Acrylic resin polymerization reaction equipment
By designing a dynamic reaction mechanism, the problems of inconvenient opening of the arc-shaped top cover and limited height adjustment of the stirring rod in existing equipment have been solved, enabling flexible adjustment of the stirring rod and improving reaction efficiency and resin product quality.
Patent Information
- Application Number
- CN202511163365.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-19
- Publication Date
- 2025-11-14
AI Technical Summary
The existing acrylic resin polymerization reactor has an inconvenient curved top cover, limited height adjustment of the stirring rod, and a single stirring mode, resulting in low reaction efficiency and poor resin product quality.
A dynamic reaction mechanism including an arc-shaped top cover, a fan-shaped plate, a rotating chassis, a plum blossom column, and a servo motor was designed. Through the flip-opening of the arc-shaped top cover, the rotation and lifting of the rotating chassis, the lifting of the plum blossom column, and the meshing transmission of gears, the height and position of the stirring rod can be flexibly adjusted to achieve intermittent stirring.
The improved ease of opening the curved top cover and the flexible adjustment of the height and position of the stirring rod enhance the stirring effect, thereby improving reaction efficiency and the quality of resin products.
Smart Images

Figure CN120939880A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of polymerization reaction technology, specifically to an acrylic resin polymerization reaction apparatus. Background Technology
[0002] Acrylic resin is a general term for polymers of acrylic acid, methacrylic acid and their derivatives. Acrylic resin coatings are thermoplastic or thermosetting resin coatings or acrylic radiation coatings made by copolymerizing (meth)acrylate and styrene with other acrylates. Common acrylic resin polymerization equipment is inconvenient to open with its curved top cover, and the height of the stirring rod needs to be adjusted while stirring. In addition, traditional equipment mostly uses constant speed stirring, which is not convenient for meeting the need for intermittent position adjustment stirring, thus reducing the reaction effect. To address this, we propose an acrylic resin polymerization equipment. Summary of the Invention
[0003] The purpose of this invention is to provide an acrylic resin polymerization reaction apparatus.
[0004] To achieve the above objectives, the present invention provides the following technical solution: an acrylic resin polymerization reaction device, comprising a reaction device body, the reaction device body including a reaction chamber and a dynamic reaction mechanism connected to the reaction chamber, the dynamic reaction mechanism including an arc-shaped top cover, a fan-shaped plate and a rotating chassis, the upper end of the reaction chamber being hinged to the lower end of the arc-shaped top cover, and the reaction chamber being connected to an operating column via a power mechanism, the outer wall of the operating column being connected to a half gear, the arc-shaped top cover having a trapezoidal groove, the side wall of the trapezoidal groove having a fan-shaped groove, the inner wall of the fan-shaped groove being slidably connected to the outer wall of the fan-shaped plate, the side wall of the trapezoidal groove being connected to a pull-button mechanism, and the upper end of the inner wall of the reaction chamber being connected to a support plate, the upper end of the support plate having a through hole, and the inner wall of the through hole contacting the outer wall of the rotating chassis, the operating column being disposed through the rotating chassis.
[0005] As a further embodiment of the present invention: the dynamic reaction mechanism further includes a plum blossom column, a reaction rod, an operating column, and a half gear. The lower end of the operating column is connected to the upper end of the plum blossom column. The rotating chassis is connected to the flower groove ring via a lower extension frame. The upper end of the flower groove ring is connected to the lower end of the force-bearing gear. The lower end of the rotating chassis is connected to the reaction rod via a universal joint. A gear connection mechanism is connected to the outer wall of the reaction rod. A stage transmission mechanism is connected to the half gear. A lifting mechanism is connected to the upper end of the support plate. A telescopic mechanism is connected to the lower end of the reaction rod. The lower end of the lower extension frame is connected to the mounting ring. The inner ring of the mounting ring is slidably connected to the outer ring of the flower groove ring. The flower groove ring and the plum blossom column cooperate with each other.
[0006] As a further aspect of the present invention: the gear connection mechanism includes an inclined gear, the upper end of the outer wall of the reaction rod is connected to the inner ring of the inclined gear, and the force-bearing gear meshes with the inclined gear.
[0007] As a further embodiment of the present invention: the power mechanism includes a stabilizing cylinder, a servo motor, a polygonal column, a fixing frame, and a fixing ring. The top of the arc-shaped cover is connected to the stabilizing cylinder. A stabilizing chamber is provided at the upper end of the stabilizing cylinder. The inner wall of the stabilizing chamber is connected to the outer wall of the servo motor. The output end of the servo motor is connected to the upper end of the polygonal column. A polygonal groove is provided at the upper end of the operating column, and the polygonal column extends into the polygonal groove.
[0008] As a further embodiment of the present invention: the upper end of the support plate is connected to the lower end of the fixing frame, the upper end of the fixing frame is connected to the outer wall of the fixing ring, and the inner ring of the fixing ring is rotatably connected to the outer wall of the operating column.
[0009] As a further aspect of the present invention: the stage transmission mechanism includes a transmission gear, a transmission rod, a lower gear, and the upper end of the hollow gear support plate is connected to the lower end of the transmission rod. The upper end of the outer wall of the transmission rod is connected to the inner ring of the transmission gear. The transmission gear meshes with the half gear. The lower end of the outer wall of the transmission rod is connected to the inner ring of the lower gear. The upper end of the rotating chassis is connected to the lower end of the hollow gear, and the hollow gear meshes with the lower gear.
[0010] As a further embodiment of the present invention: the lifting mechanism includes an air pump and a Z-shaped connecting frame, the upper end of the support plate is connected to the lower end of the air pump, the outer wall of the rotating chassis is provided with an annular groove, the upper end of the air pump is connected to the Z-shaped connecting frame, and the side of the Z-shaped connecting frame away from the air pump is slidably connected to the inner wall of the annular groove.
[0011] As a further aspect of the present invention: the telescopic mechanism includes a telescopic rod, an external rod, and a universal ball. The lower end of the reaction rod is provided with a telescopic hole, the inner wall of the telescopic hole is slidably connected to the outer wall of the telescopic rod, the lower end of the telescopic rod is rotatably connected to the upper end of the external rod, the lower end of the external rod is connected to the universal ball, and the bottom wall of the reaction chamber is provided with a universal connection groove, and the inner wall of the universal connection groove is slidably connected to the outer wall of the universal ball.
[0012] As a further aspect of the present invention: the pull-button mechanism includes an arc-shaped buckle block and an arc-shaped edge block, and the side of the trapezoidal groove away from the fan-shaped groove is connected to the arc-shaped buckle block. The upper end of the arc-shaped buckle block is provided with a groove, the side wall of the groove is slidably connected to the outer wall of the arc-shaped edge block, and the arc-shaped edge block is connected to the inner wall of the groove by a spring. The outer wall of the fan-shaped plate is provided with a buckle groove, and the buckle groove cooperates with the arc-shaped edge block.
[0013] Compared with the prior art, the beneficial effects of the present invention by adopting the above technical solution are as follows: 1. This invention uses an arc-shaped top cover to cover the reaction chamber, allowing the top cover to be flipped open, thus improving the ease of opening and closing. The rotating base can drive the reaction rod to rotate and rise. The plum blossom column can drive the flower groove ring and the lower extension frame to rise and fall, while also allowing the flower groove ring to rise and fall along the plum blossom column, thereby facilitating the adjustment of the height of the stirring rod and improving the stirring reaction effect. The lower extension frame can limit the position of the flower groove ring, improving the stability of the flower groove ring during use. The inclined gear can mesh with the force-bearing gear, transmitting the rotational power of the force-bearing gear to the reaction rod. The operating column and half gear can cause the rotating base to rotate intermittently, allowing the position of the stirring head to be adjusted intermittently during stirring, thereby improving the stirring effect. 2. This invention allows the polygonal column to be plugged into the operating column, thereby effectively driving the operating column to rotate while facilitating the replacement of the servo motor. The fixing frame and fixing ring can fix the height position of the operating column, making the operating column more stable during use. While using the same power to drive the reaction rod to rotate, the reaction rod can also rotate along the center of the rotating chassis, reducing the arrangement of the power mechanism, reducing manufacturing costs, and increasing the synchronization between the rotating chassis and the reaction rod. 3. The present invention can be connected to the rotating chassis via the Z-shaped connecting frame, so that the rotating chassis can still be raised and lowered under different conditions. The lifting hole of the frame can provide space for the raising and lowering of the Z-shaped connecting frame, avoiding the interference between the support plate and the Z-shaped connecting frame. The telescopic rod and telescopic hole can adjust the height position of the stirring head by telescopic movement, making the extension and retraction of the external rod smoother, and thus making the adjustment of the height of the stirring head smoother.
[0014] Other advantages, objectives and features of the invention will be set forth in part in the description which follows, and in part will be apparent to those skilled in the art from the following examination or study, or may be learned from the practice of the invention. Attached Figure Description
[0015] Figure 1 This is an overall three-dimensional schematic diagram of an embodiment of the present invention; Figure 2 This is a three-dimensional schematic diagram of the sector-shaped plate in an embodiment of the present invention; Figure 3 This is a three-dimensional schematic diagram of a polygonal prism in an embodiment of the present invention; Figure 4 This is a three-dimensional schematic diagram of a half-gear in an embodiment of the present invention; Figure 5 This is a three-dimensional schematic diagram of the lower extension frame in an embodiment of the present invention; Figure 6 This is a three-dimensional schematic diagram of the reaction rod in an embodiment of the present invention; Figure 7This is a three-dimensional schematic diagram of the reaction chamber in an embodiment of the present invention; Figure 8 This is a three-dimensional schematic diagram of the arc-shaped top cover in an embodiment of the present invention; Figure 9 This is a three-dimensional schematic diagram of the arc-shaped buckle block in an embodiment of the present invention; Figure 10 This is a three-dimensional schematic diagram of the stabilizing cylinder in an embodiment of the present invention.
[0016] In the diagram: 1. Main body of the reaction equipment; 11. Reaction chamber; 2. Dynamic reaction mechanism; 201. Arc-shaped top cover; 202. Fan-shaped groove; 203. Fan-shaped plate; 204. Rotating chassis; 205. Plum blossom column; 206. Lower extension frame; 207. Flower groove ring; 208. Reaction rod; 209. Inclined gear; 210. Operating column; 211. Half gear; 3. Power mechanism; 31. Stabilizing cylinder; 32. Servo motor; 33. Polygonal column; 34. Fixing frame; 35. Fixing ring; 4. Support plate; 5. Stage transmission mechanism; 51. Transmission gear; 52. Transmission rod; 53. Lower gear; 54. Hollow gear; 6. Lifting mechanism; 61. Air pump; 62. Z-shaped connecting frame; 63. Annular groove; 64. Frame lifting hole; 7. Telescopic mechanism; 71. Telescopic rod; 72. External rod; 73. Telescopic hole; 74. Universal ball; 75. Universal connecting groove; 8. Pull-button mechanism; 81. Arc-shaped buckle block; 82. Groove; 83. Arc edge block; 84. Buckle groove. Detailed Implementation
[0017] The specific embodiments of the present invention will be further described below with reference to the accompanying drawings. It should be noted that the description of these embodiments is for the purpose of helping to understand the present invention, but does not constitute a limitation of the present invention.
[0018] Furthermore, the technical features involved in the various embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other. Example 1
[0019] This invention provides an acrylic resin polymerization reaction device. During the acrylic resin polymerization reaction, the reaction device often needs to be frequently operated and precisely controlled. At this time, traditional reaction equipment suffers from problems such as inconvenient opening and closing of the top cover, limited adjustment of the height of the stirring rod, and single stirring mode, resulting in low reaction efficiency and even affecting the quality of the resin product. When developing new acrylic resin formulations in the laboratory, it is necessary to adjust the stirring speed and position in real time according to the reaction stage. Traditional constant speed stirring equipment is difficult to simulate complex reaction requirements, which may cause incomplete local reaction or overheating, resulting in a decrease in product purity. Therefore, in order to effectively solve the above problems, this application proposes an acrylic resin polymerization reaction apparatus, as shown in the attached drawings of the specification. Figure 1-10As shown, the reaction equipment includes a main body 1, which includes a reaction chamber 11 and a dynamic reaction mechanism 2 connected to the reaction chamber 11. The dynamic reaction mechanism 2 includes an arc-shaped top cover 201, a fan-shaped plate 203, and a rotating base 204. The upper end of the reaction chamber 11 is hinged to the lower end of the arc-shaped top cover 201, and the reaction chamber 11 is connected to the operating column 210 through a power mechanism 3. The outer wall of the operating column 210 is connected to a half gear 211. A trapezoidal groove is provided on the arc-shaped top cover 201, and a fan-shaped groove 202 is provided on the side wall of the trapezoidal groove. The inner wall of the fan-shaped groove 202 is slidably connected to the outer wall of the fan-shaped plate 203. A pull-button mechanism 8 is connected to the side wall of the trapezoidal groove, and a support plate 4 is connected to the upper end of the inner wall of the reaction chamber 11. A through hole is provided at the upper end of the support plate 4, and the inner wall of the through hole is in contact with the outer wall of the rotating base 204. The operating column 210 is set through the rotating base 204. The dynamic reaction mechanism 2 also includes a plum blossom column 205, a reaction rod 208, an operating column 210, and a half gear 211. The lower end of the operating column 210 is connected to the upper end of the plum blossom column 205. The rotating chassis 204 is connected to the flower groove ring 207 through the lower extension frame 206. The upper end of the flower groove ring 207 is connected to the lower end of the force-bearing gear. The lower end of the rotating chassis 204 is connected to the reaction rod 208 through a universal joint. A gear connection mechanism is connected to the outer wall of the reaction rod 208. A stage transmission mechanism 5 is connected to the half gear 211. A lifting mechanism 6 is connected to the upper end of the support plate 4. A telescopic mechanism 7 is connected to the lower end of the reaction rod 208. The lower end of the lower extension frame 206 is connected to the mounting ring. The inner ring of the mounting ring is slidably connected to the outer ring of the flower groove ring 207. The flower groove ring 207 and the plum blossom column 205 cooperate with each other. The universal mechanism is a double universal joint. At the same time, the upper end of the arc-shaped cover 201 is also connected to a fan-shaped fixed plate and a fan-shaped movable plate. The side end of the fan-shaped fixed plate is equipped with a magnet, while the side end of the fan-shaped movable plate is equipped with a patch. The fan-shaped fixed plate is fixed on the arc-shaped cover 201, and the fan-shaped movable plate can be installed and removed as needed. Specifically, the arc-shaped top cover 201 is used to cover the reaction chamber 11. The rear end of the arc-shaped top cover 201 is connected to the reaction chamber 11 via a hinge, allowing the arc-shaped top cover 201 to be flipped open. The trapezoidal slot allows the stabilizing cylinder 31 and the servo motor 32 to pass through, ensuring that the arc-shaped top cover 201 is not affected by the servo motor 32 when flipped open. The fan-shaped slot 202 is used to hide the fan-shaped plate 203, which seals the trapezoidal slot. The trapezoidal slot can also be used for material feeding. The rotating chassis 204 is used to drive the reaction rod 208 to rotate and move up and down. The plum blossom column 205 is used to drive the flower trough ring 207 and the lower extension frame 206 to rise and fall, and at the same time, it can also make the flower trough ring 207 rise and fall along the plum blossom column 205. The lower extension frame 206 is used to limit the position of the flower trough ring 207, so that when the lower extension frame 206 rises and falls, it will synchronously drive the flower trough ring 207 and the force-bearing gear to rise and fall. The reaction rod 208 is used to stir the material. The inclined gear 209 is used to mesh with the force-bearing gear and transmit the rotational power of the force-bearing gear to the reaction rod 208. The operating column 210 and the half gear 211 are used to cause the rotating chassis 204 to rotate intermittently. Example 2
[0020] The gear connection mechanism includes a helical gear 209, the upper end of the outer wall of the reaction rod 208 is connected to the inner ring of the helical gear 209, and the force-bearing gear meshes with the helical gear 209; The power mechanism 3 includes a stabilizing cylinder 31, a servo motor 32, a polygonal column 33, a fixing frame 34, and a fixing ring 35. The top of the arc-shaped cover 201 is connected to the stabilizing cylinder 31. A stabilizing chamber is provided at the upper end of the stabilizing cylinder 31. The inner wall of the stabilizing chamber is connected to the outer wall of the servo motor 32. The output end of the servo motor 32 is connected to the upper end of the polygonal column 33. A polygonal groove is provided at the upper end of the operating column 210, and the polygonal column 33 extends into the polygonal groove. The upper end of the support plate 4 is connected to the lower end of the fixing frame 34, the upper end of the fixing frame 34 is connected to the outer wall of the fixing ring 35, and the inner ring of the fixing ring 35 is rotatably connected to the outer wall of the operating column 210. The stage transmission mechanism 5 includes a transmission gear 51, a transmission rod 52, a lower gear 53, and a hollow gear 54. The upper end of the support plate 4 is connected to the lower end of the transmission rod 52. The upper end of the outer wall of the transmission rod 52 is connected to the inner ring of the transmission gear 51. The transmission gear 51 meshes with the half gear 211. The lower end of the outer wall of the transmission rod 52 is connected to the inner ring of the lower gear 53. The upper end of the rotating chassis 204 is connected to the lower end of the hollow gear 54, and the hollow gear 54 meshes with the lower gear 53. Specifically, the stabilizing cylinder 31 is used to support and mount the servo motor 32, which provides power for the rotation of the polygonal column 33 and the operating column 210. The polygonal column 33 is used to connect with the operating column 210, thereby effectively driving the operating column 210 to rotate. The fixing frame 34 and the fixing ring 35 are used to fix the height position of the operating column 210. The support plate 4 is used to support the transmission rod 52. The transmission gear 51 is used to receive the rotational power of the half gear 211. The transmission rod 52, the lower gear 53 and the hollow gear 54 are used to transmit the rotational power to the rotating chassis 204 at different speeds, so that the rotating chassis 204 rotates intermittently. Example 3
[0021] The lifting mechanism 6 includes an air pump 61 and a Z-shaped connecting frame 62. The upper end of the support plate 4 is connected to the lower end of the air pump 61. The outer wall of the rotating chassis 204 is provided with an annular groove 63. The upper end of the air pump 61 is connected to the Z-shaped connecting frame 62, and the side of the Z-shaped connecting frame 62 away from the air pump 61 is slidably connected to the inner wall of the annular groove 63. The telescopic mechanism 7 includes a telescopic rod 71, an external rod 72, and a universal ball 74. The lower end of the reaction rod 208 is provided with a telescopic hole 73. The inner wall of the telescopic hole 73 is slidably connected to the outer wall of the telescopic rod 71. The lower end of the telescopic rod 71 is rotatably connected to the upper end of the external rod 72. The lower end of the external rod 72 is connected to the universal ball 74. The bottom wall of the reaction box 11 is provided with a universal connection groove 75, and the inner wall of the universal connection groove 75 is slidably connected to the outer wall of the universal ball 74. The pull-button mechanism 8 includes an arc-shaped latching block 81 and an arc-shaped edge block 83. The trapezoidal groove 202 is connected to the arc-shaped latching block 81 on the side away from the fan-shaped groove. The upper end of the arc-shaped latching block 81 is provided with a groove 82. The side wall of the groove 82 is slidably connected to the outer wall of the arc-shaped edge block 83. The arc-shaped edge block 83 is connected to the inner wall of the groove 82 by a spring. The outer wall of the fan-shaped plate 203 is provided with a latching groove 84. The latching groove 84 and the arc-shaped edge block 83 cooperate with each other. A stirring rod is connected to the outer wall of the reaction rod 208, and a stirring head is connected to the side of the stirring rod away from the reaction rod 208; Specifically, the air pump 61 provides power for the lifting and lowering of the rotating chassis 204, the Z-shaped connecting frame 62 is connected to the rotating chassis 204, the annular groove 63 is connected to the limiting Z-shaped connecting frame 62 so that the rotating chassis 204 is still affected by the air pump 61 under different conditions, the frame lifting hole 64 provides space for the lifting and lowering of the Z-shaped connecting frame 62 to avoid the support plate 4 and the Z-shaped connecting frame 62 from affecting each other during lifting and lowering, the telescopic rod 71 and the telescopic hole 73 are used to adjust the height position of the stirring head by telescopic movement, the external rod 72 is connected to the universal ball 74, the universal ball 74 is used to adjust the angle of the telescopic rod 71 and the reaction rod 208 during telescopic movement, the universal connecting groove 75 is used to limit the position of the universal ball 74, and the arc edge block 83 is used to cooperate with the snap-fit groove 84 to limit the position of the sector plate 203.
[0022] Working principle: First, the material is placed inside the reaction chamber 11. Then, the sector plate 203 is pulled to cover the trapezoidal groove. At this time, the servo motor 32 on the stabilizing cylinder 31 is started. The servo motor 32 drives the polygonal column 33, the operating column 210, and the plum blossom column 205 to rotate, and drives the half gear 211 to rotate. Then, the transmission gear 51 and the transmission rod 52 drive the lower gear 53 to rotate. The rotation of the lower gear 53 will drive the hollow gear 54 to rotate due to meshing. The rotation of the hollow gear 54 synchronously drives the rotating chassis 204 to rotate. The rotation of the rotating chassis 204 drives the reaction rod 208 to rotate along the center of the rotating chassis 204, and causes the external rod 72 and the universal ball 74 to move along the universal connection groove 75. At the same time, the flower groove ring 207, the force-bearing gear, and the tilting gear 209 are used to control the rotation of the plum blossom column 205. The rotational force is transmitted to the reaction rod 208, causing it to rotate and thus stirring the material in the reaction chamber 11. When the height of the stirring head needs to be adjusted, the air pump 61 is started, which drives the Z-shaped connecting frame 62 and the rotating chassis 204 to rise and fall. The rising and falling of the rotating chassis 204 pulls the hollow gear 54, the flower groove ring 207, the lower extension frame 206, and the reaction rod 208 to rise and fall. When the reaction rod 208 rises and falls, the telescopic rod 71 extends and retracts. At the same time, the arc-shaped top cover 201 can be flipped on the reaction chamber 11 using a hinge. The trapezoidal slot on the reaction chamber 11 can pass through the stabilizing cylinder 31 and the servo motor 32. When the trapezoidal slot is closed using the arc-shaped top cover 201, the arc edge block 83 will be inserted into the snap-fit slot 84, thereby fixing the position of the fan-shaped plate 203. At this point, the entire process is completed.
[0023] The terms "front," "back," "left," "right," "top," and "bottom" all refer to the figures in the accompanying drawings. Figure 1 Based on.
[0024] In the description of this invention, it should be understood that the terms "center", "longitudinal", "lateral", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the scope of protection of this invention.
[0025] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings, but the present invention is not limited to the described embodiments.
[0026] For those skilled in the art, various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and these variations still fall within the protection scope of the present invention.
Claims
1. An acrylic resin polymerization reaction apparatus, comprising a reaction apparatus body (1), wherein the reaction apparatus body (1) includes a reaction chamber (11) and a dynamic reaction mechanism (2) connected to the reaction chamber (11), characterized in that: The dynamic reaction mechanism (2) includes an arc-shaped top cover (201), a sector plate (203), and a rotating base (204). The upper end of the reaction chamber (11) is hinged to the lower end of the arc-shaped top cover (201), and the reaction chamber (11) is connected to the operating column (210) through a power mechanism (3). The outer wall of the operating column (210) is connected to a half gear (211). A trapezoidal groove is provided on the arc-shaped top cover (201). The side wall of the trapezoidal groove is provided with a fan-shaped groove (202), and the inner wall of the fan-shaped groove (202) is slidably connected to the outer wall of the fan-shaped plate (203). The side wall of the trapezoidal groove is connected with a pull-button mechanism (8), and the upper end of the inner wall of the reaction box (11) is connected with a support plate (4). The upper end of the support plate (4) is provided with a through hole, and the inner wall of the through hole is in contact with the outer wall of the rotating chassis (204). The operating column (210) is set through the rotating chassis (204).
2. The acrylic resin polymerization reaction equipment according to claim 1, characterized in that: The dynamic reaction mechanism (2) also includes a plum blossom column (205), a reaction rod (208), an operating column (210), and a half gear (211). The lower end of the operating column (210) is connected to the upper end of the plum blossom column (205). The rotating chassis (204) is connected to the flower groove ring (207) through the lower extension frame (206). The upper end of the flower groove ring (207) is connected to the lower end of the force-bearing gear. The lower end of the rotating chassis (204) is connected to the reaction rod (208) through a universal joint. 8) The outer wall of the reaction rod (208) is connected to a gear connection mechanism, the half gear (211) is connected to a stage transmission mechanism (5), the upper end of the support plate (4) is connected to a lifting mechanism (6), the lower end of the reaction rod (208) is connected to a telescopic mechanism (7), the lower end of the lower extension frame (206) is connected to the mounting ring, and the inner ring of the mounting ring is slidably connected to the outer ring of the flower groove ring (207), and the flower groove ring (207) and the plum blossom column (205) cooperate with each other.
3. The acrylic resin polymerization reaction equipment according to claim 2, characterized in that: The gear connection mechanism includes an inclined gear (209), the upper end of the outer wall of the reaction rod (208) is connected to the inner ring of the inclined gear (209), and the force-bearing gear meshes with the inclined gear (209).
4. The acrylic resin polymerization reaction equipment according to claim 1, characterized in that: The power mechanism (3) includes a stabilizing cylinder (31), a servo motor (32), a polygonal column (33), a fixing frame (34), and a fixing ring (35). The top of the arc-shaped cover (201) is connected to the stabilizing cylinder (31). A stabilizing chamber is provided at the upper end of the stabilizing cylinder (31). The inner wall of the stabilizing chamber is connected to the outer wall of the servo motor (32). The output end of the servo motor (32) is connected to the upper end of the polygonal column (33). A polygonal groove is provided at the upper end of the operating column (210), and the polygonal column (33) extends into the polygonal groove.
5. The acrylic resin polymerization reaction equipment according to claim 4, characterized in that: The upper end of the support plate (4) is connected to the lower end of the fixing frame (34), the upper end of the fixing frame (34) is connected to the outer wall of the fixing ring (35), and the inner ring of the fixing ring (35) is rotatably connected to the outer wall of the operating column (210).
6. The acrylic resin polymerization reaction equipment according to claim 2, characterized in that: The stage transmission mechanism (5) includes a transmission gear (51), a transmission rod (52), a lower gear (53), and a hollow gear (54). The upper end of the support plate (4) is connected to the lower end of the transmission rod (52). The upper end of the outer wall of the transmission rod (52) is connected to the inner ring of the transmission gear (51). The transmission gear (51) meshes with the half gear (211). The lower end of the outer wall of the transmission rod (52) is connected to the inner ring of the lower gear (53). The upper end of the rotating chassis (204) is connected to the lower end of the hollow gear (54), and the hollow gear (54) meshes with the lower gear (53).
7. The acrylic resin polymerization reaction equipment according to claim 2, characterized in that: The lifting mechanism (6) includes an air pump (61) and a Z-shaped connecting frame (62). The upper end of the support plate (4) is connected to the lower end of the air pump (61). The outer wall of the rotating chassis (204) is provided with an annular groove (63). The upper end of the air pump (61) is connected to the Z-shaped connecting frame (62), and the side of the Z-shaped connecting frame (62) away from the air pump (61) is slidably connected to the inner wall of the annular groove (63).
8. The acrylic resin polymerization reaction equipment according to claim 2, characterized in that: The telescopic mechanism (7) includes a telescopic rod (71), an external rod (72), and a universal ball (74). The lower end of the reaction rod (208) is provided with a telescopic hole (73). The inner wall of the telescopic hole (73) is slidably connected to the outer wall of the telescopic rod (71). The lower end of the telescopic rod (71) is rotatably connected to the upper end of the external rod (72). The lower end of the external rod (72) is connected to the universal ball (74). The bottom wall of the reaction box (11) is provided with a universal connection groove (75), and the inner wall of the universal connection groove (75) is slidably connected to the outer wall of the universal ball (74).
9. An acrylic resin polymerization reaction apparatus according to claim 2, characterized in that: The buckle mechanism (8) includes an arc-shaped buckle block (81) and an arc-shaped edge block (83). The side of the trapezoidal groove away from the fan-shaped groove (202) is connected to the arc-shaped buckle block (81). The upper end of the arc-shaped buckle block (81) is provided with a groove (82). The side wall of the groove (82) is slidably connected to the outer wall of the arc-shaped edge block (83). The arc-shaped edge block (83) is connected to the inner wall of the groove (82) by a spring. The outer wall of the fan-shaped plate (203) is provided with a buckle groove (84). The buckle groove (84) and the arc-shaped edge block (83) cooperate with each other.