Production device of anti-stress protein
By introducing a plasma mechanism, a stirring mechanism and a heating mechanism into the anti-stress protein production device, the problem of low hydrolysis efficiency in the existing device is solved, efficient amino acid production is achieved, the hydrolysis cycle is shortened and the production efficiency of protein amino acids is improved.
Patent Information
- Application Number
- CN202511215735.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-28
- Publication Date
- 2025-10-10
AI Technical Summary
When existing anti-stress protein production equipment produces anti-stress protein amino acids through hydrolysis, the reaction time between animal viscera and hydrolases is relatively long, resulting in low efficiency of the protein production equipment and the inability to effectively enrich organic trace elements and chelate them on different targeted amino acids.
A plasma mechanism is used to generate a high-voltage ionization channel, which ionizes the air into plasma and mixes it with the protein raw material. Combined with a stirring mechanism and a heating mechanism, the mixing efficiency and temperature control of the autolytic enzyme and the raw material are improved to form an ionic amino acid solution.
Through the nanoscale synergistic effect of plasma, the chelation and enrichment efficiency of organic trace elements is significantly improved, the hydrolysis cycle is shortened, and the amino acid production efficiency of the anti-stress protein production device is improved.
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Figure CN120758346A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of protein production, in particular to a production device of anti-stress protein. BACKGROUND
[0002] Anti-stress protein is a protein rich in sulfhydryl groups that can chelate a large number of metal ions. Anti-stress protein is widely present in humans, animals, plants and microorganisms, and its physicochemical properties are basically the same. When animals produce stress, the body needs to mobilize a large amount of anti-stress protein to balance the side effects caused by stress, and then in order to reduce the stress reaction of livestock and poultry, reduce the problems of immune reproductive performance disorder, delayed estrus, reduced pregnancy rate, abortion, reduced litter size, and immune production performance reduction, egg laying rate reduction, and slow weight gain of meat poultry, etc. caused by stress reaction, it is necessary to feed anti-stress protein during vaccination or transportation period, etc. Anti-stress protein is produced by using fresh animal viscera within four hours to hydrolyze with autolysin to form an amino acid solution, and then extracted to form an anti-stress product.
[0003] The existing anti-stress protein production device has a long hydrolysis reaction time of animal viscera and hydrolytic enzyme when producing anti-stress protein amino acid by hydrolysis method. The current protein production device only increases the hydrolysis efficiency by stirring, and cannot more efficiently enrich organic trace elements and chelate them on different targeted amino acids, resulting in a long animal viscera hydrolysis cycle of the protein production device, which affects the protein amino acid production efficiency of the anti-stress protein production device. SUMMARY
[0004] The present application aims to provide an anti-stress protein production device to solve the problems in the background art.
[0005] In order to solve the above technical problems, the present application provides the following technical scheme: an anti-stress protein production device, comprising a tank body, an external plasma mechanism is arranged on the tank body, an upper stirring mechanism is arranged on the tank body, and a heating mechanism is arranged on the outside of the tank body.
[0006] The plasma mechanism includes an air inlet hood, the right side of the air inlet hood penetrates into the interior of the tank body, the interior of the air inlet hood is clamped with two microporous filter plates, the bottom surface of the air inlet hood is fixedly connected to a connecting frame, the inner side walls of the connecting frame are respectively fixedly inlaid with an anode and a cathode, an air pump is provided below the connecting frame, the air inlet end of the air pump is fixedly connected to the bottom end of the connecting frame, the air outlet end of the air pump is fixedly connected to an air supply pipe, the inner wall of the tank body is fixedly connected to an annular pipe, the other end of the air supply pipe penetrates the tank body and is fixedly connected to the annular pipe, the outer surface of the annular pipe is fixedly connected to a plurality of exhaust pipes, the interior of each exhaust pipe is slidably connected to a closing plug, the outer surface of each exhaust pipe is fixedly connected to an exhaust plate, the inner wall of each exhaust plate contacts the outer surface of the closing plug, the inner side wall of each exhaust pipe is fixedly connected to a reset spring, and the other end of each reset spring is fixedly connected to one end of the closing plug;
[0007] The stirring mechanism includes a hollow tube, which is rotatably connected to the interior of the tank body, and the outer surface of the hollow tube is fixedly connected to a spiral frame, the outer surface of the hollow tube is sleeved with a limiting cylinder, the upper surface of the limiting cylinder is fixedly connected to the inner top wall of the tank body, the outer surface of the limiting cylinder is sleeved with two first bearings, the outer surfaces of the outer rings of the two first bearings are commonly fixedly connected to the rotating cylinder, the outer surface of the rotating cylinder is fixedly connected to three stirring frames, a servo motor is provided above the tank body, the output end of the servo motor is fixedly connected to a pinion, the outer surface of the hollow tube is fixedly connected to a large gear, the large gear is meshed with the pinion, the interior of the tank body is rotatably connected to a gear rack, the gear rack is meshed with the large gear, the outer surface of the rotating cylinder is fixedly connected to a gear disk, and the gear disk is meshed with the gear rack;
[0008] The heating mechanism includes an electric thermal resistance wire, which is fixedly connected to the inside of a hollow tube. A conductive slip ring is fixedly connected to the top of the hollow tube, and the conductive slip ring is electrically connected to the electric thermal resistance wire through a wire. The outer surface of the tank body is fixedly connected to a shell, and the inner wall of the shell is fixedly connected to a heat insulation cover. The inner wall of the heat insulation cover is fixedly connected to the outer surface of the tank body, and the inner wall of the heat insulation cover is provided with a heating coil.
[0009] Preferably, the upper surface of the tank body is fixedly connected to a feeding pipe, the bottom surface of the tank body is fixedly connected to a discharge valve, and the bottom surface of the tank body is fixedly connected to four supporting legs.
[0010] Preferably, a filter screen is fixedly connected to the inner wall of the air intake hood, and a sealing frame is fixedly connected to the upper surfaces of the two microporous filter plates, and the bottom surface of the sealing frame is in contact with the upper surface of the air intake hood.
[0011] Preferably, a plurality of stabilizing blocks are fixedly connected to the outer surface of the annular tube, and the outer surface of each of the stabilizing blocks is fixedly connected to the inner wall of the tank body.
[0012] Preferably, a telescopic rod is provided inside each of the return springs, the telescopic end of each of the telescopic rods is fixedly connected to one end of the closing plug, and the other end of each of the telescopic rods is fixedly connected to the inner wall of the exhaust pipe.
[0013] Preferably, the inner wall of the tank body is fixedly connected to a positioning frame, the outer surface of the positioning frame is sleeved with a second bearing, the bottom ends of the three stirring frames are fixedly connected to the outer surface of the outer ring of the second bearing, the inner wall of the positioning frame is fixedly connected to a third bearing, and the inner wall of the inner ring of the third bearing is fixedly connected to the outer surface of the hollow tube.
[0014] Preferably, a stabilizing seat is fixedly connected to the right side of the servo motor, and the bottom surface of the stabilizing seat is fixedly connected to the upper surface of the tank body.
[0015] Preferably, a stabilizing frame is fixedly connected to the outer surface of the conductive slip ring, and the bottom surface of the stabilizing frame is fixedly connected to the upper surface of the tank body.
[0016] Preferably, a plurality of stabilizing bars are fixedly connected to the outer surface of the heating coil, the inner wall of each stabilizing bar is fixedly connected to the outer surface of the tank body, and the outer surface of each stabilizing bar is in contact with the inner wall of the heat insulation cover.
[0017] Preferably, the outer surface of the shell is fixedly connected to a limiting frame, and the inner wall of the limiting frame is fixedly connected to the outer surface of the air supply pipe.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] First, the present invention sets up a plasma mechanism, which can form a high-voltage ionization channel using the cathode and the anode, so that the air is ionized into plasma after passing through the ionization channel. The plasma is mixed with the protein raw material and the earthworm autolytic enzyme. The nano-scale synergistic effect of the plasma can be used to improve the chelation and enrichment efficiency of organic trace elements, so that an ionic amino acid solution is formed inside the tank, effectively improving the hydrolysis efficiency of the anti-stress protein production device, shortening the animal viscera hydrolysis cycle of the protein production device, and playing a role in improving the protein amino acid production efficiency of the anti-stress protein production device.
[0020] Second, the present invention is capable of stirring the raw materials inside the tank body by setting a stirring mechanism, so that the autolytic enzyme can better contact with the plasma gas, and at the same time, it can also improve the degree of mixing between the autolytic enzyme and the raw materials, so that it can be decomposed into protein amino acids more quickly. The tank body can be heated from the inside and outside of the tank body to a suitable protein hydrolysis temperature through the heating mechanism, avoiding the temperature difference inside the tank body affecting the protein hydrolysis effect, thereby achieving the effect of further improving the hydrolysis efficiency of the anti-stress protein production device. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;
[0022] Figure 2 It is a schematic diagram of the three-dimensional structure of the shell and the heat shield of the present invention;
[0023] Figure 3 Schematic diagram of the three-dimensional structure of the annular tube of the present invention;
[0024] Figure 4 It is a schematic diagram of the three-dimensional structure of the air intake cover and the connecting frame of the present invention;
[0025] Figure 5 Schematic diagram of the cross-section of the exhaust pipe and the sealing plug of the present invention;
[0026] Figure 6 It is a schematic diagram of the three-dimensional structure of the tank body of the present invention;
[0027] Figure 7 It is a schematic diagram of the three-dimensional structure of the large gear disc and the hollow tube in section of the present invention;
[0028] Figure 8 It is a schematic diagram of the three-dimensional structure of the positioning frame of the present invention in cross section.
[0029] 1. Tank; 2. Plasma mechanism; 201. Air inlet hood; 202. Microporous filter plate; 203. Connecting frame; 204. Anode; 205. Cathode; 206. Air pump; 207. Air supply pipe; 208. Ring pipe; 209. Exhaust pipe; 210. Closing plug; 211. Exhaust plate; 212. Return spring; 213. Feeding pipe; 214. Discharge valve; 215. Support leg; 216. Filter screen; 217. Sealing frame; 218. Telescopic rod; 219. Stabilizing block; 3. Stirring mechanism; 301. Hollow tube; 30 2. Screw frame; 303. Limiting cylinder; 304. First bearing; 305. Rotating cylinder; 306. Stirring frame; 307. Servo motor; 308. Small gear; 309. Large gear; 310. Gear frame; 311. Spur gear; 312. Positioning frame; 313. Second bearing; 314. Third bearing; 315. Steady seat; 4. Heating mechanism; 401. Thermal resistor; 402. Conductive slip ring; 403. Housing; 404. Heat shield; 405. Heating coil; 406. Steady frame; 407. Steady bar; 408. Limiting frame. DETAILED DESCRIPTION
[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] Example 1
[0032] See also Figure 1-5, including a tank body 1, a plasma mechanism 2 is provided on the outside of the tank body 1, the plasma mechanism 2 includes an air inlet hood 201, the right side of the air inlet hood 201 passes through the interior of the tank body 1, two microporous filter plates 202 are clamped inside the air inlet hood 201, the bottom surface of the air inlet hood 201 is fixedly connected with a connecting frame 203, the inner side walls of the connecting frame 203 are fixedly inlaid with an anode 204 and a cathode 205, an air pump 206 is provided below the connecting frame 203, the air inlet end of the air pump 206 is fixedly connected to the bottom end of the connecting frame 203, the air outlet end of the air pump 206 is fixedly connected to an air supply pipe 207, the inner wall of the tank body 1 is fixedly connected with an annular pipe 208, the other end of the air supply pipe 207 passes through the tank body 1 and is fixedly connected to the annular pipe 208, the outer surface of the annular pipe 208 is fixedly connected with a plurality of exhaust pipes 209, the interior of each exhaust pipe 209 is slidably connected with a closing plug 210, each exhaust pipe The outer surface of 209 is fixedly connected to an exhaust plate 211, and the inner wall of each exhaust plate 211 is in contact with the outer surface of the closing plug 210. The inner wall of each exhaust pipe 209 is fixedly connected to a reset spring 212, and the other end of each reset spring 212 is fixedly connected to one end of the closing plug 210. By setting up a plasma mechanism 2, the cathode 205 and the anode 204 can be used to form a high-voltage ionization channel, so that the air is ionized into plasma after passing through the ionization channel, and the plasma is mixed with the protein raw material and earthworm autolytic enzyme. The nano-scale synergistic effect of the plasma can be used to improve the chelation and enrichment efficiency of organic trace elements, so that an ionic amino acid solution is formed inside the tank body 1, effectively improving the hydrolysis efficiency of the anti-stress protein production device, shortening the animal viscera hydrolysis cycle of the protein production device, and thereby increasing the production efficiency of protein amino acids in the anti-stress protein production device.
[0033] The upper surface of the tank body 1 is fixedly connected to a feeding pipe 213, the bottom surface of the tank body 1 is fixedly connected to a discharge valve 214, and the bottom surface of the tank body 1 is fixedly connected to four supporting legs 215. The feeding pipe 213 can facilitate the staff to add fresh animal offal and autolytic enzymes and other raw materials into the tank body 1, and the discharge valve 214 can facilitate the discharge of the protein amino acid solution that has been hydrolyzed inside the tank body 1. The supporting legs 215 can support the device and increase the stability of the device during use.
[0034] A filter screen 216 is fixedly connected to the inner wall of the air intake hood 201, and a sealing frame 217 is fixedly connected to the upper surfaces of the two microporous filter plates 202. The bottom surface of the sealing frame 217 is in contact with the upper surface of the air intake hood 201. The filter screen 216 can prevent larger external impurities from entering the interior of the air intake hood 201. The sealing frame 217 can close the gap between the microporous filter plate 202 and the air intake hood 201, and the microporous filter plate 202 can be easily pulled out for cleaning or replacement.
[0035] The outer surface of the annular tube 208 is fixedly connected to several stabilizing blocks 219. The outer surface of each stabilizing block 219 is fixedly connected to the inner wall of the tank body 1. The stabilizing blocks 219 can fix the position of the annular tube 208 inside the tank body 1, increase the reliability of the annular tube 208 during use, and prevent the annular tube 208 from being displaced due to vibration and shaking.
[0036] A telescopic rod 218 is provided inside each return spring 212. The telescopic end of each telescopic rod 218 is fixedly connected to one end of the closing plug 210, and the other end of each telescopic rod 218 is fixedly connected to the inner wall of the exhaust pipe 209. The telescopic rod 218 can increase the movement stability of the closing plug 210 without affecting the expansion and contraction of the return spring 212, and at the same time improve the reset accuracy of the closing plug 210, so that it can smoothly seal the exhaust plate 211.
[0037] The specific implementation of this embodiment is as follows: when in use, fresh animal offal and raw materials such as autolytic enzyme are first added to the interior of the tank body 1 through the feeding tube 213, and the animal offal is hydrolyzed into protein amino acids by the autolytic enzyme. During the hydrolysis process, the suction provided by the air pump 206 can be used to filter the gas inside the tank body 1 through the connecting frame 203 and the air inlet cover 201 through the microporous filter plate 202 and sucked into the connecting frame 203. When the air passes between the anode 204 and the cathode 205, the cathode 205 and the anode 204 form a high-voltage ionization channel to ionize the air into plasma, and then it is sent into the annular tube 208 through the air supply pipe 207. As the gas pressure inside the annular tube 208 increases, the plasma gas will push the closing plug 210 to slide and force the return spring 212 to retract. The plasma gas shrinks until the exhaust plate 211 is exposed. At this time, the plasma gas will enter the interior of the tank body 1 through the exhaust holes on the exhaust plate 211, and directly contact with the earthworm autolysing enzyme and animal viscera in hydrolysis. The nano-scale synergistic effect of plasma can be used to improve the efficiency of organic trace element chelation and enrichment, and enrich the organic trace elements chelated on different targeted amino acids, so that an ionic amino acid solution is formed inside the tank body 1, which effectively improves the hydrolysis efficiency of the anti-stress protein production device, shortens the animal viscera hydrolysis cycle of the protein production device, and thereby increases the production efficiency of protein amino acids in the anti-stress protein production device. When the air pump 206 stops running, the return spring 212 will push the closing plug 210 to reseal the exhaust plate 211 to prevent the solution from passing through the exhaust plate 211 into the exhaust pipe 209.
[0038] Example 2
[0039] See also Figure 2 、 Figure 6 and Figure 7The upper portion of the tank body 1 is provided with a stirring mechanism 3, the stirring mechanism 3 comprises a hollow tube 301, the hollow tube 301 is rotatably connected in the inside of the tank body 1, the outer surface of the hollow tube 301 is fixedly connected with a spiral frame 302, the outer surface of the hollow tube 301 is sleeved with a limiting cylinder 303, the upper surface of the limiting cylinder 303 is fixedly connected with the inner top wall of the tank body 1, the outer surface of the limiting cylinder 303 is sleeved with two first bearings 304, the outer surfaces of the outer rings of the two first bearings 304 are fixedly connected with a rotating cylinder 305 in common, the outer surface of the rotating cylinder 305 is fixedly connected with three stirring frames 306, the upper portion of the tank body 1 is provided with a servo motor 307, the output end of the servo motor 307 is fixedly connected with a pinion 308, the outer surface of the hollow tube 301 is fixedly connected with a gear wheel 309, the gear wheel 309 is meshedly connected with the pinion 308, the inside of the tank body 1 is rotatably connected with a gear frame 310, the gear frame 310 is meshedly connected with the gear wheel 309, the outer surface of the rotating cylinder 305 is fixedly connected with a toothed disc 311, the toothed disc 311 is meshedly connected with the gear frame 310, through the setting of the stirring mechanism 3, the inside raw materials of the tank body 1 can be stirred in the form of stirring, so that the autolytic enzyme can better contact with the plasma gas, and meanwhile the mixing degree of the autolytic enzyme and the raw materials can be improved, so that it can be decomposed into protein amino acid faster.
[0040] The inner wall of the tank body 1 is fixedly connected with a positioning frame 312, the outer surface of the positioning frame 312 is sleeved with a second bearing 313, the bottom ends of the three stirring frames 306 are fixedly connected with the outer surface of the outer ring of the second bearing 313, the inner wall of the positioning frame 312 is fixedly connected with a third bearing 314, the inner wall of the inner ring of the third bearing 314 is fixedly connected with the outer surface of the hollow tube 301, through the cooperation of the positioning frame 312, the second bearing 313 and the third bearing 314, the stability of the bottom end of the hollow tube 301 and the stirring frame 306 during rotation can be improved without affecting the rotation of the hollow tube 301 and the stirring frame 306.
[0041] The right side surface of the servo motor 307 is fixedly connected with a stable seat 315, the bottom surface of the stable seat 315 is fixedly connected with the upper surface of the tank body 1, the stable seat 315 can increase the stability of the servo motor 307, so that the servo motor 307 can drive the pinion 308 to rotate.
[0042] The specific implementation of this embodiment is as follows: when the animal offal inside the tank body 1 is undergoing protein hydrolysis, the power provided by the servo motor 307 is combined with the stable seat 315 to drive the hollow tube 301 to rotate by the engagement of the small gear 308 and the large gear 309. When the hollow tube 301 rotates, the spiral frame 302 can be driven to rotate. The rotation of the spiral frame 302 can force the raw materials at the bottom to flip upward, thereby increasing the flipping effect of the raw materials, allowing them to be better mixed with the autolytic enzyme, and also improving the mixing efficiency of the plasma gas and the autolytic enzyme. When the large gear 309 rotates, the gear frame 310 can drive the toothed disc 311 to rotate. The rotation of the toothed disc 311 cooperates with the fixation of the rotating cylinder 305, the first bearing 304 and the limiting cylinder 303 to drive the stirring frame 306 to further stir the raw materials. Due to the change in the gear ratio of the gear frame 310, the rotation speed of the stirring frame 306 and the spiral frame 302 is different, thereby using two stirring modes with different speeds to further improve the autolytic enzyme mixing and hydrolysis effect.
[0043] Example 3
[0044] See also Figure 2 、 Figure 7 and Figure 8 The tank body 1 is provided with a heating mechanism 4 on the outside. The heating mechanism 4 includes an electric thermal resistance wire 401. The electric thermal resistance wire 401 is fixedly connected to the inside of the hollow tube 301. The top of the hollow tube 301 is fixedly connected to a conductive slip ring 402. The conductive slip ring 402 is electrically connected to the electric thermal resistance wire 401 through a wire. The conductive slip ring 402 is an electrical component that realizes continuous transmission of power and signals in rotating equipment. It is also called a collector ring, a collector ring or a rotary joint. Its core structure consists of a rotor and a stator. Conductive contact or rolling overlap forms a conductive Passage, solves the problem of wire entanglement during rotation, the outer surface of the tank body 1 is fixedly connected with the shell 403, the inner wall of the shell 403 is fixedly connected with the heat insulation cover 404, the inner wall of the heat insulation cover 404 is fixedly connected to the outer surface of the tank body 1, and the inner wall of the heat insulation cover 404 is provided with a heating coil 405. The tank body 1 can be heated from the inside and outside of the tank body 1 to a suitable protein hydrolysis temperature through the heating mechanism 4, avoiding the temperature difference inside the tank body 1 affecting the protein hydrolysis effect, and further improving the hydrolysis efficiency of the anti-stress protein production device.
[0045] The outer surface of the conductive slip ring 402 is fixedly connected to a stabilizing frame 406, and the bottom surface of the stabilizing frame 406 is fixedly connected to the upper surface of the tank body 1. The stabilizing frame 406 can limit the position of the conductive slip ring 402, ensuring that the conductive slip ring 402 can rotate smoothly and provide electrical energy to the electric heating resistance wire 401.
[0046] Several stabilizing bars 407 are fixedly connected to the outer surface of the heating coil 405. The inner wall of each stabilizing bar 407 is fixedly connected to the outer surface of the tank body 1. The outer surface of each stabilizing bar 407 is in contact with the inner wall of the heat insulation cover 404. The stabilizing bars 407 can reinforce the heating coil 405, making it difficult for the heating coil 405 to separate from the heat insulation cover 404, thereby ensuring the reliability of the use of the heating coil 405.
[0047] The outer surface of the shell 403 is fixedly connected to the limiting frame 408, and the inner wall of the limiting frame 408 is fixedly connected to the outer surface of the air supply pipe 207. The limiting frame 408 can limit the position of the air supply pipe 207 and increase the stability of the air supply pipe 207.
[0048] The specific implementation of this embodiment is as follows: the raw materials in the tank body 1 can be heated from the outside by electric heating through the heating coil 405, and in conjunction with the heat insulation cover 404 and the shell 403, heat loss can be reduced, and then the heat provided by the electric heating wire 401 after being energized can directly heat the raw materials from the inside of the tank body 1, thereby utilizing the method of synchronous heating inside and outside the tank body 1, cooperating with the temperature measurement of the thermometer inside the tank body 1, and starting and stopping control of the heating coil 405 and the electric heating wire 401, the raw materials inside the tank body 1 can be heated to a suitable temperature range for protein amino acid hydrolysis, and the temperature difference between the inside and outside of the tank body 1 can be avoided to affect the protein hydrolysis effect, further improving the hydrolysis efficiency of the anti-stress protein production device, and using the conductive slip ring 402 in conjunction with the fixation of the stabilizing frame 406, it can ensure that the electric heating wire 401 is smoothly connected to the power supply for heating without affecting the rotation of the hollow tube 301 and the electric heating wire 401.
[0049] The working principle of the present invention is as follows: when in use, the anode 204, cathode 205, air pump 206, servo motor 307, electric heating resistance wire 401 and heating coil 405 are first connected to the external power supply and the controller. When it is necessary to produce anti-stress protein, fresh animal offal and autolytic enzyme and other raw materials are first added to the inside of the tank body 1 through the feeding tube 213, and the animal offal is hydrolyzed into protein amino acids by the autolytic enzyme. During the hydrolysis process, the suction provided by the air pump 206 can be used to filter the internal gas of the tank body 1 through the microporous filter plate 202 and sucked into the connecting frame 203 through the connecting frame 203 and the air inlet cover 201. When the air passes between the anode 204 and the cathode 205, the cathode 205 and the anode 204 form a high-voltage ionization channel to ionize the air into plasma, and then it is sent into the inside of the annular tube 208 through the air supply pipe 207. As the gas pressure inside the annular tube 208 increases, the air is discharged. Increase, the plasma gas will push the closing plug 210 to slide and force the return spring 212 to contract until the exhaust plate 211 is exposed. At this time, the plasma gas will enter the interior of the tank body 1 through the exhaust hole on the exhaust plate 211, and directly contact with the earthworm autolytic enzyme and animal viscera in hydrolysis. It can utilize the nano-scale synergistic effect of plasma to improve the chelation and enrichment efficiency of organic trace elements, enrich the organic trace elements and chelate them on different targeted amino acids, so that an ionic amino acid solution is formed inside the tank body 1, effectively improving the hydrolysis efficiency of the anti-stress protein production device, shortening the animal viscera hydrolysis cycle of the protein production device, and thereby increasing the production efficiency of protein amino acids in the anti-stress protein production device. When the air pump 206 stops running, the return spring 212 will push the closing plug 210 to re-seal the exhaust plate 211 to prevent the solution from passing through the exhaust plate 211 into the exhaust pipe 209;
[0050] When the animal offal inside the tank body 1 is undergoing protein hydrolysis, the power provided by the servo motor 307 is combined with the stable seat 315 to drive the hollow tube 301 to rotate by the engagement of the small gear 308 and the large gear 309. When the hollow tube 301 rotates, the spiral frame 302 can be driven to rotate. The rotation of the spiral frame 302 can force the raw materials at the bottom to flip upward, thereby increasing the flipping effect of the raw materials, so that they can be better mixed with the autolytic enzyme, and can also improve the mixing efficiency of the plasma gas and the autolytic enzyme. When the large gear 309 rotates, the gear rack 310 can be used to drive the toothed disc 311 to rotate. The rotation of the toothed disc 311 is combined with the fixing of the rotating cylinder 305, the first bearing 304 and the limiting cylinder 303 to drive the stirring rack 306 to further stir the raw materials. Due to the change in the gear ratio of the gear rack 310, the rotation speed of the stirring rack 306 and the spiral rack 302 is different, thereby utilizing two stirring modes with different speeds to further improve the autolytic enzyme mixed hydrolysis effect.
[0051] At the same time, the raw materials in the tank body 1 can be heated from the outside by electric heating through the heating coil 405, and the heat loss can be reduced by cooperating with the heat insulation cover 404 and the shell 403. Then, the heat provided by the electric heating wire 401 after being energized can directly heat the raw materials from the inside of the tank body 1. In this way, the raw materials in the tank body 1 can be heated to the appropriate temperature range for protein amino acid hydrolysis by cooperating with the temperature measurement of the thermometer inside the tank body 1 and the start and stop control of the heating coil 405 and the electric heating wire 401. The temperature difference between the inside and outside of the tank body 1 affects the protein hydrolysis effect, further improving the hydrolysis efficiency of the anti-stress protein production device, and the conductive slip ring 402 is used in conjunction with the fixing of the stabilizing frame 406 to ensure that the electric heating wire 401 is smoothly connected to the power supply for heating without affecting the rotation of the hollow tube 301 and the electric heating wire 401. Finally, when the ionic amino acid solution is generated inside the tank body 1, the discharge valve 214 is opened, the solution is taken out and separated, purified and extracted by other equipment to form a medical anti-stress product, and the extracted by-products are pressure-spray dried into powder for recycling.
[0052] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0053] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A device for producing an anti-stress protein, comprising a tank (1), characterized in that: A plasma mechanism (2) is provided on the outside of the tank body (1), a stirring mechanism (3) is provided above the tank body (1), and a heating mechanism (4) is provided on the outside of the tank body (1); The plasma mechanism (2) comprises an air intake hood (201), the right side of the air intake hood (201) extends through the interior of the tank body (1), two microporous filter plates (202) are clamped inside the air intake hood (201), the bottom surface of the air intake hood (201) is fixedly connected to a connecting frame (203), the inner side walls of the connecting frame (203) are respectively fixedly inlaid with an anode (204) and a cathode (205), an air pump (206) is provided below the connecting frame (203), the air intake end of the air pump (206) is fixedly connected to the bottom end of the connecting frame (203), the air outlet end of the air pump (206) is fixedly connected to an air supply pipe (207), and the inner wall of the tank body (1) is fixedly connected to a An annular tube (208), the other end of the air supply tube (207) passes through the tank body (1) and is fixedly connected to the annular tube (208), the outer surface of the annular tube (208) is fixedly connected to a plurality of exhaust pipes (209), the interior of each exhaust pipe (209) is slidably connected to a closing plug (210), the outer surface of each exhaust pipe (209) is fixedly connected to an exhaust plate (211), the inner wall of each exhaust plate (211) is in contact with the outer surface of the closing plug (210), the inner side wall of each exhaust pipe (209) is fixedly connected to a return spring (212), and the other end of each return spring (212) is fixedly connected to one end of the closing plug (210); The stirring mechanism (3) comprises a hollow tube (301), the hollow tube (301) is rotatably connected to the interior of the tank body (1), the outer surface of the hollow tube (301) is fixedly connected to a spiral frame (302), the outer surface of the hollow tube (301) is sleeved with a limiting cylinder (303), the upper surface of the limiting cylinder (303) is fixedly connected to the inner top wall of the tank body (1), the outer surface of the limiting cylinder (303) is sleeved with two first bearings (304), the outer surfaces of the outer rings of the two first bearings (304) are fixedly connected to a rotating cylinder (305), and the outer surface of the rotating cylinder (305) is fixedly connected to three A stirring frame (306) is provided above the tank body (1), a servo motor (307) is provided above the servo motor (307), an output end of the servo motor (307) is fixedly connected to a small gear (308), an outer surface of the hollow tube (301) is fixedly connected to a large gear (309), the large gear (309) is meshed with the small gear (308), the interior of the tank body (1) is rotatably connected to a gear rack (310), the gear rack (310) is meshed with the large gear (309), and the outer surface of the rotating cylinder (305) is fixedly connected to a toothed disc (311), the toothed disc (311) is meshed with the gear rack (310); The heating mechanism (4) comprises an electric heating resistance wire (401), the electric heating resistance wire (401) is fixedly connected to the inside of the hollow tube (301), the top end of the hollow tube (301) is fixedly connected to a conductive slip ring (402), the conductive slip ring (402) is electrically connected to the electric heating resistance wire (401) via a wire, the outer surface of the tank body (1) is fixedly connected to a shell (403), the inner wall of the shell (403) is fixedly connected to a heat insulation cover (404), the inner wall of the heat insulation cover (404) is fixedly connected to the outer surface of the tank body (1), and the inner wall of the heat insulation cover (404) is provided with a heating coil (405).
2. The device for producing an anti-stress protein according to claim 1, characterized in that: The upper surface of the tank body (1) is fixedly connected to a feeding pipe (213), the bottom surface of the tank body (1) is fixedly connected to a discharge valve (214), and the bottom surface of the tank body (1) is fixedly connected to four supporting legs (215).
3. The device for producing an anti-stress protein according to claim 1, characterized in that: The inner wall of the air intake hood (201) is fixedly connected to a filter screen (216), the upper surfaces of the two microporous filter plates (202) are commonly fixedly connected to a sealing frame (217), and the bottom surface of the sealing frame (217) is in contact with the upper surface of the air intake hood (201).
4. The device for producing an anti-stress protein according to claim 1, wherein: The outer surface of the annular tube (208) is fixedly connected to a plurality of stabilizing blocks (219), and the outer surface of each stabilizing block (219) is fixedly connected to the inner wall of the tank body (1).
5. The device for producing an anti-stress protein according to claim 1, characterized in that: A telescopic rod (218) is provided inside each of the return springs (212), the telescopic end of each of the telescopic rods (218) is fixedly connected to one end of the closing plug (210), and the other end of each of the telescopic rods (218) is fixedly connected to the inner wall of the exhaust pipe (209).
6. The device for producing an anti-stress protein according to claim 1, characterized in that: The inner wall of the tank body (1) is fixedly connected to a positioning frame (312), the outer surface of the positioning frame (312) is sleeved with a second bearing (313), the bottom ends of the three stirring frames (306) are fixedly connected to the outer surface of the outer ring of the second bearing (313), the inner wall of the positioning frame (312) is fixedly connected to a third bearing (314), and the inner wall of the inner ring of the third bearing (314) is fixedly connected to the outer surface of the hollow tube (301).
7. The device for producing an anti-stress protein according to claim 1, characterized in that: The right side of the servo motor (307) is fixedly connected to a stabilizing seat (315), and the bottom surface of the stabilizing seat (315) is fixedly connected to the upper surface of the tank body (1).
8. The device for producing an anti-stress protein according to claim 1, characterized in that: The outer surface of the conductive slip ring (402) is fixedly connected to a stabilizing frame (406), and the bottom surface of the stabilizing frame (406) is fixedly connected to the upper surface of the tank body (1).
9. The device for producing an anti-stress protein according to claim 1, characterized in that: The outer surface of the heating coil (405) is fixedly connected to a plurality of stabilizing strips (407), the inner wall of each stabilizing strip (407) is fixedly connected to the outer surface of the tank body (1), and the outer surface of each stabilizing strip (407) is in contact with the inner wall of the heat insulation cover (404).
10. The device for producing an anti-stress protein according to claim 1, characterized in that: The outer surface of the housing (403) is fixedly connected to a limiting frame (408), and the inner wall of the limiting frame (408) is fixedly connected to the outer surface of the air supply pipe (207).