Multifunctional fruit and vegetable powder processing equipment
By introducing a cutting seat and a high-pressure air pump into the fruit and vegetable powder processing equipment, the problems of cutting large pieces of material and discharging waste material at the end stage are solved, achieving efficient operation of the equipment and avoiding blockages.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2026-03-24
AI Technical Summary
Existing enzyme inactivators have a single structure and function, cannot cut large pieces of material, are prone to internal pipe blockage, and are inconvenient for discharging materials at the end of the process.
A multifunctional fruit and vegetable powder processing device was designed, which includes a cutting seat and a screw pump. The cutting seat is equipped with cutting blades for cutting large pieces of material. When the screw pump cannot continuously press the material, a high-pressure air pump is used to provide high-pressure gas to discharge the remaining material, so as to avoid blockage and residue.
It effectively cuts large pieces of material, avoids pipe blockage, and ensures efficient discharge of waste material, thus improving the functionality and practicality of the equipment.
Smart Images

Figure CN224022839U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to fruit and vegetable powder processing technical field especially multi -functional fruit and vegetable powder processing equipment. BACKGROUND
[0002] Contemporary fruit and vegetable powder processing needs to pass through many processes, including washing, crushing, enzyme inactivation, beating, drying and the like, wherein enzyme inactivation refers to enzyme inactivation color protection to the crushed material, organization softening and pasteurization, is the important link that influences the organization form, color, viscosity of material, and this process needs to use preheating enzyme inactivator.
[0003] The existing enzyme inactivator structure function is single, cannot cut big block material, is easy to cause internal pipeline blockage, also simultaneously is inconvenient to the efficient discharge operation of tail period material, and function and practicality both have to be improved. UTILITY MODEL CONTENT
[0004] The utility model discloses a multifunctional fruit and vegetable powder processing equipment can cut big block material, avoid internal pipeline blockage, also can the efficient discharge operation of tail period material, and practicality is strong, and function is strong.
[0005] To realize above-mentioned purpose, the utility model provides the following technical scheme:
[0006] Multi -functional fruit and vegetable powder processing equipment, including support seat, the upper surface of support seat is fixedly installed with enzyme inactivation cylinder, the inside of enzyme inactivation cylinder is installed and penetrates the inner heat exchange pipe, the feed inlet of inner heat exchange pipe is fixedly installed with cutting seat, one end of cutting seat is fixedly installed with three -way pipe seat, one end of three -way pipe seat is fixedly installed with screw pump.
[0007] Through adopt above-mentioned technical scheme, can cut big block and avoid the blockage of internal pipeline, can utilize screw pump and provide power for the flow of material simultaneously.
[0008] Further, the inner wall of the cutting seat is fixedly installed with a plurality of cutting blades, and the plurality of cutting blades are circularly arrayed.
[0009] Through adopt above-mentioned technical scheme, can carry out effective cutting operation.
[0010] Further, the upper surface of the support seat is fixedly installed with a high-pressure air pump, the air outlet end of the high-pressure air pump is fixedly installed with an air hose, and one end of the air hose is in communication with the air inlet end of the three-way pipe seat.
[0011] Through adopt above-mentioned technical scheme, can produce high-pressure gas, and provide medium for the discharge of tail period material.
[0012] Furthermore, a first solenoid valve and a second solenoid valve are respectively installed in two of the pipes of the three-way pipe seat.
[0013] By adopting the above technical solution, the operation of the tee fitting can be effectively controlled.
[0014] Furthermore, a steam inlet is provided at each of the two ends of the side surface of the enzyme inactivation tube.
[0015] By adopting the above technical solution, it is ensured that the external high-temperature steam can effectively pass through the interior of the enzyme inactivation cylinder.
[0016] Furthermore, the inner heat exchange tube is a continuous pipe, and the tube body of the inner heat exchange tube is continuously bent and runs through the interior of the enzyme inactivation cylinder.
[0017] By adopting the above technical solution, it is ensured that the material to be inactivated can circulate through the interior of the enzyme inactivation cylinder.
[0018] In summary, the beneficial technical effects of this utility model are as follows:
[0019] 1. In use, this utility model utilizes a screw pump to press pre-crushed materials into the interior of the inner heat exchange tube. Since a cutting seat and a three-way pipe seat are installed between the inner heat exchange tube and the screw pump, the material needs to pass through the interior of the three-way pipe seat and the cutting seat in sequence before the screw pump presses the material into the inner heat exchange tube. Furthermore, since multiple cutting blades are fixedly installed on the inner wall of the cutting seat, the cutting blades can cut larger pieces of material as they pass through the interior of the cutting seat, preventing larger pieces of material from clogging when passing through the bends of the inner heat exchange tube, thus effectively improving its practicality.
[0020] 2. When the screw pump cannot continuously press material, this utility model closes the second solenoid valve, then opens the first solenoid valve, and then starts the high-pressure air pump. The high-pressure gas generated by the high-pressure air pump enters the interior of the three-way pipe seat through the air guide hose, then passes through the inner heat exchange tube and is discharged. When the high-pressure gas passes through the interior of the inner heat exchange tube, the high-pressure airflow can effectively drive the material inside the inner heat exchange tube to continue moving until all the material is discharged from the interior of the inner heat exchange tube. This structure can prevent material from remaining inside the inner heat exchange tube and drying and sticking to the inner wall of the inner heat exchange tube, thus avoiding the impact on the subsequent processing of different materials. The functionality and practicality are effectively improved. Attached Figure Description
[0021] Figure 1 This is a first-view perspective view of the three-dimensional structure of this utility model;
[0022] Figure 2 This is a second perspective view of the three-dimensional structure of this utility model;
[0023] Figure 3 This utility model Figure 1 Enlarged view of point A;
[0024] Figure 4 This is a diagram showing the internal structure of the cutting seat of this utility model.
[0025] In the diagram: 1. Support base; 2. Enzyme inactivation cylinder; 3. Steam inlet; 4. Internal heat exchange tube; 5. Screw pump; 6. High-pressure air pump; 7. Gas delivery hose; 8. Cutting seat; 9. T-junction seat; 10. First solenoid valve; 11. Second solenoid valve; 12. Cutting blade. Detailed Implementation
[0026] The method of this utility model will be further described in detail below with reference to the accompanying drawings.
[0027] Reference Figure 1 , Figure 3 , Figure 4 A multi-functional fruit and vegetable powder processing equipment includes a support base 1. An enzyme inactivation cylinder 2 is fixedly installed on the upper surface of the support base 1. An inner heat exchange tube 4 is installed through the inside of the enzyme inactivation cylinder 2. A cutting seat 8 is fixedly installed at the inlet of the inner heat exchange tube 4. A three-way pipe seat 9 is fixedly installed at one end of the cutting seat 8. A screw pump 5 is fixedly installed at one end of the three-way pipe seat 9. Multiple cutting blades 12 are fixedly installed on the inner wall of the cutting seat 8. The multiple cutting blades 12 are arranged in a circular array. During use, the screw pump 5 can be used to press the pre-crushed material into the inner heat exchange tube. Inside the tube 4, a cutting seat 8 and a three-way pipe seat 9 are installed between the inner heat exchange tube 4 and the screw pump 5. Therefore, before the screw pump 5 pressurizes the material into the inner heat exchange tube 4, the material needs to pass through the inside of the three-way pipe seat 9 and the cutting seat 8 in sequence. Since multiple cutting blades 12 are fixedly installed on the inner wall of the cutting seat 8, the cutting blades 12 can cut larger pieces of material when the material passes through the inside of the cutting seat 8, avoiding blockage of larger pieces of material when passing through the bends of the inner heat exchange tube 4, thus effectively improving practicality.
[0028] Reference Figure 1 , Figure 2 , Figure 3A high-pressure air pump 6 is fixedly installed on the upper surface of the support base 1. A gas guide hose 7 is fixedly installed at the outlet end of the high-pressure air pump 6. One end of the gas guide hose 7 is connected to the inlet end of the three-way pipe seat 9. A first solenoid valve 10 and a second solenoid valve 11 are respectively installed in two of the pipes of the three-way pipe seat 9. When the screw pump 5 cannot continuously press the material, the second solenoid valve 11 is closed, and then the first solenoid valve 10 is opened. Then the high-pressure air pump 6 is started. The high-pressure gas generated by the high-pressure air pump 6 enters the interior of the three-way pipe seat 9 along the gas guide hose 7, and then passes through the inner heat exchange tube 4 before being discharged. When the high-pressure gas passes through the interior of the inner heat exchange tube 4, the high-pressure airflow can effectively drive the material inside the inner heat exchange tube 4 to continue to move until all the material is discharged from the interior of the inner heat exchange tube 4. This structure can prevent the material from remaining inside the interior of the inner heat exchange tube 4 and drying and sticking to the inner wall of the inner heat exchange tube 4, thus avoiding the impact on the subsequent processing of different materials. The functionality and practicality are effectively improved.
[0029] Reference Figure 1 , Figure 2 At each end of the side surface of the enzyme inactivation cylinder 2, there is a steam inlet 3. The inner heat exchange tube 4 is a continuous pipe with continuous bends and runs through the inside of the enzyme inactivation cylinder 2. The two steam inlets 3 allow the external high-temperature steam to circulate through the inside of the enzyme inactivation cylinder 2 to provide heat energy for the enzyme inactivation of the material. The continuously bends of the inner heat exchange tube 4 allow the material to be processed to circulate through the inside of the enzyme inactivation cylinder 2.
[0030] Working Principle: First, connect the equipment to the external feeding and heating pipelines. Then, use the screw pump 5 to press the pre-crushed material into the inner heat exchange tube 4. Since a cutting seat 8 and a three-way pipe seat 9 are installed between the inner heat exchange tube 4 and the screw pump 5, the material needs to pass through the three-way pipe seat 9 and the cutting seat 8 sequentially before being pressed into the inner heat exchange tube 4. Because multiple cutting blades 12 are fixedly installed on the inner wall of the cutting seat 8, the cutting blades 12 can cut larger pieces of material as it passes through, preventing blockage at the bends of the inner heat exchange tube 4. The cut material enters the inner heat exchange tube 4. As the screw pump 5 continues to supply material, the material moves continuously inside the inner heat exchange tube 4. At this time, the external heating pipeline is opened, and high-temperature steam flows from... One steam inlet 3 enters the interior of the enzyme inactivation cylinder 2. After passing through the interior of the enzyme inactivation cylinder 2, the steam exits from the other steam inlet 3. During this process, the material inside the inner heat exchange tube 4 can be effectively preheated and inactivated. When the feeding end period is reached, the screw pump 5 cannot continue to press the material, so the second solenoid valve 11 is closed, and then the first solenoid valve 10 is opened. Then the high-pressure air pump 6 is started. The high-pressure gas generated by the high-pressure air pump 6 enters the interior of the three-way pipe seat 9 through the air guide hose 7, and then exits after passing through the inner heat exchange tube 4. When the high-pressure gas passes through the interior of the inner heat exchange tube 4, the high-pressure airflow can effectively drive the material inside the inner heat exchange tube 4 to continue to move until all the material is discharged from the interior of the inner heat exchange tube 4. This structure can prevent the material from remaining inside the interior of the inner heat exchange tube 4 and drying and sticking to the inner wall of the inner heat exchange tube 4, thus avoiding the impact on the processing of different materials in the future.
[0031] The specific real-time examples described herein are preferred real-time examples of this utility model and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape, and principle of this utility model should be included within the scope of protection of this utility model.
Claims
1. A multi-functional fruit and vegetable powder processing equipment, including a support base (1), characterized in that: An enzyme inactivation cylinder (2) is fixedly installed on the upper surface of the support base (1). An internal heat exchange tube (4) is installed through the inside of the enzyme inactivation cylinder (2). A cutting seat (8) is fixedly installed at the inlet of the internal heat exchange tube (4). A three-way pipe seat (9) is fixedly installed at one end of the cutting seat (8). A screw pump (5) is fixedly installed at one end of the three-way pipe seat (9).
2. The multifunctional fruit and vegetable powder processing equipment according to claim 1, characterized in that: Multiple cutting blades (12) are fixedly installed on the inner wall of the cutting seat (8), and the multiple cutting blades (12) are distributed in a circular array.
3. The multifunctional fruit and vegetable powder processing equipment according to claim 1, characterized in that: A high-pressure air pump (6) is fixedly installed on the upper surface of the support base (1). A guide hose (7) is fixedly installed at the air outlet end of the high-pressure air pump (6). One end of the guide hose (7) is connected to the air inlet end of the three-way pipe seat (9).
4. The multifunctional fruit and vegetable powder processing equipment according to claim 1, characterized in that: The first solenoid valve (10) and the second solenoid valve (11) are respectively installed in two of the pipes of the three-way pipe seat (9).
5. The multifunctional fruit and vegetable powder processing equipment according to claim 1, characterized in that: A steam inlet (3) is provided at each end of the side surface of the enzyme inactivation tube (2).
6. The multifunctional fruit and vegetable powder processing equipment according to claim 1, characterized in that: The inner heat exchange tube (4) is a continuous pipe, and the tube body of the inner heat exchange tube (4) is continuously bent and penetrates the inside of the enzyme inactivation tube (2).