliding guide rail, a bracket, and a baffle.
[0006] The worktable is located at the bottom of the support frame. The linear sliding guide rail is connected to the support frame and located on one side of the support frame. The slider is located on the linear sliding guide rail. The bracket is fixedly connected to the worktable and located on the top of the worktable. The baffle is rotatably connected to the bracket and located on one side of the bracket. The transport plate is rotatably connected to the slider and located on the top of the slider. The rack and pinion rotating component is connected to the transport plate and to the worktable, and located on one side of the worktable. The belt-bearing machine is installed on the worktable. The material receiving component is located on the outside of the worktable. The control component is installed on the top of the bracket. The clamping device is connected to the worktable and located on the top of the linear sliding guide rail.
[0007] The receiving component includes a support platform and a receiving box. The support platform is located on the outside of the workbench, and the receiving box is placed on top of the support platform.
[0008] The rack rotating component includes a rack and a gear. The gear is fixedly connected to the transport disk and located at the bottom of the transport disk. The rack is fixedly connected to the worktable and located on one side of the worktable.
[0009] The control components include a PLC controller, touch buttons, and an operation panel. The PLC controller is detachably connected to the bracket and is located on the top of the bracket. The touch buttons are connected to the PLC controller and are located on one side of the PLC controller. The operation panel is located on one side of the PLC controller.
[0010] The feeding assembly further includes a threaded rod and an anti-slip pad. The threaded rod is threadedly connected to the support frame or the support platform and is located at the bottom of the support frame or the support platform. The anti-slip pad is fixedly connected to the threaded rod and is located at the bottom of the threaded rod.
[0011] This utility model discloses a multi-station feeding strapping machine. The support frame is equipped with two sets of parallel linear sliding guides. The strapping machine is positioned on the outer middle of these guides. Each set of guides has a transport tray mounted on it, with the trays positioned opposite each other, giving the device a dual-station configuration. Each transport tray is divided into two transport areas. A drive device moves a slider along the linear sliding guides. When the transport tray reaches a designated position, a clamping device grips the load and moves it onto the strapping machine for strapping. The belt-bearing machine has an air blowing device on one side that can blow the belted product into the receiving component. When one of the transport trays is clamping and picking up material, the other transport tray can be loaded, thereby improving the loading efficiency. The linear sliding guide rail and the transport tray are equipped with a rack and pinion rotating component, which can rotate the transport tray to facilitate clamping by the clamping device. This solves the problem of traditional semi-automatic belt-bearing machines that usually load material on one side and then process it, resulting in wasted time and reduced processing efficiency due to the static waiting during processing. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a structural diagram of a multi-station feeding belt machine according to this utility model.
[0014] Figure 2 This is a cross-sectional schematic diagram of a multi-station feeding belt tensioning machine according to this utility model.
[0015] Figure 3 yes Figure 2 Enlarged view of detail A.
[0016] Figure 4 This is a side view of a multi-station feeding belt tensioning machine according to the present invention.
[0017] 101-Workbench, 102-Support frame, 103-Feeding assembly, 104-Receiving assembly, 105-Belt tensioning machine, 106-Control assembly, 107-Clamping device, 108-Slider, 109-Carrier tray, 110-Rack and pinion rotating assembly, 111-Linear sliding guide rail, 112-Bracket, 113-Baffle, 114-Support platform, 115-Receiving box, 116-Rack and pinion, 117-Gear, 118-PLC controller, 119-Touch button, 120-Operation panel, 121-Threaded rod, 122-Anti-slip mat. Detailed Implementation
[0018] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0019] This utility model provides a multi-station feeding strapping machine, including a worktable 101, a support frame 102, and a feeding assembly 103. The feeding assembly 103 includes a receiving component 104, a strapping machine 105, a control component 106, a clamping device 107, a slider 108, a transport tray 109, a rack and pinion rotating component 110, a linear sliding guide rail 111, a bracket 112, a baffle 113, a support platform 114, a receiving box 115, a rack 116, a gear 117, a PLC controller 118, touch buttons 119, an operation panel 120, a threaded rod 121, and an anti-slip pad 122. This solution solves the problem of traditional semi-automatic strapping machines that typically feed material on one side before processing, resulting in wasted time and reduced processing efficiency due to static waiting during processing.
[0020] In this embodiment, the workbench 101 is disposed at the bottom of the support frame 102, the linear sliding guide rail 111 is connected to the support frame 102 and located on one side of the support frame 102, the slider 108 is disposed on the linear sliding guide rail 111, the bracket 112 is fixedly connected to the workbench 101 and located at the top of the workbench 101, the baffle 113 is rotatably connected to the bracket 112 and located on one side of the bracket 112, and the transport tray 109 is rotatably connected to the slider 108. The rack and pinion rotating member 110 is connected to the transport disk 109 and the worktable 101, and is located on one side of the worktable 101. The belt-gluing machine 105 is mounted on the worktable 101. The receiving member 104 is located on the outside of the worktable 101. The control member 106 is mounted on the top of the bracket 112. The clamping device 107 is connected to the worktable 101 and is located on the top of the linear sliding guide rail 111. The support frame 1... The device 02 is equipped with two sets of parallel linear sliding guides 111. The strapping machine 105 is positioned at the middle outer position of the linear sliding guides 111. Both sets of linear sliding guides 111 are equipped with transport trays 109, which are positioned opposite each other, giving the device a dual-station configuration. Each transport tray 109 is divided into two transport areas. The slider 108 is moved on the linear sliding guides 111 by a driving device. When the transport tray 109 moves to the designated position, the clamping device 107 clamps the transported object and moves it to the strapping machine. The strapping machine 105 performs strapping, and an air blowing device is provided on one side of the strapping machine 105 to blow the strapped product into the receiving component 104. When one of the transport trays 109 is clamping and picking up material, the other transport tray 109 can be loaded, thereby improving the loading efficiency. The linear sliding guide rail 111 and the transport tray 109 are provided with a rack and pinion rotating component 110, which can rotate the transport tray 109 to facilitate clamping by the clamping device 107. This solves the problem of wasted processing waiting time caused by single-sided loading in traditional semi-automatic strapping machines.
[0021] The receiving component 104 includes a support platform 114 and a receiving box 115. The support platform 114 is located on the outside of the workbench 101, and the receiving box 115 is placed on top of the support platform 114. The support platform 114 is used to support the receiving box 115, and the receiving box 115 is used to collect the processed products.
[0022] Secondly, the rack and pinion rotating component 110 includes a rack 116 and a gear 117. The gear 117 is fixedly connected to the transport disk 109 and is located at the bottom of the transport disk 109. The rack 116 is fixedly connected to the worktable 101 and is located on one side of the worktable 101. The rack 116 is disposed on the linear sliding guide rail 111. The transport disk 109 is slidably moved on the linear sliding guide rail 111 by the slider 108. When the transport disk 109 passes over the rack 116, the gear 117 meshes with the rack 116, thereby causing the transport disk 109 to rotate.
[0023] Furthermore, the control component 106 includes a PLC controller 118, a touch button 119, and an operation panel 120. The PLC controller 118 is detachably connected to the bracket 112 and is located on top of the bracket 112. The touch button 119 is connected to the PLC controller 118 and is located on one side of the PLC controller 118. The operation panel 120 is located on one side of the PLC controller 118. The PLC controller 118 is used for programming the operating system, the operation panel 120 is used for precise adjustment of the equipment, and the touch button 119 can realize one-button start or stop of the equipment for convenient processing operation.
[0024] Finally, the feeding assembly 103 also includes a threaded rod 121 and an anti-slip pad 122. The threaded rod 121 is threadedly connected to the support frame 102 or the support platform 114 and is located at the bottom of the support frame 102 or the support platform 114. The anti-slip pad 122 is fixedly connected to the threaded rod 121 and is located at the bottom of the threaded rod 121. By adjusting the installation length of the threaded rod 121 on the support frame 102 or the support platform 114, the height or balance of the device can be adjusted. The anti-slip pad 122 increases the friction between the device and the placement surface, thereby improving stability.
[0025] In a multi-station feeding strapping machine according to this invention, two sets of parallel linear sliding guide rails 111 are provided on the support frame 102. The strapping machine 105 is positioned on the outer middle of the linear sliding guide rails 111. Each set of linear sliding guide rails 111 is equipped with a transport tray 109, which is positioned opposite to each other, giving the device a dual-station configuration. Each transport tray 109 is divided into two transport areas. A driving device moves the slider 108 along the linear sliding guide rails 111. When the transport tray 109 moves to a designated position, it is clamped by the clamping device. The clamping device 107 moves the transported material to the strapping machine 105 for strapping. The strapping machine 105 is equipped with an air blowing device on one side, which can blow the strapped product into the receiving component 104. When one transport tray 109 is clamping and picking up material, the other transport tray 109 can be loaded, thereby improving the loading efficiency. The linear sliding guide rail 111 and the transport tray 109 are equipped with a rack and pinion rotating component 110, which can rotate the transport tray 109 to facilitate clamping by the clamping device 107. This solves the problem of wasted processing waiting time caused by single-sided loading in traditional semi-automatic strapping machines.
[0026] The above-disclosed embodiments are merely preferred embodiments of the multi-station feeding strapping machine of this utility model, and should not be construed as limiting the scope of this utility model. Those skilled in the art can understand that implementing all or part of the above embodiments and making equivalent changes in accordance with the claims of this utility model still fall within the scope of this utility model.
Claims
1. A multi-station feeding strapping machine, comprising a worktable and a support frame, characterized in that: It also includes a feeding assembly, which includes a receiving component, a belt tensioner, a control component, a clamping device, a slider, a transport disk, a rack and pinion rotating component, a linear sliding guide rail, a bracket, and a baffle. The worktable is located at the bottom of the support frame. The linear sliding guide rail is connected to the support frame and located on one side of the support frame. The slider is located on the linear sliding guide rail. The bracket is fixedly connected to the worktable and located on the top of the worktable. The baffle is rotatably connected to the bracket and located on one side of the bracket. The transport plate is rotatably connected to the slider and located on the top of the slider. The rack and pinion rotating component is connected to the transport plate and to the worktable, and located on one side of the worktable. The belt-bearing machine is installed on the worktable. The material receiving component is located on the outside of the worktable. The control component is installed on the top of the bracket. The clamping device is connected to the worktable and located on the top of the linear sliding guide rail.
2. The multi-station feeding belt machine as described in claim 1, characterized in that: The receiving component includes a support platform and a receiving box. The support platform is located on the outside of the workbench, and the receiving box is placed on top of the support platform.
3. A multi-station feeding belt tensioning machine as described in claim 2, characterized in that: The rack and pinion rotating component includes a rack and a gear. The gear is fixedly connected to the transport disk and located at the bottom of the transport disk. The rack is fixedly connected to the worktable and located on one side of the worktable.
4. A multi-station feeding belt tensioning machine as described in claim 3, characterized in that: The control component includes a PLC controller, touch buttons, and an operation panel. The PLC controller is detachably connected to the bracket and is located on the top of the bracket. The touch buttons are connected to the PLC controller and are located on one side of the PLC controller. The operation panel is located on one side of the PLC controller.
5. A multi-station feeding belt tensioning machine as described in claim 4, characterized in that: The feeding assembly also includes a threaded rod and an anti-slip pad. The threaded rod is threadedly connected to the support frame or the support platform and is located at the bottom of the support frame or the support platform. The anti-slip pad is fixedly connected to the threaded rod and is located at the bottom of the threaded rod.