Heat pump drying equipment for protein peptide extraction raw materials

By introducing the coherent bin and arc-bottom triangle structure into the heat pump drying equipment, the problem of discontinuous material injection is solved, the drying efficiency and equipment stability are improved, and production safety is ensured.

CN223435373UActive Publication Date: 2025-10-14DONG E CHENKANG PHARM CO LTD
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Patent Information

Application Number
CN202422986403.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-10-14
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

Existing heat pump drying equipment has defects in the design of the feeding components, which leads to discontinuous material injection, resulting in heat energy waste and reduced work efficiency, and the equipment structure is not stable and safe enough.

Method used

It adopts a continuous bin design and arc-bottom triangular structure, realizes uninterrupted injection of materials through a complex connecting rod and gear system, and improves safety through a blocking net to ensure equipment stability and safety.

Benefits of technology

It realizes uninterrupted feeding of materials, improves drying efficiency, extends equipment service life, and ensures production safety and equipment stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides heat pump drying equipment for protein peptide extraction raw materials, which relates to the technical field of drying equipment and comprises a drying room and feeding equipment, an inner bin is arranged on the inner wall of the drying room, a plurality of feeding pipes are fixed on one side of the feeding equipment, a feeding wall is fixed on the inner wall of the inner bin, and a coherent bin is fixed on the inner wall of the feeding wall. A mode of installing a coherent bin is adopted to solve the problems that in order to improve the drying efficiency, a worker usually adopts a method of spraying out materials in a mist form in a heat pump drying technology of protein peptide extraction raw materials, an existing heat pump drying device has certain defects in the design of a feeding assembly, and in the material spraying process, the working efficiency of the heat pump drying device is influenced. In the prior art, continuous spraying of materials is often difficult to realize, namely an obvious time interval exists between spraying, the interval not only reduces the handling capacity of the materials in unit time, but also more importantly, during the spraying interval, heat energy in heat pump drying equipment cannot be fully utilized, so that the energy is wasted, and the working efficiency is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to drying equipment technical field especially relates to a kind of heat pump drying equipment for protein peptide extraction raw material. BACKGROUND

[0002] Heat pump drying equipment is a kind of device using heat pump principle to dry material, is widely applied to agricultural product drying, food drying, timber drying, chemical raw material drying and so on multiple fields.Heat pump drying equipment extracts heat from low-temperature air through compressor, evaporator, condenser and other components, and utilizes these heat to dry material.This equipment not only can efficiently complete drying task, but also can significantly save energy consumption, and reduce environmental pollution, utilize the heat energy in ambient air, compared with traditional drying method, it is more energy-saving, can reduce fuel consumption and exhaust emission, and environmental protection effect is good.

[0003] In the prior art, in the preparation process of protein peptide extraction raw material, heat pump drying technology is widely applied to remove water in material, to improve product quality and prolong shelf life, in order to improve drying efficiency, staff usually adopts the method that material is sprayed in mist form, which can significantly increase the contact area of material and hot air, and accelerate drying speed, however, the existing heat pump drying equipment has certain defects in the design of feeding assembly, specifically, in the process of spraying material, it is difficult to realize the continuous injection of material, i.e. UTILITY MODEL CONTENTS

[0004] The utility model aims at solving the shortcomings in prior art, and proposes a kind of heat pump drying equipment for protein peptide extraction raw material.

[0005] To achieve the above object, the utility model discloses the following technical scheme: a kind of heat pump drying equipment for protein peptide extraction raw material, including drying house and feeding equipment, the inner wall of the drying house is equipped with inner storehouse, the side of the feeding equipment is fixed with multiple inlet pipes, the inner wall of the inner storehouse is fixed with feeding wall, the inner wall of the feeding wall is fixed with coherent storehouse, the peripheral surface of the coherent storehouse is fixed with inlet pipe one end, the peripheral surface of the coherent storehouse is fixed with outlet pipe, the one end of the outlet pipe is fixed with atomization end, the inner wall of the coherent storehouse is slidably connected with upper top pressure disc, the bottom of the upper top pressure disc is fixed with long thin continuous column, the one end of the long thin continuous column is fixed with lower wing plate, the one end of the lower wing plate is rotatably connected with small arm link, the peripheral surface of the long thin continuous column is slidably connected with lower bottom pressure disc, the bottom of the lower bottom pressure disc is fixed with bottom sleeve, the inner wall of the bottom sleeve is slidably connected with the peripheral surface of the long thin continuous column, the peripheral surface of the bottom sleeve is fixed with upper wing plate, the one end of the upper wing plate is rotatably connected with big arm link, the one end bottom of the big arm link is rotatably connected with bottom end link, the one end of the bottom end link is rotatably connected with high bearing shaft column, the bottom of the high bearing shaft column is fixed to the inner wall of the feeding wall, the one end top of the big arm link is rotatably connected with multiple axle links, the one end of the multiple axle links is rotatably connected with the one end of the small arm link, the one end of the small arm link is rotatably connected with short link, the one end of the short link is rotatably connected with hollow bearing column, the one end of the short link is fixed with driving gear through connecting shaft, the peripheral surface of the connecting shaft is rotatably connected with the inner wall of the hollow bearing column, the hollow bearing column is fixed to the inner wall of the feeding wall through fixed column, the bottom of the driving gear is fixed with motor, the one end of the inlet pipe and the one end of the outlet pipe are equipped with check valve, in prior art, in the preparation process of protein peptide extraction raw material, heat pump drying technology is widely applied to remove water in material, to improve product quality and prolong shelf life, in order to improve drying efficiency, staff usually adopts the method that material is sprayed in mist form, which can significantly increase the contact area of material and hot air, accelerate drying speed, however, the existing heat pump drying equipment has certain defects in the design of feeding assembly, specifically, in the process of spraying material, it is difficult to realize the coherent injection of material, that is, there is obvious time interval between each injection, this interval not only reduces the processing capacity of material per unit time, more importantly, during the injection interval, the heat energy in heat pump drying equipment cannot be fully utilized, leading to energy waste and reduction of working efficiency, in view of such problems, the utility model adopts the mode of installing coherent storehouse, realizes that when staff supplies material to drying house, starts motor to make driving gear rotate clockwise, drives short link to rotate clockwise through connecting shaft, simultaneously, driving gear engages to drive another side driving gear to rotate counterclockwise, short link and bottom end link make clockwise rotation respectively with hollow bearing column and high bearing shaft column as shaft, pull multiple axle links to rotate clockwise with its center as shaft, make big arm link and small arm link reciprocate up and down, and swing left and right at bottom, pull upper wing plate and lower wing plate to make upper top pressure disc and lower bottom pressure disc staggered up and down,When the upper top pressing plate moves upward and the lower bottom pressing plate moves downward, the space in the middle of the continuous bin divided by the upper top pressing plate and the lower bottom pressing plate increases, negative pressure is generated, due to the restriction of the one-way valve, the valve body assembly of the discharge pipe moves right to close the discharge pipe, and the valve body assembly of the inlet pipe moves left to open the inlet pipe, the protein peptide material enters the continuous bin from the inlet pipe, when the upper top pressing plate moves downward and the lower bottom pressing plate moves upward, the upper top pressing plate and the lower bottom pressing plate simultaneously press the space in the middle of the continuous bin divided by the upper top pressing plate and the lower bottom pressing plate, so that the pressure increases, the valve body assembly of the discharge pipe moves left to open the discharge pipe, and the valve body assembly of the inlet pipe moves right to close the inlet pipe, the protein peptide material is sprayed from the atomizing end into the drying room, at the same time, the top space of the continuous bin divided by the upper top pressing plate increases, the protein peptide material enters the top space of the continuous bin divided by the upper top pressing plate from the inlet pipe, when the upper top pressing plate moves upward and the lower bottom pressing plate moves downward again, the top space is pressed by the upward pressure of the upper top pressing plate, and the protein peptide material is pressed out, so that the mechanism can repeatedly supply the material into the drying room without interruption during reciprocating movement, the equipment on-machine time is greatly reduced, the material supply speed is improved, and the working efficiency is improved.

[0006] Preferably, the arc bottom triangular piece is fixed on the periphery of the discharge pipe, one side of the arc bottom triangular piece is fixed on one side of the feeding wall, in the prior art, the discharge pipe will be continuously vibrated in the process that the material repeatedly leaves and enters the discharge pipe, the vibration will have a certain influence on the fixing mode between the discharge pipe and the feeding wall, which will gradually relax, and this relaxation phenomenon will reduce the structural stability of the equipment, thereby negatively affecting the service life of the equipment, and reducing the service life of the equipment, in view of the problems, the arc bottom triangular piece is installed to solve the problems, the arc bottom of the triangular piece is accurately and perfectly attached to the periphery of the discharge pipe through the ingenious design, the attachment not only ensures the integrity of the structure, but also provides convenience for the workers, so that they can apply structural glue to the contact surface of the arc bottom triangular piece and the discharge pipe for fixation, the fixation mode is not only stable, but also can provide a certain buffering space and shock absorption effect to reduce the impact on the discharge pipe when the material flows, at the same time, the arc bottom triangular piece is designed in a stable triangular shape, which has high stability in structural mechanics, and can effectively reinforce the fixing effect between the discharge pipe and the feeding wall, through the double protection, the stability of the assembly is greatly improved, thereby significantly improving the overall durability and reliability of the equipment, providing a solid guarantee for long-term stable operation, thereby greatly increasing the stability of the assembly, and improving the service life of the equipment.

[0007] Preferably, the feeding device is fixed with a blocking net on the side, in the prior art, the feeding device generates heat during storage and feeding, the heat accumulates gradually, the surface temperature of the device gradually increases, and even reaches a high temperature, however, the high temperature state is a potential risk to the workers, once the workers contact the heat dissipation position of the device due to improper operation or negligence, burns are likely to occur, and serious harm to personal safety is caused, in view of the problems, the utility model adopts the installation of the blocking net to solve the problems, realizes that the workers are kept away from the heat dissipation position of the device by the blocking net, prevents the workers from contacting the high temperature position, prevents the workers from being injured, and improves the production safety.

[0008] Preferably, the drying room is provided with a maintenance door on one side, so that the workers can maintain and repair the device in the later period, and the user experience is improved.

[0009] Preferably, the drying room is provided with a maintenance door on one side, so that the workers can maintain and repair the device in the later period, and the user experience is improved.

[0010] Preferably, the drying room is provided with a maintenance door on one side, so that the workers can maintain and repair the device in the later period, and the user experience is improved.

[0011] Preferably, the length of the continuous bin is greater than the movement length of the upper top pressing disc and the lower bottom pressing disc, so that the inner wall is prevented from colliding, and the service life of the device is improved.

[0012] Beneficial effects:

[0013] 1. In the prior art, in the preparation process of protein peptide extraction raw materials, heat pump drying technology is widely used to remove water from the material to improve product quality and extend shelf life. In order to improve drying efficiency, workers usually use the method of spraying the material in mist form, which can significantly increase the contact area of the material and hot air and speed up the drying speed. However, the existing heat pump drying equipment has certain defects in the design of the feeding assembly. Specifically, during the spraying of the material, it is often difficult to achieve continuous spraying of the material, i.e. there is a significant time interval between each spraying. This interval not only reduces the processing capacity of the material per unit time, but more importantly, the heat energy in the heat pump drying equipment cannot be fully utilized during the spraying interval, resulting in energy waste and reduced work efficiency. To solve such problems, the utility model adopts the installation of a continuous bin, which enables the clockwise rotation of the main gear when the worker feeds the drying house, which drives the short connecting rod to rotate clockwise through the connecting shaft, and at the same time, the main gear meshes to drive the other side of the main gear to rotate counterclockwise. The short connecting rod and the bottom connecting rod rotate clockwise around the hollow support column and the high support column, respectively, and pull the multi-shaft connecting rod to rotate clockwise around its center, causing the large arm connecting rod and the small arm connecting rod to move up and down reciprocally and the bottom to swing left and right. Pulling the upper wing plate and the lower wing plate makes the upper pressing disc and the lower pressing disc move up and down alternately. When the upper pressing disc moves up and the lower pressing disc moves down, the space in the middle of the continuous bin divided by the upper pressing disc and the lower pressing disc increases, generating negative pressure. Due to the restriction of the one-way valve, the valve body assembly of the discharge pipe moves right to close the discharge pipe, while the valve body assembly of the inlet pipe moves left to open the inlet pipe. The protein peptide material enters the continuous bin from the inlet pipe. When the upper pressing disc moves down and the lower pressing disc moves up, the upper pressing disc and the lower pressing disc simultaneously compress the space in the middle of the continuous bin divided by the upper pressing disc and the lower pressing disc, increasing the pressure. The valve body assembly of the discharge pipe moves left to open the discharge pipe, while the valve body assembly of the inlet pipe moves right to close the inlet pipe. The protein peptide material is sprayed into the drying house from the atomizing end, and at the same time, the top space of the continuous bin divided by the upper pressing disc increases. The protein peptide material enters the top space of the continuous bin divided by the upper pressing disc from the inlet pipe. When the upper pressing disc moves up and the lower pressing disc moves down again, the top space is pressed by the upward pressure of the upper pressing disc, which presses the protein peptide material out. This mechanism can continuously feed the material into the drying house through repeated strokes during reciprocating motion, greatly reducing the equipment standby time, improving the feeding speed, and achieving the effect of improving work efficiency.

[0014] 2、In the prior art, the discharge pipe is subjected to continuous vibration in the process that the material repeatedly leaves and enters the discharge pipe, the vibration has certain influence on the fixing mode between the discharge pipe and the feeding wall, the fixing mode is gradually loosened, the loosening phenomenon leads to the reduction of the structural stability of the equipment, thus having negative influence on the service life of the equipment, the service life of the equipment is reduced, in view of the problems, the utility model adopts the mode of installing the arc bottom triangular piece, realizes that the arc bottom triangular piece is intelligently set, the arc bottom of the triangular piece can be accurately and perfectly attached to the peripheral surface of the discharge pipe, the attachment not only ensures the integrity of the structure, but also provides convenience for the staff, so that they can apply structural glue to the contact surface of the arc bottom triangular piece and the discharge pipe for fixation, the fixation mode is not only stable, but also can provide a certain buffering space and damping effect to the extent, reduces the impact of the material flow on the discharge pipe, meanwhile, the arc bottom triangular piece is designed in the shape of a stable triangle, the shape has high stability in structural mechanics, can effectively reinforce the fixation effect between the discharge pipe and the feeding wall, through the double protection, the stability of the assembly is greatly improved, thus the overall durability and reliability of the equipment are remarkably improved, a solid guarantee is provided for long-term stable operation, thus the stability of the assembly is greatly increased, the service life of the equipment is improved.

[0015] 3、In the prior art, the feeding equipment generates heat during storage and feeding, the heat is gradually accumulated, the surface temperature of the equipment is gradually increased, and even reaches a high temperature, however, the high temperature state is a potential risk for the staff, once the staff touches the heat dissipation position of the equipment due to improper operation or negligence, a scalding tragedy occurs, and the personal safety is seriously harmed, in view of the problems, the utility model adopts the mode of installing the blocking net to solve the problems, realizes that the staff is always kept at a certain distance from the heat dissipation position of the equipment through the blocking net, the staff is prevented from contacting the high temperature position, the staff is prevented from being injured, and the production safety is improved. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a three-dimensional structure schematic view of the utility model;

[0017] Figure 2 It is a three-dimensional structure schematic view of the ventilation window of the utility model;

[0018] Figure 3 It is a three-dimensional structure schematic view of the feeding wall of the utility model;

[0019] Figure 4 It is a three-dimensional structure schematic view of the long-thin continuous column of the utility model;

[0020] Figure 5It is a three-dimensional structure schematic view of the short connecting rod of the utility model.

[0021] Figure 6 It is a three-dimensional structure schematic view of the lower bottom pressure disc of the utility model.

[0022] Legend:

[0023] 1, drying room; 101, inner bin; 102, feeding equipment; 103, access door; 104, wire discharging top frame; 105, feeding pipe; 106, air window; 107, stopping net; 2, feeding wall; 201, continuous bin; 202, upper top pressure disc; 203, long thin connecting column; 204, lower bottom pressure disc; 205, bottom sleeve; 206, upper wing plate; 207, large arm connecting rod; 208, multi-shaft connecting rod; 209, bottom end connecting rod; 2010, high bearing shaft column; 2011, short connecting rod; 2012, small arm connecting rod; 2013, hollow bearing column; 2014, driving gear; 2015, motor; 2016, lower wing plate; 2017, discharging pipe; 2018, atomizing end; 3, arc bottom triangular piece. DETAILED DESCRIPTION

[0024] In order to make the technical means, creative features, purposes and effects realized by the utility model easy to understand, the utility model is further described below in combination with specific embodiments and drawings, but the following embodiments are only preferred embodiments of the utility model, not all. Based on the embodiments in the embodiments, other embodiments obtained by those skilled in the art without creative labor all belong to the protection scope of the utility model.

[0025] The specific embodiments of the utility model are described below in combination with the drawings. Specific embodiments:

[0027] Reference Figures 1-6The utility model provides a kind of heat pump drying equipment for protein peptide extraction raw material, including drying room 1 and feed equipment 102, the inner wall of drying room 1 is opened with inner storehouse 101, feed equipment 102 side is fixed with multiple inlet pipes 105, the inner wall of inner storehouse 101 is fixed with feed wall 2, the inner wall of feed wall 2 is fixed with coherent storehouse 201, the periphery of coherent storehouse 201 is fixed with inlet pipe 2017, one end of inlet pipe 2017 is fixed with atomization end 2018, the inner wall of coherent storehouse 201 is slidably connected with upper top pressure disc 202, the bottom of upper top pressure disc 202 is fixed with long thin continuous column 203, one end of long thin continuous column 203 is fixed with lower wing plate 2016, one end of lower wing plate 2016 is rotatably connected with small arm connecting rod 2012, the periphery of long thin continuous column 203 is slidably connected with lower bottom pressure disc 204, the bottom of lower bottom pressure disc 204 is fixed with bottom sleeve 205, the inner wall of bottom sleeve 205 is slidably connected with the periphery of long thin continuous column 203, the periphery of bottom sleeve 205 is fixed with upper wing plate 206, one end of upper wing plate 206 is rotatably connected with big arm connecting rod 207, one end bottom of big arm connecting rod 207 is rotatably connected with bottom end connecting rod 209, one end of bottom end connecting rod 209 is rotatably connected with high bearing shaft column 2010, the bottom of high bearing shaft column 2010 is fixed to the inner wall of feed wall 2, one end top of big arm connecting rod 207 is rotatably connected with multi-shaft connecting rod 208, one end of multi-shaft connecting rod 208 is rotatably connected with one end of small arm connecting rod 2012, one end of small arm connecting rod 2012 is rotatably connected with short connecting rod 2011, one end of short connecting rod 2011 is rotatably connected with hollow bearing column 2013, one end of short connecting rod 2011 is fixed with driving gear 2014 through connecting shaft, the periphery of connecting shaft is rotatably connected with the inner wall of hollow bearing column 2013, hollow bearing column 2013 is fixed with the inner wall of feed wall 2 through fixed column, the bottom of driving gear 2014 is fixed with motor 2015, one end of inlet pipe 105 and one end of outlet pipe 2017 are each provided with a check valve, in the preparation process of protein peptide extraction raw material, heat pump drying technology is widely used to remove moisture in material to improve product quality and prolong shelf life, in order to improve drying efficiency, staff usually adopts the method that material is sprayed in mist form, which can significantly increase the contact area of material and hot air, speed up the drying speed, however, the existing heat pump drying equipment has certain defects in the design of feed assembly, specifically, in the process of spraying material, it is often difficult to realize the continuous spraying of material, that is, there is obvious time interval between each spraying, this interval not only reduces the processing capacity of material per unit time, more importantly, the heat energy in heat pump drying equipment cannot be fully utilized during the spraying interval, thereby leading to energy waste and reduction of working efficiency, the mode of installing coherent storehouse 201 is adopted to solve the problem, when staff feeds drying room 1, start motor 2015 to make driving gear 2014 rotate clockwise, drive short connecting rod 2011 to rotate clockwise through connecting shaft, at the same time, driving gear 2014 meshes to drive another side driving gear 2014 to rotate counterclockwise,The short connecting rod 2011 and the bottom end connecting rod 209 rotate clockwise around the hollow supporting column 2013 and the high supporting shaft column 2010 as the shaft, pull the multi-shaft connecting rod 208 to rotate clockwise around its center, so that the large arm connecting rod 207 and the small arm connecting rod 2012 reciprocate up and down, and the bottom end swings left and right, pull the upper wing plate 206 and the lower wing plate 2016 to make the upper top pressing disc 202 and the lower bottom pressing disc 204 staggered up and down, when the upper top pressing disc 202 goes up and the lower bottom pressing disc 204 goes down, the space in the middle of the continuous bin 201 divided by the upper top pressing disc 202 and the lower bottom pressing disc 204 increases, generating negative pressure, due to the restriction of the one-way valve, the valve body assembly of the discharge pipe 2017 moves right to close the discharge pipe 2017, and the valve body assembly of the inlet pipe 105 moves left to open the inlet pipe 105, the protein peptide material enters the continuous bin 201 from the inlet pipe 105, when the upper top pressing disc 202 goes down and the lower bottom pressing disc 204 goes up, the upper top pressing disc 202 and the lower bottom pressing disc 204 simultaneously compress the space in the middle of the continuous bin 201 divided by the upper top pressing disc 202 and the lower bottom pressing disc 204, so that the pressure increases, the valve body assembly of the discharge pipe 2017 moves left to open the discharge pipe 2017, and the valve body assembly of the inlet pipe 105 moves right to close the inlet pipe 105, the protein peptide material is sprayed into the drying room 1 from the atomizing end 2018, at the same time, the top space of the continuous bin 201 divided by the upper top pressing disc 202 increases, the protein peptide material enters the top space of the continuous bin 201 divided by the upper top pressing disc 202 from the inlet pipe 105, when the upper top pressing disc 202 goes up and the lower bottom pressing disc 204 goes down again, the top space is pressed by the upward pressure of the upper top pressing disc 202, and the protein peptide material is pressed out, so that the mechanism can continuously supply the material into the drying room 1 through repeated strokes during reciprocating motion, greatly reducing the equipment on-machine time, improving the feeding speed, and achieving the effect of improving the work efficiency. The length of the continuous bin 201 is greater than the movement length of the upper top pressing disc 202 and the lower bottom pressing disc 204, preventing collision of the inner wall and improving the service life of the equipment.

[0028] The outer surface of the discharge pipe 2017 is fixed with an arc bottom triangular piece 3, one side of the arc bottom triangular piece 3 is fixed on one side of the feeding wall 2. In the process of repeatedly leaving and entering the discharge pipe 2017, the discharge pipe 2017 will be continuously vibrated, which will have a certain influence on the fixing mode between the discharge pipe 2017 and the feeding wall 2, and will gradually relax, which will reduce the structural stability of the equipment, thereby negatively affecting the service life of the equipment, reducing the service life of the equipment. The installation of the arc bottom triangular piece 3 solves the problem, which realizes the accurate and perfect fitting of the arc bottom of the triangular piece with the outer surface of the discharge pipe 2017 through the ingenious design of the arc bottom triangular piece 3. This fitting not only ensures the integrity of the structure, but also provides convenience for workers, so that they can apply structural adhesive to the contact surface of the arc bottom triangular piece 3 and the discharge pipe 2017 for fixation. This fixing mode is not only stable, but also can provide a certain buffer space and shock absorption effect to reduce the impact of material flow on the discharge pipe 2017. At the same time, the arc bottom triangular piece 3 is designed in a stable triangular shape, which has high stability in structural mechanics and can effectively reinforce the fixing effect between the discharge pipe 2017 and the feeding wall 2. Through this double protection, the stability of the assembly is greatly improved, thereby significantly improving the overall durability and reliability of the equipment, providing a solid guarantee for long-term stable operation, thereby greatly increasing the stability of the assembly and improving the service life of the equipment. The side of the feeding equipment 102 is fixed with a blocking net 107. During storage and feeding, the feeding equipment 102 will continuously generate heat, which will gradually accumulate and increase the surface temperature of the equipment to a high temperature. However, this high temperature state poses a potential risk to workers. If the operation is not proper or due to negligence, the worker touches the heat dissipation position of the equipment, which may cause burns and serious harm to personal safety. The installation of the blocking net 107 solves the problem, which realizes that the workers are always kept a certain distance from the heat dissipation position of the equipment through the blocking net 107, preventing workers from contacting the high temperature position and preventing personnel from being injured, thereby improving the production safety. The drying room 1 is provided with a maintenance door 103 on one side, which is convenient for workers to maintain and repair in the later period, thereby improving the user experience. The drying room 1 is provided with a wire arranging top rack 104 on the top, which is convenient for the equipment to arrange wires based on it, thereby improving the applicability of the equipment. The drying room 1 is provided with an air exchange window 106 on the back, which is convenient for rapid cooling and air exchange, thereby improving the use effect of the equipment.

[0029] The utility model discloses a working principle: when the staff supplies material to the drying room 1, starts motor 2015 and makes driving gear 2014 rotate clockwise through the connecting axle and drives the short connecting rod 2011 to rotate clockwise, simultaneously, driving gear 2014 engages and drives the other side driving gear 2014 to rotate counterclockwise, and the short connecting rod 2011 and the bottom end connecting rod 209 rotate clockwise respectively with hollow bearing column 2013 and high bearing column 2010 as the axle, pull the multi-shaft connecting rod 208 to rotate clockwise with its center as the axle, make big arm connecting rod 207 and small arm connecting rod 2012 reciprocate up and down, and the bottom end swings left and right, pull the upper wing plate 206 and the lower wing plate 2016 to make the upper pressing disc 202 and the lower pressing disc 204 staggered up and down, when the upper pressing disc 202 goes up and the lower pressing disc 204 goes down, the space of the middle part of the continuous bin 201 that is divided by the upper pressing disc 202 and the lower pressing disc 204 increases, and negative pressure is generated, due to the restriction of the check valve, the valve body assembly of the discharge pipe 2017 moves right to close the discharge pipe 2017, and the valve body assembly of the feeding pipe 105 moves left to open the feeding pipe 105, and the protein peptide material enters the continuous bin 201 from the feeding pipe 105, when the upper pressing disc 202 goes down and the lower pressing disc 204 goes up, the upper pressing disc 202 and the lower pressing disc 204 press the space of the middle part of the continuous bin 201 that is divided by the upper pressing disc 202 and the lower pressing disc 204 simultaneously, make the pressure increase, the valve body assembly of the discharge pipe 2017 moves left to open the discharge pipe 2017, and the valve body assembly of the feeding pipe 105 moves right to close the feeding pipe 105, and the protein peptide material is sprayed into the drying room 1 from the atomizing end 2018, and the space of the top part of the continuous bin 201 that is divided by the upper pressing disc 202 increases, the protein peptide material enters the space of the top part of the continuous bin 201 that is divided by the upper pressing disc 202 from the feeding pipe 105, when the upper pressing disc 202 goes up and the lower pressing disc 204 goes down again, the pressure of the top part of space is pressed by the upper pressing disc 202, and the protein peptide material is pressed out, so that the mechanism can supply the material into the drying room 1 repeatedly without interruption during reciprocating motion, and the equipment on-line time is greatly reduced.

[0030] In the utility model, unless another definite provision and limitation, first feature is in second feature " on " or " under " second feature can include first and second feature direct contact, also can include first and second feature is not direct contact but is through the contact between other features between them. Moreover, first feature is in second feature " on " " above " and " upper surface " include first feature is in second feature right above and oblique above, or only indicate first feature horizontal height is higher than second feature. First feature is in second feature " under " " below " and " lower surface " include first feature is in second feature right below and oblique below, or only indicate first feature horizontal height is less than second feature.

[0031] The basic principle, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only preferred examples of the present application and are not intended to limit the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A heat pump drying device for extracting raw materials of protein peptides, comprising a drying room (1) and a feeding device (102), wherein an inner chamber (101) is provided on the inner wall of the drying room (1), and a plurality of feeding pipes (105) are fixed on one side of the feeding device (102), characterized in that: The inner wall of the inner bin (101) is fixed with a feed wall (2), the inner wall of the feed wall (2) is fixed with a connected bin (201), the peripheral surface of the connected bin (201) is fixed to one end of the feed pipe (105), the peripheral surface of the connected bin (201) is fixed with a discharge pipe (2017), one end of the discharge pipe (2017) is fixed with an atomizing end (2018), and the inner wall of the connected bin (201) is slidably connected with an upper pressure The upper pressure plate (202) is provided with a long thin connecting column (203) fixed at the bottom, a lower wing plate (2016) is fixed at one end of the long thin connecting column (203), one end of the lower wing plate (2016) is rotatably connected to a small arm connecting rod (2012), the circumference of the long thin connecting column (203) is slidably connected to a lower pressure plate (204), and a bottom sleeve (205) is fixed at the bottom of the lower pressure plate (204).

2. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: The inner wall of the bottom sleeve (205) is slidably connected to the circumference of the long and thin connecting column (203), and the circumference of the bottom sleeve (205) is fixed with an upper wing plate (206), one end of the upper wing plate (206) is rotatably connected to a large arm connecting rod (207), the bottom of one end of the large arm connecting rod (207) is rotatably connected to a bottom end connecting rod (209), one end of the bottom end connecting rod (209) is rotatably connected to a high bearing column (210), the bottom of the high bearing column (210) is fixed to the inner wall of the feed wall (2), the top of one end of the large arm connecting rod (207) is rotatably connected to a multi-axis connecting rod (208), one end of the multi-axis connecting rod (208) is connected to the small arm connecting rod ( 2012), one end of the arm connecting rod (2012) is rotatably connected, one end of the arm connecting rod (2012) is rotatably connected to a short connecting rod (2011), one end of the short connecting rod (2011) is rotatably connected to a hollow bearing column (213), one end of the short connecting rod (2011) is fixed with a driving gear (214) through a connecting shaft, the peripheral surface of the connecting shaft is rotatably connected to the inner wall of the hollow bearing column (2013), the hollow bearing column (2013) is fixed to the inner wall of the feed wall (2) through a fixing column, a motor (215) is fixed to the bottom of the driving gear (2014), and one end of the feed pipe (105) and one end of the discharge pipe (217) are both provided with a one-way valve.

3. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: An arc-bottom triangular piece (3) is fixed on the circumferential surface of the discharge pipe (2017), and one side of the arc-bottom triangular piece (3) is fixed to one side of the feed wall (2).

4. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: A blocking net (107) is fixed on the side of the feeding device (102).

5. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: An inspection door (103) is provided on one side of the drying room (1).

6. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: A wire arrangement top frame (104) is fixed on the top of the drying room (1).

7. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: A ventilation window (106) is provided on the back of the drying room (1).

8. The heat pump drying equipment for protein peptide extraction raw materials according to claim 1, characterized in that: The length of the continuous chamber (201) is greater than the moving length of the upper pressure plate (202) and the lower pressure plate (204).