Taurine liquid filtering and separating device with heat recovery function
By designing a taurine liquid filtration and separation device with heat recovery function, the high cost and low efficiency problems caused by the high-temperature heating and separation process of taurine liquid in the prior art are solved, and the efficient and low-cost separation effect is achieved.
Patent Information
- Application Number
- CN202510091322.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-21
- Publication Date
- 2025-06-06
AI Technical Summary
In the prior art, the high-temperature heating separation process of taurine liquid leads to high working costs, and the accumulated sodium sulfate and insoluble matter affect the separation efficiency.
A taurine liquid filtration and separation device with heat recovery function is designed, including a tank assembly, a top cover, a support assembly, a rotating assembly and a heat recovery assembly. The heat recovery assembly absorbs heat leaked from the tank body and converts it into electrical energy to control the operation of the solenoid valve and the rotating assembly.
The efficient separation of taurine liquid is achieved, which reduces working costs, improves separation efficiency, and reduces the accumulation of sodium sulfate and insolubles.
Smart Images

Figure CN120094284A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of solid-liquid separation, in particular to a taurine liquid filtering and separating device with a heat recovery function. Background Art
[0002] Taurine is an important amino acid, which is mainly used in health care products, food additives and medicine. Its production process mainly includes the following steps: 1. The common raw materials of taurine are generally ox horns, ox bones, beef, ox blood, etc. These materials need to be ground and cleaned to obtain raw materials with higher purity; 2. The preliminarily treated ox horns are cut and cleaned, and then steamed at high temperature to remove the impurities such as bones and fat inside to obtain purer raw materials; 3. The obtained ox horn bone is heated, and a catalyst such as acid or alkali is added to carry out a hydrolysis reaction. The hydrolysis reaction is generally carried out under high temperature and high pressure conditions to increase the reaction rate and yield. The hydrolysis reaction will decompose the protein in the ox horn bone into polypeptides and amino acids; 4. The mixture obtained by the hydrolysis reaction is filtered, centrifuged and impurity-removed to remove impurities and separate taurine from the mixture; 5. The separated taurine solution is crystallized, and the taurine is separated and formed into crystals by cooling or adding solvents.
[0003] In the prior art, taurine is basically located inside the tank and is heated at high temperature, which needs to be carried out below 110°C to separate the liquid phase. The high-temperature process only plays a heating and separation function, and the generated taurine liquid is still in a high-temperature state and needs to be cooled, resulting in high working costs. In addition, the accumulated sodium sulfate and insoluble matter will affect the subsequent separation of the taurine liquid, and the separation efficiency is low. Summary of the invention
[0004] The object of the present invention is to provide a taurine liquid filtering and separating device with a heat recovery function to solve the problems raised in the prior art.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a technical solution of a taurine liquid filtration and separation device with a heat recovery function, the filtration and separation device comprising a tank assembly, a top cover, a support assembly, a rotating assembly and a heat recovery assembly, a top cover is provided on the top of the tank assembly, a rotating assembly is provided inside the tank assembly, the rotating assembly is used to control the rotation of the filter cartridge, a support assembly is provided at the bottom of the tank assembly, a heat recovery assembly is provided at the top of the tank assembly, the heat recovery assembly is used to absorb the heat leaked from the tank assembly, and convert it into electrical energy to control the operation of the rotating assembly.
[0006] The taurine material is stored in the filtering and separating device, and then high-quality taurine raw materials are processed through high-temperature heating. Impurities are left in place as solid waste. The tank assembly is used to place the taurine material in the device, the top cover is used as a capping cover, the support assembly is used to support the tank assembly, the rotating assembly is used to control the rotation of the filter cartridge in the tank assembly, thereby accelerating the processing efficiency of the taurine material in the filter cartridge, the heat recovery assembly is used to absorb the high temperature of the raw liquid itself, and convert the electricity through the high temperature to control the operation of the solenoid valve, so that when the device processes the taurine material, the high temperature dissipated can control the operation of the solenoid valve, and then the filter cartridge is used to place the taurine material and is located in the assembly.
[0007] Furthermore, a feed port is provided at the top of the tank body, a mounting block is provided at the top of the outer wall of the tank body, the mounting block is fixedly connected to the inner wall of the tank body, a clamping groove is provided on the mounting block, an upper mounting plate is provided on the mounting block, a clamping block is provided at the bottom end of the upper mounting plate, the clamping block cooperates with the clamping groove, a filter cartridge is provided at the bottom end, and a connecting piece is provided at the bottom end of the tank body outer wall, and the connecting piece is fixedly connected to the tank body.
[0008] A feed port is provided at the top of the tank body, and the feed port is used for the staff to put taurine material into the tank body. A mounting block is provided on the inner wall of the tank body, and the mounting block is located at one end of the inner wall of the tank body close to the feed port. The mounting block is an annular block, which is used to cooperate with the upper mounting plate. The bottom end of the upper mounting plate is fixedly connected to a clamping block, and the clamping block cooperates with the clamping groove on the mounting block. The filter cartridge installed at the bottom end of the upper mounting plate is single or multiple, and is set according to the capacity. The outer wall of the tank body is fixedly connected to a connecting piece, and the connecting piece is located at the bottom end of the outer side of the tank body. The connecting piece is used to connect to the support assembly.
[0009] The tank body is divided into an upper cavity and a lower cavity, with a mounting block located on the inner wall of the upper cavity, and a heat recovery component located in the lower cavity. A collecting plate is provided between the upper and lower cavities, and the collecting plate is fixedly connected to the inner wall of the tank body. A liquid hole is provided in the middle of the collecting plate, and a liquid pipe is provided at the bottom of the collecting plate, which is connected to the liquid hole. A raw liquid port is provided at the bottom of the lower cavity, and the raw liquid hole is connected to the liquid pipe. A waste liquid port is provided on one side of the raw liquid port, and the waste liquid port is connected to the liquid pipe. Solenoid valves are provided at both the raw liquid port and the waste liquid port.
[0010] Specifically, the tank body is divided into two cavities, wherein the upper cavity is used to store taurine material and heat and separate it. The separated liquid will naturally fall onto the collecting plate and then gather at the liquid through hole. The raw liquid enters the liquid through tube through the liquid through hole. Because the liquid through tube is an annular tube, the heat recovery component is located outside the annular tube, so that the heat emitted by the raw liquid will be absorbed by the heat recovery component and generate electricity, thereby cooling the raw liquid body and facilitating subsequent recovery. Then the raw liquid port is used to collect the taurine raw liquid produced after high-temperature processing. After work, residual waste will remain in the device, which needs to be cleaned, so that the cleaned wastewater needs to be collected and processed. The two solenoid valves are one open and one closed, and are both controlled by the heat recovery component. When the heat recovery component is not working, the solenoid valve of the waste liquid port is in the open state, and the solenoid valve of the raw liquid port is in the closed state, and the wastewater will only pass through the waste liquid port. When the heat recovery component is working, the solenoid valve of the waste liquid port is in the closed state, and the solenoid valve of the raw liquid port is in the open state, and the raw liquid will only pass through the raw liquid port.
[0011] Furthermore, the rotating assembly includes a rotating rod, a rotating groove is opened on the upper surface of the upper mounting plate, the rotating rod cooperates with the rotating groove, the rotating rod is clamped and connected to the top cover, a movable part is provided at the top of the rotating rod, the bottom end of the movable part is fixedly connected to the top of the rotating rod, a transmission rod is provided at the top of the movable part, the bottom end of the transmission rod is fixedly connected to the top of the movable part, a rotating motor is provided at the top of the top cover, the fixed end of the rotating motor is fixedly connected to the top cover, and the output end of the rotating motor is connected to the transmission rod.
[0012] The rotating assembly is used to control the rotation of the mounting block. The rotating rod is perpendicular to the mounting block. One end of the rotating rod cooperates with the rotating groove. The rotating motor is located on the upper surface of the top cover. The rotating motor is electrically connected to an external power supply. The fixed end of the rotating motor is fixedly connected to the upper surface of the top cover. Its transmission rod, movable part and rotating rod are on the same central axis. The output end of the rotating motor is connected to the transmission rod, so that the rotating motor is used as a power source to control the rotation of the rotating rod. The rotating rod drives the movable part to rotate, and the movable part drives the rotating rod to rotate. The rotating rod drives the upper mounting plate to rotate, and the upper mounting plate drives the filter cartridge to rotate, so that the taurine material in the filter cartridge will generate centrifugal force when rotating, thereby accelerating the filtration efficiency of the taurine material. The movable part is used to provide activity space so that the rotating rod has space to move up and down during the rotation process.
[0013] Furthermore, a slide groove is provided on the inner wall of the mounting block, and sliders are provided at both ends of the upper mounting plate. The sliders are rotatably connected to the mounting block, the slide groove is provided with a secondary tooth edge, and the slider is provided with a primary tooth edge.
[0014] The slide groove is wavy, and sliders are provided at both horizontal ends of the mounting block. The sliders are rotatably connected to both ends of the mounting block, so that when the upper mounting plate cooperates with the mounting block, the slider cooperates with the slide groove. When the rotating rod drives the upper mounting plate to rotate, the upper mounting plate will drive the slider to move in an arc shape, and the slider will move with the slide groove. Because the slide groove is wavy, when the slider moves, the upper mounting plate will move up and down, thereby increasing the overall centrifugal force and accelerating the filtration efficiency of the taurine material.
[0015] Furthermore, the heat recovery component includes an inner semiconductor and a main semiconductor. The inner semiconductor is fixedly connected to the outer wall of the tank body, a conductive sheet is provided outside the inner semiconductor, a main semiconductor is provided outside the inner semiconductor, the main semiconductor is sleeved on the inner semiconductor, the inner semiconductor is electrically connected to one end of the conductive sheet, the main semiconductor is electrically connected to the other end of the conductive sheet, a shell is sleeved around the main semiconductor, and the shell is fixedly connected to the outer wall.
[0016] The heat recovery component is used to absorb the high temperature leaked from the outside of the tank body and convert the absorbed high temperature into electricity. The heat recovery component is electrically connected to the solenoid valve, wherein the inner semiconductor and the main semiconductor are two different semiconductor materials, which are connected by a conductive sheet to form a loop. During use, the inner semiconductor is closest to the outer wall of the tank body and is subjected to the highest temperature, so that the temperature of the inner semiconductor body is higher. Then the external main semiconductor is located on the side of the inner semiconductor away from the tank body, and the main semiconductor is less affected by the temperature, so that the temperatures of the two semiconductor bodies are different, and a temperature difference electromotive force will be generated in the loop due to the temperature difference. Current will appear in the loop, and when the current passes through the nodes of different semiconductors, heat absorption and heat release will occur at the nodes. The state of heat absorption and heat release is determined by the direction of the current, so that the overall temperature of the two semiconductors is different, one of which is in a high temperature state and the other is in a low temperature state. The semiconductor in the low temperature state is on the outer wall of the cylinder and has limited effect on the temperature inside the cylinder. Then, through this phenomenon, when high-temperature processing continues in the tank body, its heat recovery component will absorb the heat leaked from the tank body and convert it into electrical energy for controlling the operation of the solenoid valve.
[0017] Furthermore, a through hole is opened on the upper mounting plate, a filter cartridge is arranged at the through hole, a limit block is arranged on the outer wall at the top end of the filter cartridge, the limit block is fixedly connected to the filter cartridge, and a buckle is arranged at the top end of the filter cartridge.
[0018] The through holes are used to place the filter cartridge, and the number of the through holes is consistent with the filter cartridge. A limit block is provided at the top of the filter cartridge, the limit block is located at the mouth of the filter cartridge and is fixedly connected to the mouth of the filter cartridge. The limit block is used to make the filter cartridge match the through hole. A buckle is provided at the top of the filter cartridge, the buckle is located at the mouth of the filter cartridge, and the buckle is used for the staff to lift the filter cartridge or place the filter cartridge at the through hole.
[0019] Furthermore, the transmission rod passes through the top cover, and the transmission rod body is rotatably connected to the top cover.
[0020] The transmission rod vertically penetrates the top cover, a bearing is arranged in the middle of the top cover, the outer wall of the outer bearing is fixedly connected to the top cover, the middle space of the inner bearing is fixedly connected to the transmission rod, and the inner bearing is rotatably connected to the outer bearing.
[0021] Furthermore, the support assembly includes a lower mounting plate and support feet. The lower mounting plate is provided with an inner groove, the inner groove cooperates with the connecting piece, and the bottom end of the lower mounting plate is provided with a support foot, which is fixedly connected to the lower mounting plate.
[0022] The supporting assembly is used to support the overall structure. An inner groove is opened in the middle of the lower mounting plate, and the inner groove of the lower mounting plate cooperates with the connecting piece. A plurality of supporting feet are provided at the bottom end of the lower mounting plate, and the top of the supporting feet is fixedly connected to the bottom end of the lower mounting plate, thereby playing a supporting role.
[0023] Compared with the prior art, the present invention has the following beneficial effects: 1. When the present invention is working, the high temperature of the raw liquid inside the tank body will affect the internal semiconductor, and the temperature of the internal semiconductor body is relatively high. There will be a difference in the temperature of the two semiconductor bodies, so that a thermoelectric potential will be generated in the loop due to the temperature difference. Current will appear in the loop to control the opening of the solenoid valve, thereby realizing automatic control of the solenoid valve through the separation process to allow the raw liquid to pass through the raw liquid port. When the device is cleaning, the difference between the internal temperature of the tank body and the external temperature is small, and it is impossible to control the opening of the solenoid valve at the raw liquid port and the closing of the solenoid valve at the waste liquid port. The waste liquid generated by cleaning will be directly discharged through the waste liquid port.
[0024] 2. In the present invention, the rotating motor is used as a power source to control the rotation of the rotating rod, the rotating rod drives the movable part to rotate, the movable part drives the rotating rod to rotate, the rotating rod drives the upper mounting plate to rotate, and the upper mounting plate drives the filter cartridge to rotate, so that the taurine material in the filter cartridge will generate centrifugal force when rotating, thereby accelerating the taurine material filtration efficiency.
[0025] 3. In the present invention, the mounting block is provided with a slide groove, wherein the slider moves along with the slide groove, and because the slide groove is wavy, when the slider moves, the upper mounting plate moves up and down, thereby increasing the overall centrifugal force and accelerating the filtration efficiency of the taurine material. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a structural schematic diagram of the connecting piece of the present invention; Figure 3 It is a schematic diagram of the structure of the support assembly of the present invention; Figure 4 It is a structural schematic diagram of the heat recovery component of the present invention; Figure 5 It is a structural schematic diagram of the mounting block of the present invention; Figure 6It is a schematic diagram of the structure of the top cover of the present invention; Figure 7 It is a structural schematic diagram of the upper mounting plate of the present invention; Figure 8 It is a structural schematic diagram of the rotating assembly of the present invention; Fig. 9 It is a structural schematic diagram of the filter cartridge of the present invention; Fig.10 It is a schematic structural diagram of the lower cavity of the present invention.
[0027] In the figure: 1. tank assembly; 11. tank body; 111. upper cavity; 112. lower cavity; 113. raw liquid port; 114. waste liquid port; 12. mounting block; 121. snap-fit groove; 123. slide groove; 124. secondary tooth edge; 13. upper mounting plate; 131. through hole; 132. rotating groove; 14. snap-fit piece; 15. connector; 16. slider; 161. main tooth edge; 17. collecting plate; 18. liquid passage; 19. solenoid valve; 2. top cover; 3. support assembly; 31. lower mounting plate; 32. support foot; 4. rotating assembly; 41. rotating rod; 42. movable part; 43. transmission rod; 44. rotating motor; 5. heat recovery assembly; 51. inner semiconductor; 52. main semiconductor; 53. conductive sheet; 54. shell; 7. filter cartridge; 8. limit block; 9. buckle. DETAILED DESCRIPTION
[0028] Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in the field without making any creative work shall fall within the scope of protection of the present invention. Example
[0029] like Figure 1 to Figure 10 As shown, the present invention provides a technical solution of a taurine liquid filtering and separating device with a heat recovery function, the filtering and separating device comprises a tank assembly 1, a top cover 2, a support assembly 3, a rotating assembly 4 and a heat recovery assembly 5, the top of the tank assembly 1 is provided with a top cover 2, the inside of the tank assembly 1 is provided with a rotating assembly 4, the rotating assembly 4 is used to control the rotation of the filter cartridge 7, the bottom of the tank assembly 1 is provided with a support assembly 3, the top of the tank assembly 1 is provided with a heat recovery assembly 5, the heat recovery assembly 5 is used to absorb the heat leaked from the tank assembly 1, and convert it into electrical energy to control the operation of the solenoid valve 19.
[0030] Specifically, the taurine material is stored in the filtering and separating device, and then high-quality taurine raw materials are processed through high-temperature heating, and impurities are left in place as solid waste. The tank assembly 1 is used to place the taurine material in the device, the top cover 2 serves as the capping cover 2, the support assembly 3 is used to support the tank assembly 1, and the rotating assembly 4 is used to control the rotation of the filter cartridge 7 in the tank assembly 1, thereby accelerating the processing efficiency of the taurine material in the filter cartridge 7, and the heat recovery assembly 5 is used to absorb the high temperature of the raw liquid itself, and convert the electricity through the high temperature to control the operation of the solenoid valve 19, so that when the device processes the taurine material, the high temperature dissipated can control the operation of the solenoid valve 19, and then the filter cartridge 7 is used to place the taurine material and is located in the assembly.
[0031] like Figure 1 , Figure 2 , Figure 5 , Fig. 9 As shown, a feed port is provided at the top of the tank body, a mounting block 12 is provided at the top of the outer wall of the tank body, the mounting block 12 is fixedly connected to the inner wall of the tank body, a clamping groove 121 is provided at the mounting block 12, an upper mounting plate 13 is provided on the mounting block 12, a clamping block is provided at the bottom end of the upper mounting plate 13, the clamping block cooperates with the clamping groove 121, a filter cartridge 7 is provided at the bottom end, and a connecting piece 15 is provided at the bottom end of the outer wall of the tank body, and the connecting piece 15 is fixedly connected to the tank body.
[0032] Specifically, a feed port is provided at the top of the tank body, and the feed port is used for the staff to put taurine material into the tank body. A mounting block 12 is provided on the inner wall of the tank body, and the mounting block 12 is located on the inner wall of the tank body close to one end of the feed port. The mounting block 12 is an annular block, which is used to cooperate with the upper mounting plate 13. The bottom end of the upper mounting plate 13 is fixedly connected to a clamping block, and the clamping block cooperates with the clamping groove 121 on the mounting block 12. The filter cartridge 7 installed at the bottom end of the upper mounting plate 13 is single or multiple, and is set according to the capacity. The outer wall of the tank body is fixedly connected to a connecting piece 15, and the connecting piece 15 is located at the bottom end of the outer side of the tank body. The connecting piece 15 is used to connect with the support assembly 3.
[0033] like Fig.10 As shown, the tank body 11 is divided into an upper cavity 111 and a lower cavity 112, the mounting block 12 is located on the inner wall of the upper cavity 111, the heat recovery component 5 is located in the lower cavity 112, a collecting plate 17 is provided between the upper cavity 111 and the lower cavity 112, the collecting plate 17 is fixedly connected to the inner wall of the tank body 11, a liquid hole is provided in the middle of the collecting plate 17, a liquid pipe 18 is provided at the bottom end of the collecting plate 17, the liquid pipe 18 is connected to the liquid hole, a raw liquid port 113 is provided at the bottom end of the lower cavity 112, the raw liquid port 113 is connected to the liquid pipe 18, a waste liquid port 114 is provided on one side of the raw liquid port 113, the waste liquid port 114 is connected to the liquid pipe 18, and solenoid valves 19 are provided at both the raw liquid port 113 and the waste liquid port 114.
[0034] Specifically, the tank body 11 is divided into two cavities, wherein the upper cavity 111 is used to store taurine material and heat and separate it. The separated liquid will naturally fall onto the collecting plate 17 and then gather at the liquid through hole. The raw liquid enters the liquid through pipe 18 through the liquid through hole. Since the liquid through pipe 18 is an annular tube, the heat recovery component 5 is located outside the annular tube, so that the heat emitted by the raw liquid will be absorbed by the heat recovery component 5 and generate electricity, so as to realize the cooling of the raw liquid body and facilitate subsequent recovery. Then the raw liquid port 113 is used to collect the taurine raw liquid produced after high-temperature processing. After work, , there will be residual waste materials in the device, which need to be cleaned, and thus the cleaned wastewater needs to be collected and processed, wherein the two solenoid valves 19 are one open and one closed, both of which are controlled by the heat recovery component 5. When the heat recovery component 5 is not working, the solenoid valve 19 of the waste liquid port 114 is in the open state, and the solenoid valve 19 of the raw liquid port 113 is in the closed state, and the wastewater will only pass through the waste liquid port 114. When the heat recovery component 5 is working, the solenoid valve 19 of the waste liquid port 114 is in the closed state, and the solenoid valve 19 of the raw liquid port 113 is in the open state, and the raw liquid will only pass through the raw liquid port 113.
[0035] like Figure 6 , Figure 8 As shown, the rotating assembly 4 includes a rotating rod 41, a rotating groove 132 is opened on the upper surface of the upper mounting plate 13, the rotating rod 41 cooperates with the rotating groove 132, the rotating rod 41 is snap-connected with the top cover 2, a movable part 42 is provided at the top of the rotating rod 41, the bottom end of the movable part 42 is fixedly connected to the top of the rotating rod 41, a transmission rod 43 is provided at the top of the movable part 42, the bottom end of the transmission rod 43 is fixedly connected to the top of the movable part 42, a rotating motor 44 is provided at the top of the top cover 2, the fixed end of the rotating motor 44 is fixedly connected to the top cover 2, and the output end of the rotating motor 44 is connected to the transmission rod 43.
[0036] Specifically, the rotating assembly 4 is used to control the rotation of the mounting block 12, the rotating rod 41 is perpendicular to the mounting block 12, one end of the rotating rod 41 cooperates with the rotating groove 132, the rotating motor 44 is located on the upper surface of the top cover 2, the rotating motor 44 is electrically connected to the external power supply, the fixed end of the rotating motor 44 is fixedly connected to the upper surface of the top cover 2, its transmission rod 43, the movable part 42 and the rotating rod 41 are on the same central axis, the output end of the rotating motor 44 is connected to the transmission rod 43, so that the rotating motor 44 is used as a power source to control the rotation of the rotating rod 41, the rotating rod 41 drives the movable part 42 to rotate, the movable part 42 drives the rotating rod 41 to rotate, the rotating rod 41 drives the upper mounting plate 13 to rotate, and the upper mounting plate 13 drives the filter cartridge 7 to rotate, so that the taurine material in the filter cartridge 7 will generate centrifugal force when rotating, thereby accelerating the taurine material filtration efficiency, wherein the movable part 42 is used to provide a movable space so that the rotating rod 41 has space to move up and down during the rotation process.
[0037] like Figure 5As shown, a slide groove 123 is provided on the inner wall of the mounting block 12, and sliders 16 are provided at both ends of the upper mounting plate 13. The sliders 16 are rotatably connected to the mounting block 12, and a secondary tooth edge 124 is provided on the slide groove 123, and a main tooth edge 161 is provided on the slider 16.
[0038] Specifically, the slide groove 123 is wavy. Figure 5 As shown, sliders 16 are provided at both horizontal ends of the mounting block 12, and the sliders 16 are rotatably connected to both ends of the mounting block 12, so that when the upper mounting plate 13 cooperates with the mounting block 12, the sliders 16 cooperate with the slide groove 123, and when the rotating rod 41 drives the upper mounting plate 13 to rotate, the upper mounting plate 13 will drive the slider 16 to move in an arc shape, and the slider 16 will move with the slide groove 123. Because the slide groove 123 is wavy, when the slider 16 moves, the upper mounting plate 13 will move up and down, thereby increasing the overall centrifugal force and accelerating the filtration efficiency of the taurine material.
[0039] like Figure 4 As shown, the heat recovery component 5 includes an inner semiconductor 51 and a main semiconductor 52. The inner semiconductor 51 is fixedly connected to the outer wall of the tank body, a conductive sheet 53 is arranged outside the inner semiconductor 51, a main semiconductor 52 is arranged outside the inner semiconductor 51, the main semiconductor 52 is sleeved on the inner semiconductor 51, the inner semiconductor 51 is electrically connected to one end of the conductive sheet 53, the main semiconductor 52 is electrically connected to the other end of the conductive sheet 53, and a shell 54 is arranged outside the main semiconductor 52, which is fixedly connected to the outer wall of the tank body.
[0040] Specifically, the heat recovery component 5 is used to absorb the high temperature leaked from the raw liquid and convert the absorbed high temperature into electricity. The heat recovery component 5 is electrically connected to the solenoid valve 19, wherein the inner semiconductor 51 and the main semiconductor 52 are two different semiconductor materials, which are connected to form a loop through a conductive sheet 53. During use, the inner semiconductor 51 is closest to the outer wall of the tank body and is subjected to the highest temperature, so that the temperature of the inner semiconductor 51 body is higher. Then, the external main semiconductor 52 is located on the side of the inner semiconductor 51 away from the tank body, and the main semiconductor 52 is less affected by the temperature, so that the temperatures of the two semiconductor bodies are different, from In the loop, a temperature difference electromotive force will be generated due to the temperature difference, and an electric current will appear in the loop. When the current passes through the nodes of different semiconductors, heat absorption and heat release will occur at the nodes. The state of heat absorption and heat release is determined by the direction of the current, so that the overall temperatures of the two semiconductors are different, one of which is in a high-temperature state and the other is in a low-temperature state. The semiconductor in the low-temperature state is on the outer wall of the cylinder and has limited effect on the temperature inside the cylinder. Then, through this phenomenon, when high-temperature processing is continued in the tank body, the heat recovery component 5 will absorb the heat leaked from the tank body and convert it into electrical energy for controlling the operation of the solenoid valve 19.
[0041] like Figure 7As shown, a through hole 131 is opened on the upper mounting plate 13, a filter cartridge 7 is arranged at the through hole 131, a limit block 8 is arranged on the outer wall of the top end of the filter cartridge 7, the limit block 8 is fixedly connected to the filter cartridge 7, and a buckle 9 is arranged on the top end of the filter cartridge 7.
[0042] Specifically, the through hole 131 is used to place the filter cartridge 7, and the number of the through holes 131 is consistent with the filter cartridge 7. A limit block 8 is provided at the top of the filter cartridge 7. The limit block 8 is located at the mouth of the filter cartridge 7 and is fixedly connected to the mouth of the filter cartridge 7. The limit block 8 is used to make the filter cartridge 7 cooperate with the through hole 131. A buckle 9 is provided at the top of the filter cartridge 7. The buckle 9 is located at the mouth of the filter cartridge 7. The buckle 9 is used for the staff to lift the filter cartridge 7, or place the filter cartridge 7 at the through hole 131.
[0043] like Figure 6 As shown, the transmission rod 43 passes through the top cover 2, and the shaft of the transmission rod 43 is rotatably connected to the top cover 2.
[0044] Specifically, the transmission rod 43 vertically passes through the top cover 2, a bearing is provided in the middle of the top cover 2, the outer wall of the outer bearing is fixedly connected to the top cover 2, the middle space of the inner bearing is fixedly connected to the transmission rod 43, and the inner bearing is rotatably connected to the outer bearing.
[0045] like Figure 3 As shown, the support assembly 3 includes a lower mounting plate 31 and a support foot 32. The lower mounting plate 31 is provided with an inner groove, which cooperates with the connecting piece 15. The bottom end of the lower mounting plate 31 is provided with a support foot 32, and the support foot 32 is fixedly connected to the lower mounting plate 31.
[0046] Specifically, the support assembly 3 is used to support the overall structure. An inner groove is opened in the middle of the lower mounting plate 31. The inner groove of the lower mounting plate 31 cooperates with the connecting piece 15. A plurality of supporting feet 32 are provided at the bottom end of the lower mounting plate 31. The top end of the supporting feet 32 is fixedly connected to the bottom end of the lower mounting plate 31, thereby playing a supporting role.
[0047] Working principle: the staff first places the filter cartridge 7 on the through hole 131 of the upper mounting plate 13 through the buckle 9 of the filter cartridge 7, and then places the upper mounting plate 13 on the mounting block 12. The rotating blocks at both ends of the upper mounting block 12 will cooperate with the slide groove 123, and the clamping piece 14 at the bottom of the upper mounting block 12 will cooperate with the clamping groove 121. Then the top cover 2 is engaged with the feed port of the tank body 11 to close it. At this time, the rotating rod 41 in the rotating assembly 4 will cooperate with the upper mounting plate 13. When the device is working, the high temperature of the raw liquid will affect the inner semiconductor 51, so that the temperature of the inner semiconductor 51 body is higher. Then the external main semiconductor 52 is located on the side of the inner semiconductor 51 away from the tank body. The main semiconductor 52 is less affected by the temperature, so that the temperatures of the two semiconductor bodies are different, so that a temperature difference electric current will be generated in the loop due to the temperature difference. Potential, current will appear in the circuit, which is used to control the operation of the solenoid valve 19, control the opening of the solenoid valve 19 of the raw liquid port 113, and the rotating motor 44 is used as a power source to control the rotation of the rotating rod 41, the rotating rod 41 drives the movable part 42 to rotate, the movable part 42 drives the rotating rod 41 to rotate, the rotating rod 41 drives the upper mounting plate 13 to rotate, and the upper mounting plate 13 drives the filter cartridge 7 to rotate, so that the taurine material in the filter cartridge 7 will generate centrifugal force when rotating, thereby accelerating the taurine material filtration efficiency, wherein the movable part 42 is used to provide a movable space, so that the rotating rod 41 has space to move up and down during the rotation process, wherein the slider 16 will move with the slide groove 123, and because the slide groove 123 is wavy, when the slider 16 moves, the upper mounting plate 13 will move up and down, thereby increasing the overall centrifugal force and accelerating the taurine material filtration efficiency.
[0048] Finally, it should be noted that the above is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A taurine liquid filtration and separation device with heat recovery function, characterized in that: The filtering and separating device comprises a tank assembly (1), a top cover (2), a support assembly (3), a rotating assembly (4) and a heat recovery assembly (5); the top of the tank assembly (1) is provided with a top cover (2); the inside of the tank assembly (1) is provided with a rotating assembly (4); the rotating assembly (4) is used to control the rotation of a filter cartridge (7); the bottom of the tank assembly (1) is provided with a support assembly (3); the top of the tank assembly (1) is provided with a heat recovery assembly (5); the heat recovery assembly (5) is used to absorb heat leaked from the tank assembly (1) and convert it into electrical energy to control the operation of the solenoid valve (19).
2. The taurine liquid filtration and separation device with heat recovery function according to claim 1, characterized in that: The tank assembly (1) comprises a tank body (11), the top of the tank body (11) being provided with a feed port, the top of the inner wall of the tank body (11) being provided with a mounting block (12), the mounting block (12) being fixedly connected to the inner wall of the tank body (11), the mounting block (12) being provided with a clamping groove (121), an upper mounting plate (13) being provided on the mounting block (12), a clamping member (14) being provided at the bottom end of the upper mounting plate (13), the clamping member (14) being fixedly connected to the bottom end of the upper mounting plate (13), the clamping member (14) being matched with the clamping groove (121), a filter cartridge (7) being provided at the bottom end of the outer wall of the tank body (11), and a connecting member (15) being fixedly connected to the tank body (11).
3. The taurine liquid filtration and separation device with heat recovery function according to claim 2, characterized in that: The tank body (11) is divided into an upper cavity (111) and a lower cavity (112); the mounting block (12) is located on the inner wall of the upper cavity (111); the heat recovery component (5) is located in the lower cavity (112); a collecting plate (17) is provided between the upper cavity (111) and the lower cavity (112); the collecting plate (17) is fixedly connected to the inner wall of the tank body (11); a liquid through hole is provided in the middle of the collecting plate (17); ) is provided with a liquid passage pipe (18) at the bottom end, the liquid passage pipe (18) is connected to the liquid passage hole, a raw liquid port (113) is provided at the bottom end of the lower cavity (112), the raw liquid port (113) is connected to the liquid passage pipe (18), a waste liquid port (114) is provided on one side of the raw liquid port (113), the waste liquid port (114) is connected to the liquid passage pipe (18), and electromagnetic valves (19) are provided at both the raw liquid port (113) and the waste liquid port (114).
4. The taurine liquid filtration and separation device with heat recovery function according to claim 3, characterized in that: The rotating assembly (4) comprises a rotating rod (41), a rotating groove (132) is formed on the upper surface of the upper mounting plate (13), the rotating rod (41) cooperates with the rotating groove (132), the bottom end of the rotating rod (41) is connected to the upper mounting plate (13) by clamping, the top end of the rotating rod (41) is provided with a movable part (42), the bottom end of the movable part (42) is fixedly connected to the top end of the rotating rod (41), the top end of the movable part (42) is provided with a transmission rod (43), the bottom end of the transmission rod (43) is fixedly connected to the top end of the movable part (42), the top end of the top cover (2) is provided with a rotating motor (44), the fixed end of the rotating motor (44) is fixedly connected to the top cover (2), and the output end of the rotating motor (44) is connected to the transmission rod (43).
5. The taurine liquid filtration and separation device with heat recovery function according to claim 4, characterized in that: The inner wall of the mounting block (12) is provided with a slide groove (123), and sliders (16) are provided at both ends of the upper mounting plate (13). The sliders (16) are rotatably connected to the mounting block (12), the slide groove (123) is provided with a secondary tooth edge (124), and the slider (16) is provided with a primary tooth edge (161).
6. The taurine liquid filtration and separation device with heat recovery function according to claim 5, characterized in that: The heat recovery component (5) comprises an inner semiconductor (51) and a main semiconductor (52); the inner semiconductor (51) is fixedly connected to the bottom end of the outer wall of the tank body (11); a conductive sheet (53) is arranged outside the inner semiconductor (51); a main semiconductor (52) is arranged outside the inner semiconductor (51); the main semiconductor (52) is sleeved on the inner semiconductor (51); the inner semiconductor (51) is electrically connected to one end of the conductive sheet (53); the main semiconductor (52) is electrically connected to the other end of the conductive sheet (53); a shell (54) is sleeved on the outer shell of the main semiconductor (52); and the shell (54) is fixedly connected to the inner semiconductor (51).
7. The taurine liquid filtration and separation device with heat recovery function according to claim 6, characterized in that: A through hole (131) is provided on the upper mounting plate (13), a filter cartridge (7) is provided at the through hole (131), a limit block (8) is provided on the outer wall of the top end of the filter cartridge (7), the limit block (8) is fixedly connected to the filter cartridge (7), and a buckle (9) is provided at the top end of the filter cartridge (7).
8. The taurine liquid filtration and separation device with heat recovery function according to claim 7, characterized in that: The transmission rod (43) passes through the top cover (2), and the body of the transmission rod (43) is rotatably connected to the top cover (2).
9. The taurine liquid filtration and separation device with heat recovery function according to claim 8, characterized in that: The support assembly (3) comprises a lower mounting plate (31) and a support foot (32); the lower mounting plate (31) is provided with an inner groove, the inner groove cooperates with the connecting piece (15); the bottom end of the lower mounting plate (31) is provided with a support foot (32), and the support foot (32) is fixedly connected to the lower mounting plate (31).