An extrusion production equipment for glass glue processing
By designing a diversion and feeding mechanism, combined with a heating and extrusion mechanism, the problem of low single-channel filling efficiency in traditional glass glue extrusion equipment has been solved, enabling simultaneous filling of multiple containers and automated operation, thus improving the efficiency and stability of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANDONG GUANGYA NEW MATERIAL CO LTD
- Filing Date
- 2025-07-16
- Publication Date
- 2026-05-26
AI Technical Summary
Traditional glass sealant extrusion production equipment can only extrude through a single discharge pipe, resulting in low filling efficiency and the inability to fill multiple containers simultaneously.
By employing a diversion mechanism and a feeding mechanism, multi-channel extrusion discharge of glass glue is achieved. A heating mechanism maintains the stability of the cylinder and the fluidity of the glass glue. Combined with the extrusion mechanism and the heating mechanism, multiple containers can be filled simultaneously and rotated automatically.
It improves the efficiency of glass glue filling, ensures smooth extrusion of glass glue, enhances the practicality and stability of the equipment, and enables simultaneous filling of multiple containers and automated operation.
Smart Images

Figure CN224279740U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass glue production technology, specifically to an extrusion production equipment for glass glue processing. Background Technology
[0002] Glass sealant is a commonly used household adhesive composed of sodium silicate, acetic acid, and organic silicone. It is used to bond and seal various types of glass to other substrates. Extrusion is an important step in the production process of glass sealant. The commonly used extrusion mechanism is a piston-type extrusion mechanism, which uses a pressure plate to squeeze out or overflow the glass sealant inside the cylinder.
[0003] Currently, traditional extrusion production equipment still has some shortcomings. When extruding the cylinder, it is usually extruded through the discharge pipe at the bottom of the cylinder. However, since there is only a single discharge pipe, it can only fill one container at a time, which cannot divert and discharge the glass glue, thus reducing the efficiency of the extrusion equipment in filling glass glue. To address this, we propose an extrusion production equipment for glass glue processing. Utility Model Content
[0004] In view of the shortcomings of the prior art mentioned in the background, the present invention provides an extrusion production equipment for glass glue processing.
[0005] This utility model overcomes the above technical problems by adopting the following technical solution:
[0006] An extrusion production equipment for glass glue processing includes: a support frame, the top of which has a pipe groove and two empty slots; a flow-dividing mechanism is provided on the top of the support frame, extending through the two empty slots to the bottom of the support frame; a feeding mechanism is provided at the bottom of the support frame; a mounting frame is connected to the top of the support frame; an extrusion mechanism is provided on the top of the mounting frame, extending to the top of the inner wall of the mounting frame; vertical plates are respectively connected to both sides of the top of the support frame; a second cylinder is connected to each of the two vertical plates; and a heating mechanism is provided on each of the two second cylinders.
[0007] As a further embodiment of this utility model: the diversion mechanism includes two vertical rods, two rotating plates, a hollow plate, a connecting pipe, a first sealing ring, four diversion pipes, and four positioning blocks. The two vertical rods are slidably sleeved inside the two slots, and the two ends of the two vertical rods extend to the outside of the two slots. The two rotating plates are rotatably connected to the top ends of the two vertical rods. The hollow plate is connected to the bottom ends of the two vertical rods. The connecting pipe is connected to the inner surface of the hollow plate. The first sealing ring is connected to the top of the connecting pipe. The four diversion pipes are evenly spaced and connected to the outer surface of the connecting pipe.
[0008] As a further improvement of this utility model: all four positioning blocks are connected to the top of the support frame, and the tops of two of the positioning blocks and the tops of the other two positioning blocks are respectively attached to the bottoms of the two rotating plates.
[0009] As a further embodiment of this utility model: the feeding mechanism includes a motor, a connecting rod, a cross, and four placement trays. The motor is connected to the top of the inner wall of the support frame, the connecting rod is connected to one end of the motor output shaft, the cross is connected to the outer surface of the connecting rod, and the four placement trays are evenly connected to the four ends of the cross.
[0010] As a further embodiment of this utility model: the extrusion mechanism includes a first cylinder, a connecting rod, and an extrusion plate. The first cylinder is connected to the top of the mounting frame, and the output end of the first cylinder extends to the top of the inner wall of the mounting frame. The connecting rod is connected to the output end of the first cylinder, and the extrusion plate is connected to the bottom end of the connecting rod. A second sealing ring is connected to the outer surface of the extrusion plate.
[0011] As a further embodiment of this utility model: the heating mechanism includes a heat-conducting clamping shell, a heat-insulating box, a water pump, a connecting pipe, multiple heating wires, and a return pipe. The heat-conducting clamping shell is connected to the output end of one of the second cylinders, and a solid plate is connected to the middle of the inner wall of the heat-conducting clamping shell. The heat-insulating box is connected to one side of the heat-conducting clamping shell, the water pump is connected to the back of the heat-insulating box, and the input end of the water pump extends into the interior of the heat-insulating box. The connecting pipe is connected to the output end of the water pump, and one end of the connecting pipe is connected to the outer surface of the heat-conducting clamping shell. The multiple heating wires are all connected inside the heat-insulating box, and the return pipe is connected between the front of the heat-insulating box and the outer surface of the heat-conducting clamping shell.
[0012] As a further improvement of this utility model, the bottom of the support frame is connected to two bases.
[0013] By adopting the above structure, this utility model has the following advantages compared with the prior art:
[0014] 1. In this utility model, the extruded glass glue can be diverted and discharged through the diversion mechanism and the feeding mechanism, realizing multi-channel extrusion discharge of glass glue. This allows the equipment to fill multiple containers simultaneously, improving the efficiency of filling containers with glass glue. At the same time, it can also automatically rotate the container filled with glass glue, making it convenient for the next batch of containers to be filled with glass glue, thereby improving the practicality of the equipment.
[0015] 2. In this utility model, the two heating mechanisms not only fix the cylinder and improve its stability when it is squeezed, but also heat the silicone sealant inside the cylinder to prevent it from solidifying and facilitate its extrusion, making the extrusion process smoother and thus further improving the practicality of the device. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 For the present utility model
[0018] Figure 3 A schematic diagram showing the positions of the pipe trench and the two empty trenches;
[0019] Figure 4 This is a schematic diagram of the diversion mechanism of this utility model;
[0020] Figure 5 This is a schematic diagram of the feeding mechanism of this utility model;
[0021] Figure 6 This is a schematic diagram of the extrusion mechanism of this utility model;
[0022] Figure 7 This is a schematic diagram of the heating mechanism of this utility model.
[0023] In the diagram: 1. Support frame; 2. Diverting mechanism; 201. Vertical rod; 202. Rotating plate; 203. Hollow plate; 204. Connecting pipe; 205. First sealing ring; 206. Diverting pipe; 207. Positioning block; 3. Feeding mechanism; 301. Motor; 302. Connecting rod; 303. Cross; 304. Placement tray; 4. Mounting frame; 5. Extrusion mechanism; 501. First cylinder; 502. Connecting rod; 503. Extrusion plate; 6. Vertical plate; 7. Second cylinder; 8. Heating mechanism; 801. Heat-conducting clamping shell; 802. Insulation box; 803. Water pump; 804. Connecting pipe; 805. Heating wire; 806. Return pipe; 9. Base. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Example 1:
[0026] Please see Figures 1 to 7 In this embodiment of the present invention, an extrusion production equipment for glass glue processing includes: a support frame 1, the top of the support frame 1 having a pipe groove and two empty grooves, a diversion mechanism 2 being provided on the top of the support frame 1, and the diversion mechanism 2 extending through the two empty grooves to the bottom of the support frame 1, a feeding mechanism 3 being provided at the bottom of the support frame 1, a mounting frame 4 being connected to the top of the support frame 1, an extrusion mechanism 5 being provided on the top of the mounting frame 4, and the extrusion mechanism 5 extending to the top of the inner wall of the mounting frame 4, vertical plates 6 being connected to both sides of the top of the support frame 1, a second cylinder 7 being connected to each of the two vertical plates 6, and a heating mechanism 8 being provided on each of the two second cylinders 7.
[0027] Specifically, the cylinder is placed on top of the support frame 1, and the discharge pipe of the cylinder passes through the groove. Then, the diversion mechanism 2 is pulled upward to seal against the discharge pipe. Next, the two second cylinders 7 are activated to drive the two heating mechanisms 8 to move closer to each other and clamp the outer surface of the cylinder. Water is then added to the two heating mechanisms 8 and activated. The water inside the two heating mechanisms 8 is heated and then transferred to the outer surface of the cylinder, softening the silicone sealant inside the cylinder. Then, the extrusion mechanism 5 is activated to extrude the silicone sealant inside the cylinder, thus squeezing it out through the discharge pipe. The sealant is then diverted by the diversion mechanism 2 and flows into the four containers placed on the feeding mechanism 3. After the four containers are filled, the feeding mechanism 3 is activated to rotate the containers filled with silicone sealant away and rotate the containers without silicone sealant to the bottom of the diversion mechanism 2, making it convenient for the containers to be filled with silicone sealant next time.
[0028] Example 2:
[0029] Please see Figures 4-6In this embodiment of the present invention, an extrusion production device for glass glue processing includes a diversion mechanism 2 comprising two vertical rods 201, two rotating plates 202, a hollow plate 203, a connecting pipe 204, a first sealing ring 205, four diversion pipes 206, and four positioning blocks 207. The two vertical rods 201 are slidably fitted inside two slots, with both ends of the two vertical rods 201 extending to the outside of the two slots. The two rotating plates 202 are rotatably connected to the top ends of the two vertical rods 201. The hollow plate 203 is connected to the bottom ends of the two vertical rods 201. The connecting pipe 204 is connected to the inner surface of the hollow plate 203. The first sealing ring 205 is connected to the top of the connecting pipe 204. The four diversion pipes 206 are equidistantly connected to the outer surface of the connecting pipe 204. The four positioning blocks 207 are all connected to the top of the support frame 1, with the tops of two of the positioning blocks 207... The top of the part and the other two positioning blocks 207 are respectively attached to the bottom of the two rotating plates 202. The feeding mechanism 3 includes a motor 301, a connecting rod 302, a cross 303 and four placement plates 304. The motor 301 is connected to the top of the inner wall of the support frame 1. The connecting rod 302 is connected to one end of the output shaft of the motor 301. The cross 303 is connected to the outer surface of the connecting rod 302. The four placement plates 304 are evenly connected to the four ends of the cross 303. The extrusion mechanism 5 includes a first cylinder 501, a connecting rod 502 and an extrusion plate 503. The first cylinder 501 is connected to the top of the mounting frame 4 and the output end of the first cylinder 501 extends to the top of the inner wall of the mounting frame 4. The connecting rod 502 is connected to the output end of the first cylinder 501. The extrusion plate 503 is connected to the bottom end of the connecting rod 502 and the outer surface of the extrusion plate 503 is connected with a second sealing ring.
[0030] Specifically, pulling the two rotating plates 202 upwards causes the two vertical rods 201 to rise, making the two rotating plates 202 higher than the tops of the two positioning blocks 207. Rotating the two rotating plates 202 causes their bottoms to adhere to the tops of the four positioning blocks 207. As the two vertical rods 201 rise, they drive the connecting pipe 204 upwards via the hollow plate 203, causing the connecting pipe 204 to fit over the outer surface of the discharge pipe. The first sealing ring 205 seals the connection between the connecting pipe 204 and the discharge pipe. The containers are then placed on top of the placement tray 304. Finally, the first cylinder 501 is activated to output the output. The end is driven by the connecting rod 502 to lower the extrusion plate 503. The extrusion plate 503 continues to descend inside the cylinder, squeezing the glass glue inside the cylinder. The glass glue enters the connecting pipe 204 through the discharge pipe and is finally extruded through the four diversion pipes 206. The extruded glass glue flows into the container respectively. Finally, the output shaft of the motor 301 is started to drive the cross 303 to rotate 90 degrees through the connecting rod 302, thereby driving the container filled with glass glue to rotate and move. The container without glass glue is placed at the bottom of the four diversion pipes 206, so as to carry out the next filling of glass glue.
[0031] Example 3:
[0032] Please see Figures 1 to 7 In this embodiment of the invention, an extrusion production device for glass glue processing includes a heating mechanism 8 comprising a heat-conducting clamping shell 801, a heat-insulating box 802, a water pump 803, a connecting pipe 804, multiple heating wires 805, and a return pipe 806. The heat-conducting clamping shell 801 is connected to the output end of one of the second cylinders 7, and a solid plate is connected to the middle of the inner wall of the heat-conducting clamping shell 801. The heat-insulating box 802 is connected to one side of the heat-conducting clamping shell 801, and the water pump 803 is connected to... The water pump 803 is connected to the back of the insulation box 802, and the input end of the water pump 803 extends into the interior of the insulation box 802. The connecting pipe 804 is connected to the output end of the water pump 803, and one end of the connecting pipe 804 is connected to the outer surface of the heat-conducting clamping shell 801. Multiple heating wires 805 are connected inside the insulation box 802. The return pipe 806 is connected between the front of the insulation box 802 and the outer surface of the heat-conducting clamping shell 801. Two bases 9 are connected to the bottom of the support frame 1.
[0033] Specifically, the output end of the second cylinder 7 is activated to drive the heat-conducting clamping shell 801 to adhere to the outer surface of the cylinder, thus fixing the cylinder. Then, water is added into the insulation box 802, and the water is heated by multiple heating wires 805. The water pump 803 is activated to transport the hot water to the inside of the heat-conducting clamping shell 801 through the connecting pipe 804. The hot water contacts the outer surface of the cylinder through the heat-conducting clamping shell 801, heating the silicone sealant inside the cylinder, which softens the sealant and makes it easier to extrude. Finally, the water inside the heat-conducting clamping shell 801 flows back to the inside of the insulation box 802 through the return pipe 806 for recycling. The stability of the equipment during operation is improved by the action of the two heating mechanisms 8.
[0034] The working principle of this utility model is as follows: First, before use, place the cylinder containing the silicone sealant on top of the support frame 1, and let the discharge pipe at the bottom of the silicone sealant pass through the groove. Then, pull the two rotating plates 202 upwards. The two rotating plates 202 drive the two vertical rods 201 to rise, so that the two rotating plates 202 are higher than the top of the two positioning blocks 207. Then, rotate the two rotating plates 202 to attach them to the top of the four positioning blocks 207. As the two vertical rods 201 rise, they will drive the connecting pipe 204 to rise through the hollow plate 203, so that the connecting pipe... 204 is fitted onto the outer surface of the discharge pipe, and the first sealing ring 205 seals the connection pipe 204 and the discharge pipe. The containers are then placed on top of the placement tray 304. Next, the first cylinder 501 is activated. The output end of the first cylinder 501 drives the extrusion plate 503 to descend via the connecting rod 502. The extrusion plate 503 continues to descend inside the cylinder, extruding the silicone sealant inside. Under pressure, the silicone sealant enters the connection pipe 204 through the discharge pipe, and is finally extruded through the four branch pipes 206. The extruded sealant... The silicone sealant flows into the container. Then, motor 301 is started. The output shaft of motor 301, via connecting rod 302, rotates crossbar 303 90 degrees, causing the container filled with silicone sealant to rotate. The container without silicone sealant is placed at the bottom of the four distribution pipes 206 for the next filling. When squeezing the silicone sealant inside the cylinder, the second cylinder 7 is activated. The output end of the second cylinder 7 causes the heat-conducting clamping shell 801 to adhere to the outer surface of the cylinder. Next, water is added into the insulation box 802, and multiple heating wires 805... Under the action of the pump, the water is heated. Then, the water pump 803 is started. The input end of the water pump 803 draws hot water from the inside of the insulation box 802 and delivers it to the inside of the connecting pipe 804 through the output end of the water pump 803. Then, the hot water enters the inside of the heat-conducting clamp shell 801. The hot water comes into contact with the outer surface of the cylinder through the heat-conducting clamp shell 801, which heats the silicone sealant inside the cylinder, making it easier to squeeze out the silicone sealant inside the cylinder. Finally, the water inside the heat-conducting clamp shell 801 flows back to the inside of the insulation box 802 through the return pipe 806 for recycling.
[0035] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention.
Claims
1. An extrusion production equipment for processing glass glue, characterized in that, include: A support frame (1) is provided with a pipe groove and two empty grooves at the top. A diversion mechanism (2) is provided at the top of the support frame (1), and the diversion mechanism (2) extends through the two empty grooves to the bottom of the support frame (1). A feeding mechanism (3) is provided at the bottom of the support frame (1). A mounting frame (4) is connected to the top of the support frame (1). A pressing mechanism (5) is provided at the top of the mounting frame (4), and the pressing mechanism (5) extends to the top of the inner wall of the mounting frame (4). Vertical plates (6) are connected to both sides of the top of the support frame (1). A second cylinder (7) is connected to each of the two vertical plates (6). A heating mechanism (8) is provided on each of the two second cylinders (7).
2. The extrusion production equipment for glass glue processing according to claim 1, characterized in that, The diversion mechanism (2) includes two vertical rods (201), two rotating plates (202), a hollow plate (203), a connecting pipe (204), a first sealing ring (205), four diversion pipes (206) and four positioning blocks (207). The two vertical rods (201) are slidably sleeved inside the two slots, and the two ends of the two vertical rods (201) extend to the outside of the two slots. The two rotating plates (202) are rotatably connected to the top of the two vertical rods (201). The hollow plate (203) is connected to the bottom of the two vertical rods (201). The connecting pipe (204) is connected to the inner surface of the hollow plate (203). The first sealing ring (205) is connected to the top of the connecting pipe (204). The four diversion pipes (206) are evenly connected to the outer surface of the connecting pipe (204).
3. The extrusion production equipment for glass glue processing according to claim 2, characterized in that, All four positioning blocks (207) are connected to the top of the support frame (1), and the tops of two of the positioning blocks (207) and the tops of the other two positioning blocks (207) are respectively attached to the bottoms of the two rotating plates (202).
4. The extrusion production equipment for glass glue processing according to claim 1, characterized in that, The feeding mechanism (3) includes a motor (301), a connecting rod (302), a cross (303), and four placement trays (304). The motor (301) is connected to the top of the inner wall of the support frame (1). The connecting rod (302) is connected to one end of the output shaft of the motor (301). The cross (303) is connected to the outer surface of the connecting rod (302). The four placement trays (304) are evenly connected to the four ends of the cross (303).
5. The extrusion production equipment for glass glue processing according to claim 1, characterized in that, The extrusion mechanism (5) includes a first cylinder (501), a connecting rod (502), and an extrusion plate (503). The first cylinder (501) is connected to the top of the mounting frame (4), and the output end of the first cylinder (501) extends to the top of the inner wall of the mounting frame (4). The connecting rod (502) is connected to the output end of the first cylinder (501). The extrusion plate (503) is connected to the bottom end of the connecting rod (502), and a second sealing ring is connected to the outer surface of the extrusion plate (503).
6. The extrusion production equipment for glass glue processing according to claim 1, characterized in that, The heating mechanism (8) includes a heat-conducting clamping shell (801), a heat-insulating box (802), a water pump (803), a connecting pipe (804), multiple heating wires (805), and a return pipe (806). The heat-conducting clamping shell (801) is connected to the output end of one of the second cylinders (7), and a solid plate is connected to the middle of the inner wall of the heat-conducting clamping shell (801). The heat-insulating box (802) is connected to one side of the heat-conducting clamping shell (801), and the water pump (803) is connected to the heat-insulating box (804). The back of the incubator (802) and the input end of the water pump (803) extends into the interior of the incubator (802). The connecting pipe (804) is connected to the output end of the water pump (803), and one end of the connecting pipe (804) is connected to the outer surface of the heat-conducting clamping shell (801). Multiple heating wires (805) are connected inside the incubator (802). The return pipe (806) is connected between the front of the incubator (802) and the outer surface of the heat-conducting clamping shell (801).
7. The extrusion production equipment for glass glue processing according to claim 1, characterized in that, The bottom of the support frame (1) is connected to two bases (9).