Stirring, proportioning and cooling integrated equipment

By introducing a hammer head and a water pump cooling system into the cold-mixed colloid mixing equipment, the problem of outlet blockage was solved, and efficient discharge and processing of cold-mixed colloids were achieved.

CN224156815UActive Publication Date: 2026-04-24ZHANGJIAGANG JINFAN ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHANGJIAGANG JINFAN ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2025-05-23
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing cold-mixed colloid mixing equipment is prone to clogging at the discharge port during the cold-mixed colloid discharge process due to high viscosity, the presence of solid particles or heat-sensitive components, which affects processing efficiency and is difficult to clear.

Method used

An integrated mixing, proportioning, and cooling device was designed. The device uses a motor to drive a sector gear, which in turn drives a rack and a movable rod. A striking head strikes the discharge port. Combined with a water pump cooling system and a mixing device, the device achieves unblocking and cooling of the discharge port.

Benefits of technology

It effectively breaks down electrostatic adsorption and local agglomeration between colloidal particles, restores fluidity, avoids outlet blockage, and improves the processing efficiency of cold-mixed colloids.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses stirring, proportioning and cooling integrated equipment, and particularly relates to the technical field of cold preparation colloid production equipment, the stirring, proportioning and cooling integrated equipment comprises a tank body and a water tank, the outer bottom surface of the tank body is fixedly provided with a discharge port, and one side of the outer bottom surface of the tank body is fixedly provided with a fixed plate; a movable rod penetrating through the fixed plate is slidably connected to the side, close to the discharging opening, of the fixed plate. According to the stirring, proportioning and cooling integrated equipment disclosed by the utility model, in actual work, a first motor drives a sector gear to rotate, so that a rack and a movable rod are driven to move, a knocking head extrudes a spring, and along with continuous rotation of the sector gear, the extruded spring pushes the knocking head to reset; according to the device, the discharging port is beaten, vibration generated during beating can destroy electrostatic adsorption or local caking among colloid particles and recover fluidity, and therefore the blocked discharging port can be dredged conveniently, and the situation that the processing efficiency of the cold-prepared colloid is affected due to the fact that the discharging port is blocked is avoided.
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Description

Technical Field

[0001] This utility model relates to the technical field of cold-mixed colloid production equipment, and in particular to an integrated mixing, proportioning and cooling equipment. Background Technology

[0002] Cold-mixed colloids are colloidal systems prepared at room temperature or low temperature without heating. They have a wide range of applications, typically in the food, pharmaceutical, and cosmetic industries, and are particularly suitable for scenarios where it is necessary to retain active ingredients.

[0003] In the process of discharging cold-mixed colloids, existing cold-mixed colloid mixing equipment is prone to blockage of the discharge port due to the high viscosity of the colloid, the presence of solid particles or heat-sensitive components, and material settling, adhesion or low-temperature curing. This can easily affect the processing efficiency of cold-mixed colloids. Furthermore, existing cold-mixed colloid mixing equipment is not convenient for clearing the blocked discharge port. Therefore, in order to solve the above defects, the inventors propose an integrated mixing, proportioning and cooling equipment. Utility Model Content

[0004] The main purpose of this invention is to provide an integrated mixing, proportioning and cooling device, which can effectively solve the problem that existing cold-mixing colloid mixing devices are not convenient for clearing blocked discharge ports.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] An integrated mixing, proportioning, and cooling device includes a tank and a water tank. A discharge port is fixedly installed on the outer bottom surface of the tank. A fixing plate is fixedly installed on one side of the outer bottom surface of the tank. A movable rod that passes through the fixing plate is slidably connected to the side of the fixing plate near the discharge port. A rack is slidably connected to the other side of the fixing plate. A striking head is fixedly installed at one end of the movable rod near the discharge port. The other end of the movable rod is fixedly connected to the rack.

[0007] The first motor is fixedly installed on one side of the rack, and a sector gear is fixedly installed on the output shaft of the first motor. The sector gear meshes with the rack. A spring is fixedly installed on one side of the striking head, and the spring is sleeved on the outer end of the movable rod. The spring is fixedly connected to the striking head.

[0008] Preferably, a water pump is fixedly installed on the top of the outer surface of the tank, and the outlet of the water pump is fixedly connected to the tank via a pipe. A transmission pipe is fixedly installed at the inlet of the water pump. A finned radiator is fixedly installed on the top surface of the water tank, and the transmission pipe is fixedly connected to one end of the pipe of the finned radiator. A connecting pipe is fixedly installed on the top surface of the water tank and fixedly connected to the other end of the pipe of the finned radiator. An outlet pipe is fixedly connected between the tank and the water tank.

[0009] Preferably, the tank body has an internal stirring chamber, the inner top surface of the stirring chamber is rotatably connected to a stirring rod, the outer top surface of the tank body is fixedly installed with a gear reducer, and the output shaft of the gear reducer is fixedly connected to the stirring rod. The outer top surface of the tank body is provided with a second motor, and the output shaft of the second motor is fixedly connected to the input shaft of the gear reducer.

[0010] Preferably, the inner wall of the tank is provided with a cooling chamber, a spiral guide plate is fixedly installed inside the cooling chamber, and the water outlet pipe extends into the interior of the cooling chamber.

[0011] Preferably, a feed pipe is fixedly installed on one side of the outer top surface of the tank, a feeding cylinder is fixedly installed on the outer top surface of the tank and is fixedly connected to the feed pipe, a spiral conveying rod is rotatably connected inside the feeding cylinder, a third motor is fixedly installed on one side of the outer surface of the feeding cylinder and the output end of the third motor is fixedly connected to the spiral conveying rod.

[0012] Preferably, a feeding hopper is fixedly installed on one side of the outer surface of the feeding cylinder, and a dynamic weighing sensor is fixedly installed on the outer surface of the connection between the feeding hopper and the feeding cylinder.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] This utility model discloses an integrated mixing, proportioning, and cooling device. By setting a striking head, in actual operation, the first motor drives the sector gear to rotate, which in turn drives the rack and movable rod to move. When the movable rod moves towards the spring, the striking head will squeeze the spring. As the sector gear continues to rotate, the squeezed spring will push the striking head to reset, causing it to strike the discharge port. The vibration generated during the striking can break the electrostatic adsorption or local agglomeration between colloidal particles, restore fluidity, and thus facilitate the unblocking of the discharge port, avoiding the impact on the processing efficiency of cold-mixed colloids due to discharge port blockage. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0016] Figure 2 This is a rear view structural diagram of the tank body of this utility model;

[0017] Figure 3 For the present utility model Figure 2 Enlarged view of section A in the middle;

[0018] Figure 4 This is a schematic cross-sectional view of the tank body of this utility model;

[0019] Figure 5 This is a schematic diagram of the tank structure of this utility model;

[0020] Figure 6 For the present utility model Figure 5 Enlarged view of section B in the middle.

[0021] In the diagram: 1. Tank; 2. Water tank; 3. Stirring chamber; 4. Cooling chamber; 201. Water pump; 202. Transmission pipe; 203. Water outlet pipe; 204. Finned radiator; 205. Connecting pipe; 101. Discharge port; 102. Fixing plate; 103. Rack; 104. Sector gear; 105. First motor; 106. Spring; 107. Striking head; 108. Movable rod; 301. Stirring rod; 302. Second motor; 303. Gear reducer; 401. Spiral guide plate; 501. Feed pipe; 502. Feeding cylinder; 503. Third motor; 504. Feeding hopper; 505. Dynamic weighing sensor; 506. Spiral conveyor rod. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0023] This utility model discloses an integrated stirring, proportioning, and cooling device, such as... Figure 1-6 As shown, it includes a tank body 1 and a water tank 2. A discharge port 101 is fixedly installed on the outer bottom surface of the tank body 1, and the processed cold-mixed colloid can be discharged from the tank body 1 through the discharge port 101.

[0024] A fixed plate 102 is fixedly installed on one side of the outer bottom surface of the tank body 1. A movable rod 108 is slidably connected to the side of the fixed plate 102 near the discharge port 101, and a rack 103 is slidably connected to the other side of the fixed plate 102. A striking head 107 is fixedly installed at one end of the movable rod 108 near the discharge port 101. The side of the striking head 107 away from the movable rod 108 is made of rubber, and the other end of the movable rod 108 is fixedly connected to the rack 103. When the movable rod 108 moves, it will drive the rack 103 and the striking head 107 to move.

[0025] A first motor 105 is fixedly installed on one side of the rack 103 on the fixed plate 102. The first motor 105 is powered by an external power source, and a sector gear 104 is fixedly installed on the output shaft of the first motor 105. The sector gear 104 meshes with the rack 103. When the first motor 105 is powered on and started, it will drive the sector gear 104 to rotate. When the sector gear 104 rotates, its teeth mesh with the teeth of the rack 103, pushing the rack 103 to move in a straight line. A spring 106 is fixedly installed on one side of the striking head 107 on the fixed plate 102, and the spring 106 is sleeved on the outer end of the movable rod 108. The spring 106 is fixedly connected to the striking head 107.

[0026] The first motor 105 drives the sector gear 104 to rotate. When the sector gear 104 pushes the rack 103 to move away from the fixed plate 102, the striking head 107 will squeeze the spring 106. As the first motor 105 drives the sector gear 104 to rotate continuously, when the sector gear 104 is not meshed with the rack 103, the squeezed spring 106 will push the striking head 107 to reset. In this way, the striking head 107 will repeatedly strike the outlet 101. The vibration generated by the striking can destroy the electrostatic adsorption or local agglomeration between the colloidal particles, restore fluidity, and facilitate the unblocking of the outlet 101, so as to avoid affecting the processing efficiency of cold-mixed colloids due to the blockage of the outlet 101.

[0027] A water pump 201 is fixedly installed on the top of the outer surface of the tank 1. The motor of the water pump 201 drives the impeller of the water pump 201 to rotate, converting electrical energy into mechanical energy. The rotation of the impeller drives the liquid to move, so that the liquid gains kinetic energy and pressure energy, thereby realizing the transport of the liquid.

[0028] Furthermore, the outlet of the water pump 201 is fixedly connected to the tank 1 via a pipe, and the pipe extends into the cooling chamber 4 inside the tank 1.

[0029] A transmission pipe 202 is fixedly installed at the inlet of the water pump 201, and a finned radiator 204 is fixedly installed on the top surface of the water tank 2. When the coolant flows through the pipes inside the radiator, it transfers heat to the metal pipes and fins. An external fan forces air to flow over the fins and dissipates the heat into the air through forced convection.

[0030] Furthermore, the transmission pipe 202 is fixedly connected to one end of the pipe of the finned radiator 204, the top surface of the water tank 2 is fixedly installed with a connecting pipe 205, and it is fixedly connected to the other end of the pipe of the finned radiator 204. A water outlet pipe 203 is fixedly connected between the tank body 1 and the water tank 2.

[0031] The water pump 201 transmits the coolant in the water tank 2 to the cooling chamber 4 inside the tank 1 through the transmission pipe 202, the connecting pipe 205, and the pipe between the pump and the tank 1, thereby cooling the inside of the tank 1. The coolant, after absorbing heat, will then re-enter the water tank 2 through the outlet pipe 203.

[0032] During this process, the coolant in the water tank 2 will enter the pipe of the finned radiator 204 through the connecting pipe 205. The finned radiator 204 can cool the coolant, thereby enabling the coolant to circulate and dissipate heat inside the tank 1.

[0033] The tank body 1 has a stirring chamber 3 inside, and a stirring rod 301 is rotatably connected to the inner top surface of the stirring chamber 3. A gear reducer 303 is fixedly installed on the outer top surface of the tank body 1, and the output shaft of the gear reducer 303 is fixedly connected to the stirring rod 301. A second motor 302 is provided on the outer top surface of the tank body 1, and the second motor 302 is powered by an external power source.

[0034] Furthermore, the output shaft of the second motor 302 is fixedly connected to the input shaft of the gear reducer 303. The second motor 302 drives the input shaft of the gear reducer 303 to rotate. The input shaft drives the pinion gear, which meshes with the large gear to transmit power to the output shaft. In turn, the output shaft drives the stirring rod 301 to rotate, thereby stirring the colloid that has entered the stirring chamber 3 inside the tank 1.

[0035] The inner wall of the tank 1 is provided with a cooling chamber 4. A spiral guide plate 401 is fixedly installed inside the cooling chamber 4. The water outlet pipe 203 extends into the interior of the cooling chamber 4. After the coolant transported by the water pump 201 enters the cooling chamber 4, it will move along the spiral guide plate 401, thereby cooling the stirring chamber 3 inside the tank 1.

[0036] A feed pipe 501 is fixedly installed on one side of the outer top surface of the tank body 1. A feeding cylinder 502 is fixedly installed on the outer top surface of the tank body 1 and is fixedly connected to the feed pipe 501. A screw conveyor 506 is rotatably connected inside the feeding cylinder 502. A third motor 503 is fixedly installed on one side of the outer surface of the feeding cylinder 502 and the output end of the third motor 503 is fixedly connected to the screw conveyor 506. The third motor 503 is powered by an external power source. The third motor 503 drives the screw conveyor 506 to rotate, which can transfer the raw material entering the feeding cylinder 502 to the feed pipe 501 and enter the mixing chamber 3 through the feed pipe 501.

[0037] A feeding hopper 504 is fixedly installed on one side of the outer surface of the feeding cylinder 502. A dynamic weighing sensor 505 is fixedly installed on the outer surface of the connection between the feeding hopper 504 and the feeding cylinder 502. This sensor is a strain gauge type weighing sensor, with a strain gauge attached inside. When the sensor is deformed by force, the resistance value of the strain gauge changes linearly with the deformation. The weight is determined by measuring the resistance change caused by the deformation of the elastic body. The user first pours different raw materials into the feeding hopper 504 in sequence. The raw materials enter the feeding cylinder 502 through the feeding hopper 504. During this process, the dynamic weighing sensor 505 can weigh the raw materials, which makes it convenient for the user to mix different raw materials. In conjunction with the cooling chamber 4 and the stirring chamber 3, it realizes an integrated process of stirring, mixing and cooling.

[0038] The working principle of this utility model is as follows: the user pours different raw materials into the feeding hopper 504 in sequence, the dynamic weighing sensor 505 can weigh the raw materials, and the raw materials will enter the feeding cylinder 502 through the feeding hopper 504. The third motor 503 drives the screw conveyor 506 to rotate, which can transfer the raw materials entering the feeding cylinder 502 to the feeding pipe 501, and then enter the mixing chamber 3 through the feeding pipe 501.

[0039] Then, the second motor 302 drives the input shaft of the gear reducer 303 to rotate. The input shaft drives the pinion gear, which meshes with the large gear to transmit power to the output shaft. The output shaft then drives the stirring rod 301 to rotate, so as to stir the colloid that has entered the stirring chamber 3 inside the tank 1.

[0040] The water pump 201 transmits the coolant in the water tank 2 to the cooling chamber 4 in the tank 1 through the transmission pipe 202, the connecting pipe 205, and the pipe between the pump and the tank 1, thereby cooling the inside of the tank 1. After absorbing heat, the coolant will re-enter the water tank 2 through the outlet pipe 203 to circulate and cool the stirring chamber 3.

[0041] After mixing, the material can be discharged through the discharge port 101. During the discharge process, the first motor 105 drives the sector gear 104 to rotate, which in turn drives the rack 103 and the movable rod 108 to move. When the movable rod 108 moves toward the side of the spring 106, the striking head 107 will squeeze the spring 106. As the sector gear 104 continues to rotate, the squeezed spring 106 will push the striking head 107 to reset, so that it can strike the discharge port 101. The vibration generated during the striking can break the electrostatic adsorption or local agglomeration between colloidal particles, restore fluidity, and facilitate the unblocking of the discharge port 101.

[0042] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. An integrated mixing, proportioning, and cooling device, comprising a tank (1) and a water tank (2), characterized in that: A discharge port (101) is fixedly installed on the outer bottom surface of the tank (1). A fixing plate (102) is fixedly installed on one side of the outer bottom surface of the tank (1). A movable rod (108) is slidably connected to the side of the fixing plate (102) near the discharge port (101), and a rack (103) is slidably connected to the other side of the fixing plate (102). A striking head (107) is fixedly installed at one end of the movable rod (108) near the discharge port (101), and the other end of the movable rod (108) is fixedly connected to the rack (103). The fixing plate (102) is fixedly mounted with a first motor (105) on one side of the rack (103), and a sector gear (104) is fixedly mounted on the output shaft of the first motor (105). The sector gear (104) meshes with the rack (103). The fixing plate (102) is fixedly mounted with a spring (106) on one side of the striking head (107), and the spring (106) is sleeved on the outer end of the movable rod (108). The spring (106) is fixedly connected to the striking head (107).

2. The integrated stirring, proportioning, and cooling equipment according to claim 1, characterized in that: A water pump (201) is fixedly installed on the top of the outer surface of the tank (1), and the outlet of the water pump (201) is fixedly connected to the tank (1) through a pipe. A transmission pipe (202) is fixedly installed at the inlet of the water pump (201). A finned radiator (204) is fixedly installed on the top surface of the water tank (2), and the transmission pipe (202) is fixedly connected to one end of the pipe of the finned radiator (204). A connecting pipe (205) is fixedly installed on the top surface of the water tank (2), and is fixedly connected to the other end of the pipe of the finned radiator (204). A water outlet pipe (203) is fixedly connected between the tank (1) and the water tank (2).

3. The integrated stirring, proportioning, and cooling equipment according to claim 1, characterized in that: The tank (1) is provided with a stirring chamber (3) inside. A stirring rod (301) is rotatably connected to the inner top surface of the stirring chamber (3). A gear reducer (303) is fixedly installed on the outer top surface of the tank (1), and the output shaft of the gear reducer (303) is fixedly connected to the stirring rod (301). A second motor (302) is provided on the outer top surface of the tank (1), and the output shaft of the second motor (302) is fixedly connected to the input shaft of the gear reducer (303).

4. The integrated stirring, proportioning, and cooling equipment according to claim 2, characterized in that: The inner wall of the tank (1) is provided with a cooling chamber (4), and a spiral guide plate (401) is fixedly installed inside the cooling chamber (4). The water outlet pipe (203) extends into the interior of the cooling chamber (4).

5. The integrated stirring, proportioning, and cooling equipment according to claim 1, characterized in that: A feed pipe (501) is fixedly installed on one side of the outer top surface of the tank (1). A feeding cylinder (502) is fixedly installed on the outer top surface of the tank (1), and the feeding cylinder (502) is fixedly connected to the feed pipe (501). A spiral conveying rod (506) is rotatably connected inside the feeding cylinder (502). A third motor (503) is fixedly installed on one side of the outer surface of the feeding cylinder (502), and the output end of the third motor (503) is fixedly connected to the spiral conveying rod (506).

6. The integrated stirring, proportioning, and cooling equipment according to claim 5, characterized in that: A feeding hopper (504) is fixedly installed on one side of the outer surface of the feeding cylinder (502), and a dynamic weighing sensor (505) is fixedly installed on the outer surface of the connection between the feeding hopper (504) and the feeding cylinder (502).