High pressure air blast cooling device for amino molding compound
Patent Information
- Application Number
- CN202522243886.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-10-23
AI Technical Summary
[0003]合成后颗粒温度较高,需快速降温至环境温度以下方可包装,传统的冷却方式通过鼓风机进行冷却,然而传统的鼓风机无法有效对底层的颗粒进行冷却
[0015]本实用新型中,振动电机带动振动框进行振动,使得放置在筛框上的颗粒会翻动,底层的颗粒也会受到鼓风机的吹拂,加快颗粒冷却的速度,同时也可对底层颗粒进行有效冷却。
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Figure CN224796084U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of amino molding compound technology, and in particular to a high-pressure blower cooling device for amino molding compounds. Background Technology
[0002] Amino molding compounds are thermosetting resin materials produced by the reaction of compounds with amino or amide functional groups and aldehyde compounds. They are usually made with urea-formaldehyde resin or melamine-formaldehyde resin as the base material, and fillers such as cellulose and minerals, as well as auxiliary materials such as lubricants, curing agents, and pigments.
[0003] The synthesized granules are at a high temperature and need to be cooled down to below the ambient temperature before packaging. The traditional cooling method is to use a blower, but the traditional blower cannot effectively cool the granules at the bottom. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a high-pressure blower cooling device for amino molding compounds.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A high-pressure blower cooling device for amino molding compounds includes a cooling box and a vibrating frame. A blower is fixedly installed on the top of the cooling box, and a guide pipe is installed on the blower. Two side passage slots are opened on both sides of the cooling box. The vibrating frame is located inside the cooling box. A limiting plate and a screen frame are slidably inserted into the upper and lower ends of the vibrating frame, respectively. Two springs are fixedly installed on all four sides of the vibrating frame. The other end of the springs is fixedly connected to the inner wall of the cooling box. Two extension plates are provided on both sides of the vibrating frame. The extension plates are movably located in the side passage slots. Springs are fixedly installed on the top and bottom of the extension plates. The other ends of the two springs are fixedly connected to the top and bottom surfaces of the side passage slots, respectively. A horizontal plate is provided on the bottom surface of the vibrating frame, and a vibration motor is fixedly installed at the bottom of the horizontal plate.
[0007] In addition, a preferred structure is that a through groove 1 and a through groove 2 are provided on one side of the vibration frame, and a slot 1 is provided at both ends of one side of the through groove 1, and a slot 2 is provided at both ends of one side of the through groove 2.
[0008] In addition, a preferred structure is that two sliding grooves are provided on both sides of the upper end of the inner wall of the vibration frame, and two sliding grooves are provided on both sides of the lower end of the inner wall of the vibration frame.
[0009] In addition, a preferred structure is that a limiting mesh is provided inside the limiting plate, the two ends of the limiting plate are slidably inserted into the sliding groove, and a locking block is provided at both ends of one side of the limiting plate. The locking block is installed in the locking groove by screws.
[0010] In addition, a preferred structure is that two inserts are provided on both sides of the screen frame, the inserts are slidably inserted into the slide groove, and two locking blocks are provided at both ends of one side of the screen frame, the locking blocks being installed in the slot by screws.
[0011] In addition, a preferred structure is that a plurality of ventilation slots are provided on the bottom surface of the cooling box, and strip slot one and strip slot two are provided at one end of the cooling box, and strip slot one and strip slot two are respectively adapted to through slot one and through slot two.
[0012] In addition, a preferred structure is that a discharge pipe is installed at one end of the cooling box, and the outlet end of the discharge pipe is aligned with one end of the screen frame.
[0013] Furthermore, in a preferred configuration, the aperture of the sieve frame and the aperture of the limiting mesh are both smaller than the particle diameter.
[0014] The beneficial effects of this utility model are as follows:
[0015] In this invention, the vibrating motor drives the vibrating frame to vibrate, causing the particles placed on the screen frame to turn over, and the particles at the bottom are also blown by the blower, which accelerates the cooling speed of the particles and can also effectively cool the particles at the bottom. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of a high-pressure blower cooling device for amino molding compounds proposed in this utility model.
[0017] Figure 2 This is a schematic diagram of the internal structure of a high-pressure blower cooling device for amino molding compounds proposed in this utility model;
[0018] Figure 3 This is a schematic diagram of the cross-sectional structure of the cooling box of the high-pressure blower cooling device for amino molding compounds proposed in this utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the limiting plate and screen frame of the high-pressure blower cooling device for amino molding compounds proposed in this utility model when they are removed.
[0020] Figure 5 A schematic diagram of the vibration frame structure of the high-pressure blower cooling device for amino molding compounds proposed in this utility model. Figure 1 ;
[0021] Figure 6 A schematic diagram of the vibration frame structure of the high-pressure blower cooling device for amino molding compounds proposed in this utility model. Figure 2 .
[0022] In the diagram: 1 Cooling box, 101 Strip groove one, 102 Strip groove two, 103 Side passage groove, 104 Ventilation groove, 2 Blower, 3 Discharge pipe, 4 Guide pipe, 5 Vibration frame, 51 Outer plate, 52 Horizontal plate, 53 Slide groove one, 54 Slide groove two, 55 Through groove one, 551 Slot one, 56 Through groove two, 561 Slot two, 6 Limiting plate, 61 Limiting net, 62 Slot one, 7 Screen frame, 71 Slot two, 72 Insert strip, 8 Spring one, 9 Spring two, 10 Vibration motor. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0024] Reference Figure 1-6 A high-pressure blower cooling device for amino molding compounds includes a cooling box 1 and a vibrating frame 5. A blower 2 is fixedly installed on the top of the cooling box 1, and a guide pipe 4 is installed on the blower 2. Two side passages 103 are opened on both sides of the cooling box 1. The vibrating frame 5 is located inside the cooling box 1. A limiting plate 6 and a screen frame 7 are slidably inserted into the upper and lower ends of the vibrating frame 5, respectively. Two springs 8 are fixedly installed on all four sides of the vibrating frame 5. The other end of the springs 8 is fixedly connected to the inner wall of the cooling box 1. Two extension plates 51 are provided on both sides of the vibrating frame 5. The extension plates 51 are movably located in the side passages 103. Springs 9 are fixedly installed on the top and bottom of the extension plates 51. The other ends of the two springs 9 are fixedly connected to the top and bottom surfaces of the side passages 103, respectively. A horizontal plate 52 is provided on the bottom surface of the vibrating frame 5. A vibration motor 10 is fixedly installed at the bottom of the horizontal plate 52.
[0025] Among them, a through groove 55 and a through groove 56 are opened on one side of the vibration frame 5, and a slot 551 is opened at both ends of one side of the through groove 55, and a slot 561 is opened at both ends of one side of the through groove 56.
[0026] Meanwhile, two sliding grooves 53 are opened on both sides of the upper end of the inner wall of the vibration frame 5, and two sliding grooves 54 are opened on both sides of the lower end of the inner wall of the vibration frame 5.
[0027] Furthermore, a limiting net 61 is provided inside the limiting plate 6. The two ends of the limiting plate 6 are slidably inserted into the slide groove 53. A locking block 62 is provided at both ends of one side of the limiting plate 6. The locking block 62 is installed in the locking groove 551 by screws. The limiting net 61 prevents the particles from falling off when they are turned over. At the same time, when the vibrating frame 5 vibrates, the limiting plate 6 will not fall off from the vibrating frame 5.
[0028] Meanwhile, two inserts 72 are provided on both sides of the screen frame 7. The inserts 72 are slidably inserted into the slide groove 54. Two locking blocks 71 are provided at both ends of one side of the screen frame 7. The locking blocks 71 are installed in the slot 561 by screws. When the vibrating motor 10 drives the vibrating frame 5 to vibrate, the screen frame 7 will also vibrate and will not fall off from the vibrating frame 5.
[0029] Furthermore, several ventilation slots 104 are provided on the bottom surface of the cooling box 1, and strip slot one 101 and strip slot two 102 are provided at one end of the cooling box 1. Strip slot one 101 and strip slot two 102 are respectively adapted to through slot one 55 and through slot two 56. The limiting plate 6 can be removed after passing through through slot one 55 and strip slot one 101, and the screen frame 7 can be removed after passing through through slot two 56 and strip slot two 102.
[0030] Meanwhile, a discharge pipe 3 is installed at one end of the cooling box 1, and the outlet end of the discharge pipe 3 is aligned with one end of the screen frame 7. The particles to be cooled can be poured into the screen frame 7 through the discharge pipe 3.
[0031] Furthermore, the aperture of the sieve frame 7 and the aperture of the limiting mesh 61 are both smaller than the particle diameter, so that the particles will not fall off when the mesh is turned.
[0032] In this embodiment, the screws are loosened and the limiting plate 6 is pulled, so that the limiting plate 6 moves a distance, allowing the particles to be cooled to enter the screen frame 7 through the discharge pipe 3. The limiting plate 6 is pushed, and the locking block 62 of the limiting plate 6 is locked into the locking groove 551. The locking block 62 is then locked into the locking groove 551 by screws. Then, the vibration motor 10 is started, and the vibration motor 10 drives the vibration frame 5 to vibrate, which in turn drives the screen frame 7 to vibrate. The amino molding compound particles tumble in the screen frame 7 under the action of vibration. At the same time, the blower 2 is started, and the air from the blower 2 is blown onto the particles on the screen frame 7 through the guide pipe 4 to cool the particles.
[0033] After cooling is complete, both the blower 2 and the vibrating motor 10 stop working. Loosen the screws, pull the screen frame 7, remove the screen frame 7 from the vibrating frame 5, and collect the particles inside the screen frame 7.
[0034] In this invention, the vibrating motor 10 drives the vibrating frame 5 to vibrate, causing the particles placed on the screen frame 7 to turn over, and the particles at the bottom layer are also blown by the blower 2, which accelerates the cooling speed of the particles and can also effectively cool the particles at the bottom layer.
[0035] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A high-pressure blower cooling device for amino molding compounds, comprising a cooling box (1) and a vibrating frame (5), characterized in that, A blower (2) is fixedly installed on the top of the cooling box (1). A guide tube (4) is installed on the blower (2). Two side passages (103) are opened on both sides of the cooling box (1). The vibration frame (5) is located inside the cooling box (1). The upper and lower ends of the vibration frame (5) are respectively slidably inserted into the limiting plate (6) and the screen frame (7). Two springs (8) are fixedly installed on all four sides of the vibration frame (5). The other end of the springs (8) is fixedly connected to the inner wall of the cooling box (1). Two extension plates (51) are set on both sides of the vibration frame (5). The extension plates (51) are movably located in the side passages (103). Springs (9) are fixedly installed on the top and bottom of the extension plates (51). The other ends of the two springs (9) are fixedly connected to the top and bottom surfaces of the side passages (103) respectively. A horizontal plate (52) is set on the bottom surface of the vibration frame (5). A vibration motor (10) is fixedly installed at the bottom of the horizontal plate (52).
2. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, The vibration frame (5) has a through groove 1 (55) and a through groove 2 (56) on one side. Both ends of the through groove 1 (55) have a slot 1 (551) and both ends of the through groove 2 (56) have a slot 2 (561).
3. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, The upper two sides of the inner wall of the vibration frame (5) are provided with a sliding groove (53), and the lower two sides of the inner wall of the vibration frame (5) are provided with two sliding grooves (54).
4. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, The limiting plate (6) is provided with a limiting net (61). The two ends of the limiting plate (6) are slidably inserted into the first groove (53). The two ends of one side of the limiting plate (6) are provided with a first card block (62). The first card block (62) is installed in the first slot (551) by screws.
5. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, Two inserts (72) are provided on both sides of the screen frame (7). The inserts (72) slide into the slide groove (54). Two locking blocks (71) are provided at both ends of one side of the screen frame (7). The locking blocks (71) are installed in the locking groove (561) by screws.
6. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, The bottom surface of the cooling box (1) has several ventilation slots (104). One end of the cooling box (1) has a strip slot one (101) and a strip slot two (102). The strip slot one (101) and the strip slot two (102) are respectively adapted to the through slot one (55) and the through slot two (56).
7. The high-pressure blower cooling device for amino molding compounds according to claim 1, characterized in that, The cooling box (1) is equipped with a discharge pipe (3) at one end, and the outlet end of the discharge pipe (3) is aligned with one end of the screen frame (7).
8. The high-pressure blower cooling device for amino molding compounds according to claim 4, characterized in that, The aperture of the sieve frame (7) and the aperture of the limiting mesh (61) are both smaller than the particle diameter.