A reactor for the melt filtration of hydrogenated rosin
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGXI DINGHONG RESIN CO LTD
- Filing Date
- 2025-09-16
- Publication Date
- 2026-08-07
AI Technical Summary
[0006]针对现有技术的不足,本实用新型提供一种熔融过滤的氢化松香反应釜,解决了上述装置在实际使用中,氢化松香反应釜缺少对应的过滤杂质,不能有效在内部就进行过滤,需要外部排出进行过滤,外部排出过滤时容易因外部寒冷温度而凝固,这样在处理时不是很高效的问题
[0022] Compared with the prior art, this utility model provides a melt-filtering hydrogenated rosin reactor, which has the following beneficial effects:
Smart Images

Figure CN224599319U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of hydrogenated rosin production equipment, specifically a melt-filtering hydrogenated rosin reaction vessel. Background Technology
[0002] Hydrogenated rosin is a modified product of rosin, produced by saturating the conjugated double bonds in rosin with hydrogen under high temperature and pressure (Pd / C as a catalyst). After its chemical structure is changed, its antioxidant properties and thermal stability are enhanced, its color becomes lighter, and its brittleness is reduced. It is widely used in adhesives, coatings, inks, food and other fields. When rosin is melted, a hydrogenated rosin reactor is required to melt it by controlling the temperature of the hydrogenated rosin reactor.
[0003] However, in actual use, the hydrogenated rosin reactor lacks the corresponding filter for impurities and cannot effectively filter them internally. It requires external discharge for filtration, which is prone to solidification due to cold external temperatures, making the process inefficient.
[0004] Therefore, we propose a novel melt-filtered hydrogenated rosin reactor to solve the above-mentioned technical problems. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this invention provides a melt-filtration hydrogenated rosin reactor, which solves the problem that in practical use, the hydrogenated rosin reactor lacks corresponding filter impurities, cannot effectively filter internally, and requires external discharge for filtration. However, external discharge filtration is prone to solidification due to cold external temperatures, making the process inefficient.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model provides the following technical solution: a melt-filtration hydrogenated rosin reactor, comprising:
[0009] A hydrogenated rosin melting reactor, wherein the hydrogenated rosin melting reactor is electrically connected to a control box;
[0010] A support mounting plate is provided, which is fixed to the upper outer wall of the hydrogenated rosin melting reactor.
[0011] A pneumatic sealing mechanism is installed at the upper end of the hydrogenated rosin melting reactor by screws;
[0012] A shaking filter mechanism is installed on the lower end of a pneumatic sealing mechanism and is located inside a hydrogenated rosin melting reactor.
[0013] A vibrating feeding mechanism is fixedly connected to the upper middle of the shaking filter mechanism.
[0014] Preferably, the hydrogenated rosin melting reactor includes a lower reactor body and an upper reactor body. The upper reactor body is fixedly connected to the upper end of the lower reactor body. A shaking filter mechanism is installed inside the upper reactor body. Support mounting ears are installed on the outer wall of the upper reactor body. A pneumatic sealing mechanism is installed at the upper end of the upper reactor body.
[0015] Preferably, the lower body of the reactor includes a lower vessel body, a heating element is installed inside the lower vessel body, the heating element is electrically connected to a power supply line on the outer wall of the lower vessel body, the power supply line is electrically connected to a temperature controller inside the control box, an electromagnetic valve pipe is fixedly connected through the lower end of the lower vessel body, and an upper body of the reactor is fixedly connected through the upper end of the lower vessel body.
[0016] Preferably, the upper body of the reactor includes an upper vessel body, with six inner wall lugs fixedly connected to the inner wall of the upper vessel body. A metal spring is fixedly connected to the upper end of each inner wall lug, and a shaking filter mechanism located inside the upper vessel body is fixedly connected to the upper end of each metal spring. A support mounting lug is fixedly connected to the outer wall of the upper vessel body, and a pneumatic sealing mechanism is installed at the upper end of the upper vessel body by screws.
[0017] Preferably, the supporting mounting ear plate includes an outer ear plate, and two supporting end posts are symmetrically fixed to the lower end of the outer ear plate. The outer ear plate is fixed to the outer wall of the upper vessel.
[0018] Preferably, the pneumatic sealing mechanism includes a sealing cover plate, with a feed pipe fixedly connected through the center of the sealing cover plate. An exhaust metal pipe is fixedly connected through the right side of the feed pipe on the sealing cover plate, and an exhaust bellows pipe is fixedly connected through the lower end of the exhaust metal pipe. An air inlet metal pipe is fixedly connected through the left side of the feed pipe on the sealing cover plate, and an air inlet bellows pipe is fixedly connected through the lower end of the air inlet bellows and the exhaust bellows. A vibration filter mechanism is installed at the lower ends of the air inlet bellows and the exhaust bellows by screws.
[0019] Preferably, the vibrating filter mechanism includes a hollow filter disc, a vibrating material feeding mechanism is fixedly connected to the middle of the upper end of the hollow filter disc, and uniformly distributed filter mesh holes are opened through the periphery of the vibrating material feeding mechanism on the hollow filter disc. An exhaust pipe is fixedly connected through the upper right end of the hollow filter disc, and an air inlet pipe is fixedly connected through the upper left end of the hollow filter disc. The air inlet pipe is connected to the air inlet bellows by screws, and the exhaust pipe is connected to the exhaust bellows by screws.
[0020] Preferably, the vibratory feeding mechanism includes a conical shell, an inner cavity is provided inside the conical shell, and an electromagnetic vibrator is fixedly connected to the inner side of the inner cavity on the conical shell. The electromagnetic vibrator is electrically connected to the control box through a connecting line.
[0021] (III) Beneficial Effects
[0022] Compared with the prior art, this utility model provides a melt-filtering hydrogenated rosin reactor, which has the following beneficial effects:
[0023] 1. The pneumatic sealing mechanism of this utility model facilitates the addition of hydrogenated rosin raw materials to the hydrogenated rosin melting reactor, and can receive circulating hot gas for melting. The shaking filter mechanism can effectively receive the hot gas delivered by the pneumatic sealing mechanism, and then effectively melt the rosin material carried above. The molten rosin material can be effectively permeated and filtered through the shaking filter mechanism.
[0024] 2. When the vibrating feeding mechanism of this utility model vibrates, it can drive the vibrating filtering mechanism to vibrate, which can accelerate the filtering efficiency of the vibrating filtering mechanism and avoid the residue of the fed material. Attached Figure Description
[0025] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0026] Figure 2 This is a three-dimensional structural diagram of the upper part of this utility model;
[0027] Figure 3 This is a schematic diagram of the combined structure of the shaking filter mechanism and the vibrating material feeding mechanism of this utility model.
[0028] Figure 4 This is a schematic diagram of the lower body structure of the reactor of this utility model;
[0029] Figure 5 This is a schematic cross-sectional view of the upper body of the reaction vessel of this utility model.
[0030] In the picture:
[0031] 1. Feeding pipe; 2. Exhaust metal pipe; 21. Exhaust corrugated pipe; 22. Inlet metal pipe; 23. Inlet corrugated pipe; 24. Sealing cover plate; 3. Outer ear plate; 31. Support end column; 4. Upper vessel body; 41. Lower vessel body; 42. Power connection cable; 43. Heating element; 44. Inner wall ear plate; 45. Metal spring; 5. Solenoid valve pipe; 6. Hollow filter plate; 61. Inlet pipe; 62. Filter mesh; 63. Exhaust pipe; 7. Conical shell; 71. Electromagnetic vibrator; 72. Internal cavity. Detailed Implementation
[0032] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.
[0033] Example 1
[0034] This embodiment provides a technical solution: a melt-filtered hydrogenated rosin reactor, such as... Figures 1-5 As shown, it includes a hydrogenated rosin melting reactor, a support mounting plate, a pneumatic sealing mechanism, a shaking filtration mechanism, and a vibrating material feeding mechanism.
[0035] The hydrogenated rosin melting reactor is electrically connected to the control box for easy operation and temperature control during the melting of hydrogenated rosin raw materials. Support mounting plates are fixed to the upper outer wall of the reactor. The reactor is easily installed using screws and brackets via these mounting plates. A pneumatic sealing mechanism is screwed to the upper end of the reactor for easy installation. This mechanism facilitates the receipt of hydrogenated rosin raw materials added to the reactor and can also receive circulating hot air for melting. A vibrating filter mechanism is installed... At the lower end of the pneumatic sealing mechanism, the shaking filter mechanism can effectively receive the hot air conveyed by the pneumatic sealing mechanism, and then effectively melt the rosin material carried above. The molten rosin material can be effectively filtered through the shaking filter mechanism. The shaking filter mechanism is located inside the hydrogenated rosin melting reactor and can be installed accordingly. The vibrating feeding mechanism is fixed to the middle of the upper end of the shaking filter mechanism. When the vibrating feeding mechanism shakes, it can drive the shaking filter mechanism to shake, which can accelerate the filtration efficiency of the shaking filter mechanism and avoid the residue of the fed material.
[0036] like Figure 1 , Figure 4 and Figure 5 As shown, the hydrogenated rosin melting reactor includes a lower reactor body and an upper reactor body. The upper reactor body is fixedly connected to the upper end of the lower reactor body. Molten rosin falling from the upper reactor body can be effectively collected in the lower reactor body. The upper reactor body is equipped with a shaking filter mechanism for effective shaking and filtering. The outer wall of the upper reactor body is equipped with support mounting ears for easy installation. The upper end of the upper reactor body is equipped with a pneumatic sealing mechanism to effectively seal and receive rosin raw materials and gases.
[0037] The lower body of the reactor includes a lower vessel body 41. A heating element 43 is installed inside the lower vessel body 41. When the heating element 43 is energized, it can generate heat, thereby heating the interior of the lower vessel body 41. The heating element 43 is electrically connected to the power connection line 42 on the outer wall of the lower vessel body 41 for easy external electrical connection. The power connection line 42 is electrically connected to the temperature controller inside the control box for effective electrical control. The temperature controller can effectively control the temperature and provide protection. The temperature controller is a well-known component and will not be described in detail. An electromagnetic valve pipe 5 is fixedly connected to the lower end of the lower vessel body 41. Molten rosin inside the lower vessel body 41 can be discharged through the electromagnetic valve pipe 5. The upper body of the reactor is fixedly connected to the upper end of the lower vessel body 41, which can receive and melt the filtered rosin.
[0038] The upper body of the reactor includes an upper vessel body 4. Six inner wall lugs 44 are fixedly connected to the inner wall of the upper vessel body 4 for effective support. Metal springs 45 are fixedly connected to the upper ends of the inner wall lugs 44 for effective elastic support. A shaking filter mechanism is movably connected inside the upper vessel body 4 and fixedly connected to the upper ends of the metal springs 45. The shaking filter mechanism can effectively shake elastically through the metal springs 45. Support mounting lugs are fixedly connected to the outer wall of the upper vessel body 4 for corresponding installation and connection. A pneumatic sealing mechanism is installed at the upper end of the upper vessel body 4 by screws. The upper vessel body 4 can easily receive the rosin raw material added by the pneumatic sealing mechanism, so that the rosin raw material can fall onto the shaking filter mechanism.
[0039] The supporting mounting lugs include outer lugs 3, which are fixed to the outer wall of the upper vessel body 4 and can be installed and connected accordingly. Two supporting end posts 31 are symmetrically fixed to the lower end of the outer lugs 3, which facilitates the installation and connection of the bracket by screws.
[0040] In use, the hydrogenated rosin melting reactor is easily installed using screws and brackets via supporting mounting ears. The pneumatic sealing mechanism facilitates the receipt of hydrogenated rosin raw materials added to the reactor and can receive circulating hot gas for melting. The vibrating filter mechanism effectively receives the hot gas delivered by the pneumatic sealing mechanism and then effectively melts the rosin material carried above. The molten rosin material is effectively filtered through the vibrating filter mechanism. When the vibrating feeding mechanism vibrates, it drives the vibrating filter mechanism to vibrate, which accelerates the filtration efficiency of the vibrating filter mechanism and avoids the residue of the fed material.
[0041] Example 2
[0042] This embodiment is a further optimization based on Embodiment 1. The parts that are the same as those described above will not be repeated here. Figure 1 , Figure 2 , Figure 3 and Figure 5As shown, to further better realize this utility model, the following configuration is specifically adopted: the pneumatic sealing mechanism includes a sealing cover plate 24, which can be installed on the upper vessel body 4 with screws for effective sealing. A feed inlet pipe 1 is fixedly connected through the center of the sealing cover plate 24 to receive and add rosin material. An exhaust metal pipe 2 is fixedly connected through the right side of the feed inlet pipe 1 on the sealing cover plate 24 for easy gas discharge. An exhaust corrugated pipe 21 is fixedly connected through the lower end of the exhaust metal pipe 2, allowing gas to pass through the exhaust corrugated pipe 21. The gas is discharged into the exhaust metal pipe 2 and can then be circulated out. The left side of the feed pipe 1 is connected to the sealing cover plate 24 through the air inlet metal pipe 22. The air inlet metal pipe 22 is convenient to receive external circulating hot gas for transportation. The lower end of the air inlet metal pipe 22 is connected to the air inlet bellows 23, which can circulate hot gas for melting. The lower ends of the air inlet bellows 23 and the exhaust bellows 21 are equipped with a shaking filter mechanism by screws. The air inlet bellows 23 and the exhaust bellows 21 are retractable, so that the shaking filter mechanism will not be obstructed when shaking.
[0043] The intake metal pipe 22 and the exhaust metal pipe 2 can be connected to a hot gas circulation device, so that hot gas can be circulated in for melting.
[0044] The vibrating filter mechanism includes a hollow filter disc 6. A vibrating feeding mechanism is fixedly connected to the middle of the upper end of the hollow filter disc 6. When the vibrating feeding mechanism vibrates, it can drive the hollow filter disc 6 to vibrate. The periphery of the vibrating feeding mechanism is provided with uniformly distributed filter mesh holes 62 that can effectively filter impurities in the molten rosin and facilitate the molten rosin to penetrate and fall. An exhaust pipe 63 is fixedly connected to the upper right side of the hollow filter disc 6. The hot air inside the hollow filter disc 6 can be easily discharged through the exhaust pipe 63. An air inlet pipe 61 is fixedly connected to the upper left side of the hollow filter disc 6. The air inlet pipe 61 can receive hot air and transport it to the hollow filter disc 6. The air inlet pipe 61 is connected to the air inlet bellows 23 through screws to receive hot air. The exhaust pipe 63 is connected to the exhaust bellows 21 through screws to discharge hot air.
[0045] The vibrating feeding mechanism includes a conical shell 7, with an internal cavity 72 inside the conical shell 7 for effective encapsulation and storage. An electromagnetic vibrator 71 is fixedly connected to the inner side of the internal cavity 72 on the conical shell 7. When the electromagnetic vibrator 71 is energized, it can drive the conical shell 7 to vibrate, which in turn drives the hollow filter disc 6 to vibrate. The electromagnetic vibrator 71 is electrically connected to the control box via a connecting wire for easy operation and control.
[0046] The above are merely specific embodiments of this utility model, but the technical features of this utility model are not limited thereto. Any simple changes, equivalent substitutions, or modifications made based on this utility model to solve essentially the same technical problems and achieve essentially the same technical effects are all covered within the protection scope of this utility model.
Claims
1. A melt-filtering hydrogenated rosin reactor, characterized in that, include: A hydrogenated rosin melting reactor, wherein the hydrogenated rosin melting reactor is electrically connected to a control box; A support mounting plate is provided, which is fixed to the upper outer wall of the hydrogenated rosin melting reactor. A pneumatic sealing mechanism is installed at the upper end of the hydrogenated rosin melting reactor by screws; A shaking filter mechanism is installed on the lower end of a pneumatic sealing mechanism and is located inside a hydrogenated rosin melting reactor. A vibrating feeding mechanism is fixedly connected to the upper middle of the shaking filter mechanism.
2. The hydrogenated rosin reactor for melt filtration according to claim 1, characterized in that: The hydrogenated rosin melting reactor includes a lower reactor body and an upper reactor body. The upper reactor body is fixedly connected to the upper end of the lower reactor body. A shaking filter mechanism is installed inside the upper reactor body. Support mounting ears are installed on the outer wall of the upper reactor body. A pneumatic sealing mechanism is installed at the upper end of the upper reactor body.
3. The hydrogenated rosin reactor for melt filtration according to claim 2, characterized in that: The lower body of the reactor includes a lower vessel body (41), and a heating element (43) is installed inside the lower vessel body (41). The heating element (43) is electrically connected to a power connection line (42) on the outer wall of the lower vessel body (41). The power connection line (42) is electrically connected to a temperature controller inside the control box. An electromagnetic valve pipe (5) is fixedly connected through the lower end of the lower vessel body (41), and an upper body of the reactor is fixedly connected through the upper end of the lower vessel body (41).
4. The melt-filtering hydrogenated rosin reactor according to claim 2, characterized in that: The upper body of the reactor includes an upper vessel body (4). Six inner wall lugs (44) are fixed around the inner wall of the upper vessel body (4). A metal spring (45) is fixed at the upper end of the inner wall lugs (44). A shaking filter mechanism located inside the upper vessel body (4) is fixed at the upper end of the metal spring (45). A support mounting lug is fixed on the outer wall of the upper vessel body (4). A pneumatic sealing mechanism is installed at the upper end of the upper vessel body (4) by screws.
5. A melt-filtering hydrogenated rosin reactor according to claim 1 or 4, characterized in that: The supporting mounting ear plate includes an outer ear plate (3), and two supporting end columns (31) are symmetrically fixed to the lower end of the outer ear plate (3). The outer ear plate (3) is fixed to the outer wall of the upper vessel body (4).
6. The hydrogenated rosin reactor for melt filtration according to claim 4, characterized in that: The pneumatic sealing mechanism includes a sealing cover plate (24), with a feed pipe (1) fixedly connected through the middle of the sealing cover plate (24). An exhaust metal pipe (2) is fixedly connected through the right side of the feed pipe (1) on the sealing cover plate (24). An exhaust corrugated pipe (21) is fixedly connected through the lower end of the exhaust metal pipe (2). An air inlet metal pipe (22) is fixedly connected through the left side of the feed pipe (1) on the sealing cover plate (24). An air inlet corrugated pipe (23) is fixedly connected through the lower end of the air inlet corrugated pipe (23) and the lower ends of the air inlet corrugated pipe (23) and the exhaust corrugated pipe (21) are fitted with a shaking filter mechanism by screws.
7. The hydrogenated rosin reactor for melt filtration according to claim 6, characterized in that: The vibrating filter mechanism includes a hollow filter disc (6), a vibrating material feeding mechanism is fixedly connected to the middle of the upper end of the hollow filter disc (6), and uniformly distributed filter mesh holes (62) are opened through the periphery of the vibrating material feeding mechanism on the hollow filter disc (6). An exhaust pipe (63) is fixedly connected through the upper right side of the hollow filter disc (6), and an air inlet pipe (61) is fixedly connected through the upper left side of the hollow filter disc (6). The air inlet pipe (61) is connected through the air inlet bellows (23) by screws, and the exhaust pipe (63) is connected through the exhaust bellows (21) by screws.
8. A melt-filtering hydrogenated rosin reactor according to claim 1 or 7, characterized in that: The vibrating material feeding mechanism includes a conical shell (7), and an inner cavity (72) is provided inside the conical shell (7). An electromagnetic vibrator (71) is fixedly connected to the inner side of the inner cavity (72) on the conical shell (7). The electromagnetic vibrator (71) is electrically connected to the control box through a connecting line.