Adjustable automatic soap packaging equipment
By designing clamping and weighing mechanisms, the problem of collision and friction caused by inaccurate positioning during the feeding process of the automatic soap packaging machine was solved, achieving stable soap transfer and efficient packaging, thus improving production efficiency and finished product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI CAIJING TECH CO LTD
- Filing Date
- 2025-04-17
- Publication Date
- 2026-04-21
AI Technical Summary
Existing automatic soap packaging machines require manual alignment of the packaging points during the feeding process, which causes the soap to collide and rub against the equipment, resulting in damage.
A clamping mechanism was designed to achieve centered positioning and stable transmission of soap during the transfer process through the cooperation of the clamping components, the screw drive, and the buffer pad, avoiding collisions and friction with the equipment. The weight of the soap is detected by a weighing mechanism to screen out unqualified products.
It achieves accurate positioning and stable transfer of soap during the packaging process, reduces wear, improves production efficiency and finished product quality, and ensures the integrity of soap during the feeding process.
Smart Images

Figure CN224146336U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of soap production technology, and relates to an automatic soap packaging machine, particularly an adjustable automatic soap packaging device. Background Technology
[0002] Automatic soap packaging machines can automatically complete a series of tasks including soap feeding, packaging, sealing, labeling, and counting. These machines typically use a servo drive system and are controlled via a touchscreen. First, the soap to be packaged is fed into the packaging area of the machine via a conveyor. Then, the packaging film passes through a series of transmission and forming devices to wrap the soap. Next, heat sealing or cold sealing is performed, and finally, the soap is cut to the set length, completing the packaging of one bar. Throughout the process, photoelectric detection devices monitor the packaging process to ensure accuracy and integrity. A variety of soap packaging machines are available to meet the production needs of manufacturers of different sizes.
[0003] A search revealed a Chinese patent document disclosing an automatic packaging system for soap film sheets [Application No.: CN202020218707.0; Publication No.: CN211731979U]. This packaging system involves a film feeding mechanism that outputs film sheet, which is then bonded to the double-sided adhesive of a double-sided adhesive applicator. The film is then cut by a film cutting mechanism, and soap is fed into the system. A first-stage folding packaging mechanism folds the film sheet around the soap, followed by a second-stage folding packaging mechanism that folds the film sheet at both ends. Finally, a single-sided adhesive applicator applies the single-sided adhesive, completing the packaging process and preventing the soap from being affected by heat sealing during packaging.
[0004] Although the soap packaging system disclosed in this patent uses double-sided tape to bond with film paper, replacing the heat-sealing packaging of soap, the packaging system requires workers to load the soap onto the packaging sealing point during the feeding process. Otherwise, the soap will collide and rub against parts such as folding rollers when it is transported to the packaging area, resulting in damage to the integrity of the soap. Utility Model Content
[0005] The purpose of this invention is to address the aforementioned problems in existing technologies by proposing an adjustable automatic soap packaging device. The technical problem this invention aims to solve is: how to position the soap in a straight line at the packaging point.
[0006] The objective of this utility model can be achieved through the following technical solutions:
[0007] An adjustable automatic soap packaging device includes an automatic packaging machine body, on which a conveyor belt body is mounted. Baffles are mounted on both sides of the conveyor belt body and fixed to the automatic packaging machine body. A bracket is fixed at the front position below each baffle. A base plate is fixed at the bottom of each baffle. A first wheel rail is provided on the base plate. A clamping mechanism is mounted on the first wheel rail. The clamping mechanism includes a movable component and a clamping component. The clamping component includes a second roller that is rolled within the first wheel rail. A slide rail is fixed on the second roller. A double-headed motor is fixed at the center of the inner wall of the slide rail. A lead screw is fixed to the output end of each double-headed motor. A movable angle piece is threaded onto the lead screw. A clamping plate is fixed to the end of the movable angle piece away from the lead screw. There are two clamping plates, arranged left and right. A buffer pad is fixed to the opposing sides of the two left and right clamping plates.
[0008] The working principle of this utility model is as follows: After the worker or external soap production robotic arm places the finished soap onto the weighing device, the conveyor belt body moves the first roller to the outer shell area through the movable component. The dual-head motor drives the lead screw to rotate. The bottom of the movable corner piece is located in the slide rail and cannot rotate with the lead screw, so a threaded transmission is generated between the movable corner piece and the lead screw. The two movable corner pieces move in opposite directions in a straight line at the same time. The clamping plate moves with the movable corner pieces, and the buffer pad moves with the clamping plate until the two buffer pads clamp the soap, realizing that the soap is centered and aligned with the packaging point in a straight line. The external robotic arm or operator pushes the slide rail to the area of the conveyor belt body. Inside, the first roller enters the second track. The conveyor belt body, through the movable component, drives the clamping component holding the soap to move towards the packaging point on the automatic packaging machine body. The conveyor belt body transfers the soap to the packaging point (this step is existing technology). The conveyor belt body reverses and returns the clamping component through the movable component to repeat the above operation for the next soap feeding. The above process achieves the centering positioning of the soap without manual alignment, ensuring that the soap is accurately transferred to the packaging point during the feeding process, improving production efficiency, avoiding collisions and friction between the soap and parts on the automatic packaging machine body, reducing soap wear and deformation, and improving the quality of the finished product.
[0009] The baffle has a second sliding groove on its side, and the upper and lower ends of the second sliding groove are connected to the second wheel rail. The movable component includes a first roller that is rotatably connected to the second wheel rail. A roller shaft is rotatably connected to the center of the first roller. A fixed square tube is fixed between the two roller shafts that are distributed vertically. A fixed cylinder is fixed below the fixed square tube. A movable rod is inserted inside the fixed cylinder. A fixed block is fixed at the bottom of the movable rod. A spring is fixed between the fixed block and the fixed cylinder. An abutment block is fixed at the bottom of the fixed block. The bottom of the abutment block contacts the surface of the conveyor belt body. The movable corner piece is inserted inside the fixed square tube.
[0010] Using the above structure, the restoring force of the spring causes the fixed block to move downwards. The movable rod moves downwards with the fixed block inside the fixed cylinder. The abutting block moves downwards with the fixed block until it abuts the conveyor belt body. During the movement of the conveyor belt body, the abutting block moves with the conveyor belt body due to the downward friction. The fixed cylinder moves sequentially via the movable rod, the fixed block, and the abutting block. The fixed square cylinder moves with the fixed cylinder, the roller moves with the fixed square cylinder, the first roller rolls with the roller in the second wheel rail, the movable corner piece moves with the fixed square cylinder, the slide rail moves with the movable corner piece, and the second roller rolls with the slide rail in the first wheel rail (the second roller and the slide rail...). The common structure involves a movable axle running through the wheel body (where the wheel body is movable and the axle and slide rail are fixedly connected). This allows the entire clamping mechanism to move with the conveyor belt body, ensuring that the movement range of the cushioning pad on the soap is always synchronized with the conveyor belt body's transmission of the soap. Synchronized transmission speed prevents friction between the soap and the conveyor belt body or cushioning pad. The soap remains on a straight line at the packaging point during transmission, ensuring stable position of the soap during loading. Furthermore, the clamping plate and cushioning pad provide protection during soap transmission, preventing the soap from being damaged by collisions.
[0011] The front end of the conveyor belt body is provided with a weighing mechanism. The weighing mechanism includes a shell fixed to the front end of the baffle. A weighing device is fixed to the bottom of the inner wall of the shell. The weighing device is electrically connected to a display screen. A microcontroller is fixed inside the display screen and the display screen is electrically connected to the microcontroller. The microcontroller is electrically connected to a speaker and two indicator lights. The speaker and two indicator lights are all fixed on the display screen, which is fixed to the front end of the shell.
[0012] Using the above structure, the two indicator lights are green and red, respectively. By setting the acceptable weight range for the produced soap to the microcontroller, when the operator or an external robotic arm places the soap on the weighing device, the weighing device senses the weight of the soap and displays the weight on the display screen. The microcontroller determines whether the soap weight meets the production standard. If it does, the green indicator light illuminates; if it does not meet the production standard, the red indicator light illuminates and a speaker sounds an alarm to remind the user that the soap weight is unacceptable. This process allows for individual testing of each soap before packaging, screening out unacceptable soaps and improving the quality of the finished product.
[0013] The outer casing has a first sliding groove on both the left and right sides, and the first sliding groove is connected to the second sliding groove, allowing the first roller to roll within the first sliding groove.
[0014] With the above structure, the first slide groove and the second slide groove are connected, allowing the clamping mechanism to clamp the soap placed on the weighing device on the movable outer shell, reducing the number of steps for operators or external robotic arms to move the soap, reducing the number of times the soap comes into contact with other equipment, and reducing wear.
[0015] The first roller is rotatably connected to the roller shaft via a bearing.
[0016] With the above structure, the bearings, the first roller, and the second roller all play a role in reducing friction and making the clamping mechanism move more stably along with the conveyor belt body.
[0017] The slide rail and lead screw are both made of light steel, while the contact block and buffer pad are both made of silicone rubber.
[0018] With the above structure, the lightweight steel material reduces the weight of the slide rail and lead screw, thereby reducing the resistance of the clamping mechanism and making it more flexible in following the movement of the conveyor belt. The silicone rubber material increases the friction between the contact block and the surface of the conveyor belt, making the contact block more stable in following the movement of the conveyor belt. The silicone rubber material of the cushioning pad increases the friction, making the cushioning pad clamp the soap more stably, while reducing the squeezing damage to the soap during the clamping process and maintaining the integrity of the soap.
[0019] Compared with existing technologies, this adjustable automatic soap packaging equipment has the following advantages:
[0020] 1. By setting up a clamping assembly, a threaded transmission is generated between the movable corner piece and the lead screw. The two movable corner pieces move in opposite directions in a straight line at the same time. The clamping plate moves with the movable corner pieces, and the buffer pad moves with the clamping plate until the two buffer pads clamp the soap, realizing the soap is centered and aligned with the packaging point in a straight line. The external robotic arm or operator pushes the slide rail into the area of the conveyor belt body, that is, the first roller enters the second wheel rail. The conveyor belt body drives the clamping assembly holding the soap to move towards the packaging point on the automatic packaging machine body through the movable assembly, realizing the centered positioning of the soap. No manual alignment is required, ensuring that the soap is accurately transferred to the packaging point during the feeding process, improving production efficiency, avoiding collisions and friction between the soap and parts on the automatic packaging machine body, reducing soap wear and deformation, and improving the quality of the finished product.
[0021] 2. By setting up movable components, the contact block moves with the conveyor belt body through downward friction. The fixed cylinder moves with the contact block via the movable rod and the fixed block in sequence. The fixed square cylinder moves with the fixed cylinder. The roller moves with the fixed square cylinder. The first roller rolls in the second wheel rail with the roller. The movable corner piece moves with the fixed square cylinder. The slide rail moves with the movable corner piece. The second roller rolls in the first wheel rail with the slide rail. This realizes that the entire clamping mechanism moves with the conveyor belt body, so that the range of motion of the cushioning pad on the soap is always synchronized with the conveyor belt body's transmission of the soap. Synchronized transmission speed can avoid friction between the soap and the conveyor belt body or the cushioning pad. The soap always stays on the straight line where the packaging point is located during the transmission process, so that the position of the soap is stable during the feeding process. In addition, the clamping plate and the cushioning pad protect the soap during the transmission process, avoiding collision and wear.
[0022] 3. By setting up a weighing mechanism, the weigher senses the weight of the soap and displays the weight on the display screen. The microcontroller determines whether the soap weight meets the production standard. If it meets the production standard, the green indicator light illuminates. If it does not meet the production standard, the red indicator light illuminates and the speaker sounds an alarm to remind the user that the soap weight is unqualified. The above process inspects each soap before packaging, screening out unqualified soaps and improving the quality of the finished product. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of this utility model.
[0024] Figure 2 This is a schematic diagram of the structure of the conveyor belt body in this utility model.
[0025] Figure 3 yes Figure 2 Enlarged view of the structure at point A in the middle.
[0026] Figure 4 This is a schematic diagram of the clamping mechanism in this utility model.
[0027] Figure 5 This is a structural schematic diagram of the weighing mechanism in this utility model.
[0028] Figure 6 This is a schematic diagram of the electrical connection of the weighing mechanism in this utility model.
[0029] In the diagram, 1. Automatic packaging machine body; 2. Conveyor belt body; 3. Weighing mechanism; 301. Outer shell; 302. Weigher; 303. First chute; 304. Display screen; 305. Indicator light; 306. Speaker; 307. Microcontroller; 4. Bracket; 5. Base plate; 501. First wheel rail; 6. Baffle; 601. Second chute; 602. Second wheel rail; 7. Clamping mechanism; 701. First roller; 702. Bearing; 703. Roller; 704. Fixed square tube; 705. Fixed cylinder; 706. Fixed block; 707. Movable rod; 708. Spring; 709. Abutment block; 710. Movable corner piece; 711. Lead screw; 712. Double-headed motor; 713. Slide rail; 714. Second roller; 715. Clamping plate; 716. Buffer pad. Detailed Implementation
[0030] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.
[0031] like Figures 1-6As shown, this adjustable automatic soap packaging equipment includes an automatic packaging machine body 1, a conveyor belt body 2 mounted on the automatic packaging machine body 1, baffles 6 on both sides of the conveyor belt body 2, the baffles 6 being fixed to the automatic packaging machine body 1, a bracket 4 fixed at the lower front position of the baffle 6, a base plate 5 fixed at the bottom of the baffle 6, a first wheel rail 501 provided on the base plate 5, a clamping mechanism 7 provided on the first wheel rail 501, the clamping mechanism 7 including a movable component and a clamping component, the clamping component including a rolling connection A second roller 714 is located inside the first wheel rail 501. A slide rail 713 is fixed on the second roller 714. A double-headed motor 712 is fixed at the center of the inner wall of the slide rail 713. A lead screw 711 is fixed at the output end of the double-headed motor 712. A movable angle piece 710 is threaded onto the lead screw 711. A clamping plate 715 is fixed at the end of the movable angle piece 710 away from the lead screw 711. There are two clamping plates 715, which are distributed left and right. A buffer pad 716 is fixed on the opposite side of the two left and right clamping plates 715.
[0032] In this embodiment, the automatic packaging machine body 1, the conveyor belt body 2, and the dual-head motor 712 all have existing structures and working principles. The conveyor belt body 2 is a common conveying device composed of a motor, conveyor belt, synchronous belt, synchronous pulley, etc. After the worker or an external soap production robotic arm places the finished soap on the weighing device, the conveyor belt body 2 moves the first roller 701 to the area of the outer casing 301 through the movable component. The dual-head motor 712 drives the lead screw 711 to rotate. The bottom of the movable corner piece 710 is located in the slide rail 713 and cannot rotate with the lead screw 711. Therefore, a threaded transmission is generated between the movable corner piece 710 and the lead screw 711. The two movable corner pieces 710 move in a straight line towards each other at the same time. The clamping plate 715 moves with the movable corner piece 710, and the buffer pad 716 moves with the clamping plate 715 until the two buffer pads 716 press against the soap. The soap is centered and aligned with the packaging location on a straight track. An external robotic arm or operator pushes the slide rail 713 into the area of the conveyor belt body 2, that is, the first roller 701 enters the second wheel rail 602. The conveyor belt body 2 drives the clamping component holding the soap to move towards the packaging point on the automatic packaging machine body 1 through the movable component. The conveyor belt body 2 transfers the soap to the packaging point (this step is existing technology). The conveyor belt body 2 reverses and returns the clamping component through the movable component to repeat the above operation for the next soap feeding. The above process achieves the centering and positioning of the soap without manual alignment, ensuring that the soap is accurately transferred to the packaging point during the feeding process, improving production efficiency, avoiding collisions and friction between the soap and parts on the automatic packaging machine body 1, reducing soap wear and deformation, and improving the quality of the finished product.
[0033] The side of the baffle 6 is provided with a second slide groove 601. The upper and lower ends of the second slide groove 601 are connected to the second wheel rail 602. The movable component includes a first roller 701 that is rotatably connected to the second wheel rail 602. The center of the first roller 701 is rotatably connected to a roller 703. A fixed square tube 704 is fixed between the two rollers 703 distributed vertically. A fixed tube 705 is fixed below the fixed square tube 704. A movable rod 707 is inserted through the fixed tube 705. A fixed block 706 is fixed at the bottom of the movable rod 707. A spring 708 is fixed between the fixed block 706 and the fixed tube 705. An abutment block 709 is fixed at the bottom of the fixed block 706. The bottom of the abutment block 709 contacts the surface of the conveyor belt body 2. A movable corner piece 710 is inserted through the fixed square tube 704.
[0034] In this embodiment, the restoring force of the spring 708 causes the fixed block 706 to move downwards. The movable rod 707 moves downwards with the fixed block 706 within the fixed cylinder 705. The abutting block 709 moves downwards with the fixed block 706 until it abuts the conveyor belt body 2. During the movement of the conveyor belt body 2, the abutting block 709 moves with the conveyor belt body 2 due to the downward friction. The fixed cylinder 705 moves sequentially with the abutting block 709 via the movable rod 707 and the fixed block 706. The fixed square cylinder 704 moves with the fixed cylinder 705. The roller 703 moves with the fixed square cylinder 704. The first roller 701 rolls with the roller 703 within the second wheel rail 602. The movable corner piece 710 moves with the fixed square cylinder 704. The slide rail 713 moves with the movable corner piece 710. The second roller... Roller 714 rolls within the first wheel rail 501 along the slide rail 713 (a common structure between the second roller 714 and the slide rail 713 is a wheel body with a movable shaft passing through it, where the wheel body is movable and the shaft and slide rail 713 are fixedly connected), thus enabling the clamping mechanism 7 to move as a whole with the conveyor belt body 2. This ensures that the movement range of the cushioning pad 716 on the soap is always synchronized with the conveyor belt body 2's transmission of the soap. Synchronized transmission speed prevents friction between the soap and the conveyor belt body 2 or the cushioning pad 706. The soap remains on the straight line where the packaging point is located during transmission, ensuring the soap's position is stable during the feeding process. Furthermore, the clamping plate 715 and the cushioning pad 716 provide protection during soap transmission, preventing the soap from being damaged by collisions or wear.
[0035] The front end of the conveyor belt body 2 is provided with a weighing mechanism 3. The weighing mechanism 3 includes a housing 301 fixed to the front end of the baffle 6. A weighing device 302 is fixed to the bottom of the inner wall of the housing 301. The weighing device 302 is electrically connected to a display screen 304. A microcontroller 307 is fixed inside the display screen 304 and is electrically connected to the microcontroller 307. The microcontroller 307 is electrically connected to a speaker 306 and two indicator lights 305. The speaker 306 and the two indicator lights 305 are all fixed on the display screen 304. The display screen 304 is fixed to the front end of the housing 301.
[0036] In this embodiment, the structure and working principle of the microcontroller 307, weighing device 302, display screen 304, speaker 306, and indicator light 305 are all existing technologies. The two indicator lights 305 are green and red, respectively. By setting the acceptable weight range of the produced soap to the microcontroller 307, when the operator or external robotic arm places the soap on the weighing device 302, the weighing device 302 senses the weight of the soap and displays the weight on the display screen 304. The microcontroller 307 determines whether the weight of the soap meets the production standard. If it meets the production standard, the green indicator light 305 lights up; if it does not meet the production standard, the red indicator light 305 lights up, and the speaker 306 emits a sound to remind that the soap weight is unqualified. The above process performs individual testing on the soap before packaging, screening out unqualified soaps and improving the quality of the finished product.
[0037] The outer casing 301 has a first sliding groove 303 on both the left and right sides. The first sliding groove 303 is connected to the second sliding groove 601, and the first roller 701 can roll in the first sliding groove 303.
[0038] In this embodiment, the first slide 303 and the second slide 601 are connected so that the clamping mechanism can clamp the soap placed on the weighing device 302 on the movable housing 301, reducing the number of steps for the operator or external robotic arm to move the soap, reducing the number of times the soap comes into contact with other equipment, and reducing wear.
[0039] The first roller 701 and the roller 703 are rotatably connected by a bearing 702. In this embodiment, the bearing 702, the first roller 701, and the second roller 714 all serve to reduce friction and make the clamping mechanism 7 move more stably with the conveyor belt body 2.
[0040] Both the slide rail 713 and the lead screw 711 are made of light steel, while the contact block 709 and the buffer pad 716 are made of silicone rubber. In this embodiment, the light steel material reduces the weight of the slide rail 713 and the lead screw 711, thereby reducing the resistance to movement of the clamping mechanism 7 and allowing it to move more flexibly with the conveyor belt body 2. The silicone rubber material increases the friction between the contact block 709 and the surface of the conveyor belt body 2, making the contact block 709 move more stably with the conveyor belt body 2. The silicone rubber material of the buffer pad 716 increases the friction, making the buffer pad 716 clamp the soap more stably, while reducing the squeezing damage to the soap during clamping and maintaining the integrity of the soap.
[0041] The working principle of this utility model is as follows: After the operator or external robotic arm places the finished soap onto the weighing device, the microcontroller 307 sets the acceptable weight range for the produced soap. When the operator or external robotic arm places the soap onto the weighing device 302, the weighing device 302 senses the weight of the soap and displays the weight on the display screen 304. The microcontroller 307 determines whether the soap weight meets the production standard. If it does, the green indicator light 305 lights up; if it does not meet the production standard, the red indicator light 305 lights up, and the speaker 306 sounds an audible warning that the soap weight is unacceptable. The restoring force of the spring 708 causes the fixed block 706 to move downwards, and the movable rod 707 moves downwards with the fixed block. Block 706 moves downward within the fixed cylinder 705, and the contact block 709 moves downward with the fixed block 706 until it contacts the conveyor belt body 2. During the movement of the conveyor belt body 2, the contact block 709 moves with the conveyor belt body 2 due to the downward friction. The fixed cylinder 705 moves with the contact block 709 via the movable rod 707 and the fixed block 706 in sequence. The fixed square cylinder 704 moves with the fixed cylinder 705, and the roller 703 moves with the fixed square cylinder 704. The first roller 701 rolls with the roller 703 within the second wheel rail 602. The movable corner piece 710 moves with the fixed square cylinder 704, and the slide rail 713 moves with the movable corner piece 710. The second roller 714 rolls with the slide rail 713 within the first wheel rail 501. The second roller 714 and the slide rail 713 are connected by a common structure in which a movable shaft passes through the wheel body (where the wheel body is movable and the shaft body and slide rail 713 are fixedly connected). This allows the clamping mechanism 7 to move with the conveyor belt body 2, ensuring that the movement range of the cushioning pad 716 on the soap is always synchronized with the conveyor belt body 2's transmission of the soap. The conveyor belt body 2 moves the first roller 701 into the area of the outer casing 301 via a movable component. The dual-head motor 712 drives the lead screw 711 to rotate. The bottom of the movable corner piece 710 is located inside the slide rail 713 and cannot rotate with the lead screw 711. Therefore, a threaded transmission is generated between the movable corner piece 710 and the lead screw 711, and the two movable corner pieces 710 move in opposite directions in a straight line simultaneously. The clamping plate 715 moves with the movable corner piece 710, and the buffer pad 716 moves with the clamping plate 715 until the two buffer pads 716 clamp the soap, so that the soap is centered and aligned with the packaging point on a straight track. The external robotic arm or operator pushes the slide rail 713 into the area of the conveyor belt body 2, that is, the first roller 701 enters the second wheel rail 602. The conveyor belt body 2 drives the clamping component holding the soap to move to the packaging point on the automatic packaging machine body 1 through the movable component. The conveyor belt body 2 transfers the soap to the packaging point (this step is prior art). The conveyor belt body 2 reverses and returns the clamping component through the movable component to repeat the above operation for the next soap feeding.
[0042] In summary, by setting up a clamping mechanism, the function of positioning the soap in a straight line at the packaging point can be achieved.
[0043] The specific embodiments described herein are merely illustrative examples illustrating the spirit of this utility model. Those skilled in the art to which this utility model pertains may make various modifications or additions to the described specific embodiments or use similar methods to substitute them, without departing from the spirit of this utility model or exceeding the scope defined by the appended claims.
Claims
1. An adjustable soap automatic packaging apparatus comprising an automatic packaging machine body (1), characterized in that, The automatic packaging machine body (1) is provided with a conveyor belt body (2), and baffles (6) are provided on both sides of the conveyor belt body (2). The baffles (6) are fixed on the automatic packaging machine body (1). A bracket (4) is fixed at the lower front position of the baffle (6). A base plate (5) is fixed at the bottom of the baffle (6). A first wheel rail (501) is provided on the base plate (5). A clamping mechanism (7) is provided on the first wheel rail (501). The clamping mechanism (7) includes a movable component and a clamping component. The clamping component includes a second component that is rolled within the first wheel rail (501). Roller (714), a slide rail (713) is fixed on the second roller (714), a double-head motor (712) is fixed at the center of the inner wall of the slide rail (713), a lead screw (711) is fixed at the output end of the double-head motor (712), a movable corner piece (710) is threaded on the lead screw (711), a clamping plate (715) is fixed at the end of the movable corner piece (710) away from the lead screw (711), there are two clamping plates (715) and they are distributed left and right, and a buffer pad (716) is fixed on the opposite side of the two left and right distributed clamping plates (715).
2. An adjustable soap automatic packing apparatus according to claim 1, characterized in that, The baffle (6) has a second slide groove (601) on its side. The upper and lower ends of the second slide groove (601) are connected to the second wheel rail (602). The movable component includes a first roller (701) that is rotatably connected in the second wheel rail (602). The center of the first roller (701) is rotatably connected to a roller shaft (703). A fixed square tube (704) is fixed between the two roller shafts (703) that are distributed vertically. A fixed tube (705) is fixed below the fixed square tube (704). A movable rod (707) is inserted inside the fixed tube (705). A fixed block (706) is fixed at the bottom of the movable rod (707). A spring (708) is fixed between the fixed block (706) and the fixed tube (705). An abutment block (709) is fixed at the bottom of the fixed block (706). The bottom of the abutment block (709) is in contact with the surface of the conveyor belt body (2). A movable corner piece (710) is inserted inside the fixed square tube (704).
3. An adjustable soap automatic packaging apparatus according to claim 2, characterized in that, The front end of the conveyor belt body (2) is provided with a weighing mechanism (3). The weighing mechanism (3) includes a housing (301) fixed to the front end of the baffle (6). A weighing device (302) is fixed to the bottom of the inner wall of the housing (301). The weighing device (302) is electrically connected to a display screen (304). A microcontroller (307) is fixed inside the display screen (304). The display screen (304) is electrically connected to the microcontroller (307). The microcontroller (307) is electrically connected to a speaker (306) and two indicator lights (305). The speaker (306) and the two indicator lights (305) are all fixed on the display screen (304). The display screen (304) is fixed to the front end of the housing (301).
4. An adjustable soap automatic packing apparatus according to claim 3, wherein The outer shell (301) has a first sliding groove (303) on both the left and right sides. The first sliding groove (303) is connected to the second sliding groove (601), and the first roller (701) can roll in the first sliding groove (303).
5. An adjustable soap automatic packing apparatus according to claim 2, wherein The first roller (701) and the roller (703) are rotatably connected by a bearing (702).
6. An adjustable soap automatic packing apparatus according to claim 1, wherein The slide rail (713) and lead screw (711) are both made of light steel, and the contact block (709) and buffer pad (716) are both made of silicone rubber.
Citation Information
Patent Citations
Automatic soap film paper packaging system
CN211731979U