Bone marrow peptide low temperature extraction and purification device

By designing a low-temperature extraction and purification device for bone marrow peptides and controlling the air pressure of the extract using the gas plug mechanism, the problem of difficulty in separating and purifying the existing devices is solved, ensuring that the active ingredients of the bone marrow peptides are not decomposed and product quality is improved.

CN120305712BActive Publication Date: 2025-08-12SHANDONG GUANGHENG ELECTRIC TECH CO LTD +1
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Patent Information

Application Number
CN202510796321.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-16
Publication Date
2025-08-12
Estimated Expiration
2045-06-16

AI Technical Summary

Technical Problem

Existing bone marrow peptide extraction and purification devices are difficult to separate and purify at lower temperatures. High temperature purification may lead to the decomposition of the active ingredient of bone marrow peptides and affect product quality.

Method used

A bone marrow peptide low-temperature extraction and purification device was designed to control the air pressure of the extractor through the gas plug mechanism, reduce the boiling point of the extractor, and achieve low-temperature separation, including the coordinated work of components such as guide frame, power conversion mechanism, discharge plug and cooling pipe frame to ensure that the extractor is gasified and separated at a lower temperature.

Benefits of technology

It realizes effective separation of the extract at lower temperatures, protects the active ingredients of bone marrow peptides, and improves product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of warm extraction and purification devices, and discloses a low-temperature extraction and purification device for bone marrow peptides, comprising: a base, with an extraction cylinder and a purification cylinder fixedly connected to the top sides thereof; and further comprising: an infusion valve tube fixedly connected between the lower end of the extraction cylinder and the middle part of the side wall of the purification cylinder, and a movable cylinder and a discharge plug slidably embedded on the inner wall of the purification cylinder. The low-temperature extraction and purification device for bone marrow peptides can control the movement of a split gas plug mechanism according to the level of the purified liquid. When the split gas plug mechanism moves downward, the gasified extract gas and liquid can be quickly separated. When the gas plug mechanism moves upward, the gas plug mechanism will be in a sealed state, so that the gas plug mechanism can reduce the air pressure above the liquid surface, thereby reducing the boiling point of the extract. The device can vaporize and separate the extract at a lower temperature to ensure the activity of the bone marrow peptides.
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Description

Technical Field

[0001] The invention relates to the technical field of warm extraction and purification devices, in particular to a low-temperature extraction and purification device for bone marrow peptides. Background Art

[0002] Bone marrow peptide is an organic active substance extracted from animal bone marrow. It has high nutritional value and is easily absorbed by the human body. The production of bone marrow peptide requires the processing of raw materials through extraction and purification equipment. However, existing bone marrow peptide extraction and purification equipment still has some problems:

[0003] The bone marrow extraction devices on the market are difficult to separate and purify the extract at lower temperatures. During the operation of the device, if the purification temperature is too high, it may cause the active ingredients of the bone marrow peptide to decompose, thereby adversely affecting the quality of the bone marrow peptide product.

[0004] In view of the above problems, it is urgent to carry out innovative design based on the original bone marrow peptide extraction and purification device. Summary of the Invention

[0005] The purpose of the present invention is to provide a low-temperature extraction and purification device for bone marrow peptides to solve the following problems of the existing bone marrow peptide extraction and purification devices proposed in the above-mentioned background technology: bone marrow extraction devices on the market are difficult to separate and purify the extract at a relatively low temperature. During the operation of the device, if the purification temperature is too high, the active ingredients of the bone marrow peptides may be decomposed, thereby adversely affecting the quality of the bone marrow peptide products.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: a low-temperature extraction and purification device for bone marrow peptides, comprising:

[0007] The base has an extraction cylinder and a purification cylinder fixedly connected to both sides of its top; it also includes: an infusion valve tube fixedly connected between the lower end of the extraction cylinder and the middle of the side wall of the purification cylinder, a moving cylinder and a discharge plug are slidably embedded on the inner wall of the purification cylinder, the bottom end of the moving cylinder is fixedly connected to the discharge plug, a guide frame is slidably passed through the top of the moving cylinder, and the top end of the guide frame is fixedly installed on the inner wall of the purification cylinder, and a power conversion mechanism is movably embedded in the bottom of the guide frame; the power conversion mechanism includes a loading frame, a thrust ring frame is rotatably embedded on the side wall of the lower part of the loading frame, and guide pillars are fixedly connected at both ends of the thrust ring frame, and the top end of the guide pillar is slidably inserted on the guide frame; a liquid level trigger module for detecting the liquid level is provided at the bottom of the discharge plug.

[0008] Preferably, the top of the extraction cylinder is fixedly connected to the motor of the electric pushing rack, and the rotating rack of the electric pushing rack is rotatably installed inside the extraction cylinder, the filter plate is coaxially fixedly connected to the bottom inner wall of the extraction cylinder, and the top of the filter plate is fitted with a bracket at the bottom of the electric pushing rack, the filter plate is located above the upper port of the infusion valve tube, and an electric unloading plug is provided above the edge of the filter plate, the plug body of the electric unloading plug is fitted and embedded in the slag discharge port of the extraction cylinder, and the electric cylinder of the electric unloading plug is fixedly installed on the outer wall of the extraction cylinder, so that the filter plate can intercept the residue in the extraction cylinder.

[0009] Preferably, the discharge port on the upper part of the purification cylinder is fixedly connected to the upper part of the inner wall of the collecting cylinder, and the side wall and the base of the collecting cylinder are fixedly connected. A cooling pipe rack is provided on the inner side of the collecting cylinder, and the ports on the upper and lower sides of the cooling pipe rack are fixedly passed through the collecting cylinder. An infusion valve tube is fixedly installed on the middle part of the collecting cylinder, and a pressure relief valve tube for safety protection is fixedly connected to the top of the collecting cylinder. The lower port of the balancing valve tube is fixedly connected on the side wall of the purification cylinder, and the lower port of the balancing valve tube is below the discharge plug, so that the cooling pipe rack can cool and condense the gas in the collecting cylinder.

[0010] Preferably, a symmetrically distributed stirring frame is fitted on the bottom of the inner wall of the purification cylinder, and the outer wall of the bottom end of the stirring frame is fixedly connected to the top of the connecting gear ring, and the top of the connecting gear ring and the bottom of the inner wall of the purification cylinder are arranged flush, and the tooth edge side of the connecting gear ring is meshed with the output gear of the rotating motor, and the main shaft and output gear of the rotating motor are rotatably embedded in the inner wall of the purification cylinder, and the motor housing of the rotating motor is fixedly embedded in the bottom surface of the purification cylinder, so that the rotating motor can drive the connecting gear ring and the stirring frame to rotate.

[0011] Preferably, a driving motor is fixedly installed on the top of the purification cylinder, and an inner core rod is fixedly connected to the output shaft of the driving motor, the inner core rod is coaxially slidably inserted into the inner side of the transmission sleeve, and the cross-section of the inner core rod is rectangular, an external threaded sleeve is rotatably sleeved on the outer wall of the transmission sleeve, and the external threaded sleeve passes through the top of the moving cylinder to form a threaded transmission structure, the upper end of the external threaded sleeve is rotatably embedded in the inner wall of the purification cylinder, and the lower end of the external threaded sleeve is rotatably embedded in the bottom of the guide frame, the lower part of the transmission sleeve is fixedly passed through the bottom of the guide frame, and a rotating disk is coaxially fixedly connected to the lower end surface of the transmission sleeve, and the outer wall of the rotating disk is rotatably embedded in the inner wall of the discharge plug, so that the inner core rod can drive the transmission sleeve to rotate.

[0012] Preferably, an exhaust plug ring is embedded at the top edge of the discharge plug to form a sliding limit structure, and the lower part of the exhaust plug ring is provided with air flow channels distributed at equal angles, the air flow channels are in a "T" shape, and the lower end of the air flow channel faces the lower part of the purification cylinder, and the two upper ends of the air flow channel are both fitted on the inner wall of the discharge plug to form a closed structure, so that the exhaust plug ring can split and move on the discharge plug.

[0013] The top of the lower docking block is fixedly provided with a lower portion of the outer threaded sleeve, and the top of the lower docking block and the inner wall of the loading frame are elastically connected by a spring. The top of the rotating gear is coaxially fixedly connected to the bottom of the external threaded sleeve, and a transmission gear is provided between the teeth of the rotating gear and the upper part of the inner gear ring frame, and the top of the transmission gear is rotatably embedded in the inner wall of the guide frame, and the convex ring at the bottom of the guide frame is embedded in the mounting groove at the top of the inner gear ring frame to form a rotation limiting structure. The inner side of the lower part of the inner gear ring frame is provided with docking holes distributed at equal angles, and the bottom end of the lower docking block is provided just above the docking hole, so that the loading frame can drive the upper docking block and the lower docking block to move.

[0014] Preferably, the thrust ring frame is located below the inner gear ring frame, and the top of the thrust ring frame and the bottom surface of the guide frame are elastically connected by a spring, and the spring is sleeved on the outer wall of the guide column, and a force block is fixedly connected to the through groove on the upper part of the guide column, and the force block has an isosceles trapezoidal structure, and the end face of the extrusion frame is fitted on the inclined surface of one side of the force block, and the extrusion frame is horizontally slidably installed inside the guide frame, and the end of the extrusion frame away from the force block is embedded in the vertical groove on the side wall of the trigger rod to form a sliding limiting structure, and the trigger rod slides through the opening at the bottom of the guide frame, so that the trigger rod can drive the extrusion frame to move.

[0015] Preferably, the trigger rod has an "L"-shaped structure, and the top of the trigger rod is fixedly connected to a contact plate, and the contact plate is slidably embedded in the top inner wall of the moving cylinder, the bottom of the moving inclined plate is fitted on the inclined surface of the top of the contact plate, and the moving inclined plate is slidably embedded in the inner wall of the moving cylinder, and the convex column at the bottom of the moving inclined plate slides through the top setting of the moving cylinder, and the bottom of the trigger rod is slidably embedded in the inner wall of the discharge plug, so that the trigger rod can drive the contact plate to move.

[0016] Preferably, the liquid level trigger module includes a reciprocating rod frame horizontally slidably inserted on the inner wall of the discharge plug, the reciprocating rod frame is in a "T" shape, and an eccentric convex shaft on the rotating disk is fitted in the horizontal groove at one end of the reciprocating rod frame, and a detection plug rod is fixedly installed on the bottom of the other end of the reciprocating rod frame, the detection plug rod and the force-bearing cylinder frame are arranged below the discharge plug, the force-bearing cylinder frame is slidably embedded in the bottom of the discharge plug, and a plug head on the side of the detection plug rod away from the reciprocating rod frame is fitted at the port of the force-bearing cylinder frame, and a slender notch for liquid inlet is provided at the lower part of the port of the force-bearing cylinder frame, and the top bracket of the force-bearing cylinder frame is fixedly connected to the lower end of the trigger rod, so that the reciprocating rod frame can drive the detection plug rod to move.

[0017] Compared with the prior art, the present invention has the following beneficial effects: the low-temperature extraction and purification device for bone marrow peptide can control the movement of a split gas plug mechanism according to the level of the purified liquid. When the split gas plug mechanism moves downward, the gas and liquid of the vaporized extract can be quickly separated. When the gas plug mechanism moves upward, the gas plug mechanism is in a sealed state, allowing the gas plug mechanism to reduce the air pressure above the liquid surface, thereby lowering the boiling point of the extract. The device can vaporize and separate the extract at a lower temperature to ensure the activity of the bone marrow peptide. The specific details are as follows:

[0018] 1. An exhaust plug ring is embedded at the top edge of the discharge plug to form a sliding limit structure. The lower part of the exhaust plug ring is provided with air flow channels distributed at equal angles. The air flow channels are in a T-shaped structure. The lower end of the air flow channel faces the lower part of the purification cylinder. The two upper ends of the air flow channel are both fitted on the inner wall of the discharge plug to form a closed structure. When the discharge plug moves downward, the gas pressure of the extract in the purification cylinder can push the exhaust plug ring to move upward. At this time, the exhaust plug ring will move upward, so that the upper end of the air flow channel is opened. At this time, the air pressure below the discharge plug can be discharged into the upper part of the discharge plug. When the discharge plug is away from the liquid surface in the purification cylinder, the exhaust plug ring will be pressed tightly against the discharge plug to form a sealing structure. At this time, the discharge plug can reduce the air pressure above the liquid surface, thereby reducing the boiling point of the extract, so that the extract can be separated at a lower temperature.

[0019] 2. The convex key provided on the inner side of the loading frame is slidably embedded in the vertical groove on the transmission sleeve, and the inner side of the upper surface of the loading frame is fixedly connected with an upper docking block, which is slidably inserted in the docking groove opened at the bottom of the rotating gear. The top of the lower docking block and the inner wall of the loading frame are elastically connected by a spring, and the top of the rotating gear is coaxially fixedly connected to the bottom of the external threaded sleeve. A transmission gear is provided between the teeth of the rotating gear and the upper part of the inner gear ring frame. A docking hole is provided on the lower inner side of the inner gear ring frame, and the bottom end of the lower docking block is provided just above the docking hole. When the loading frame moves downward, the upper docking block will be separated from the docking groove at the bottom of the rotating gear, and the lower docking block will enter the docking hole on the inner gear ring frame, so that the inner gear ring frame can drive the rotating gear to rotate in the opposite direction through the transmission gear. At this time, the external threaded sleeve connected to the rotating gear will rotate synchronously in the opposite direction, and the external threaded sleeve will drive the moving cylinder to move synchronously in the opposite direction. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the overall external structure of the present invention;

[0021] Figure 2 This is a schematic diagram of the installation structure of the extraction cartridge of the present invention;

[0022] Figure 3 This is a schematic diagram of the filter plate installation structure of the present invention;

[0023] Figure 4 This is a schematic diagram of the cooling pipe rack installation structure of the present invention;

[0024] Figure 5 This is a schematic diagram of the mounting structure of the connecting gear ring of the present invention;

[0025] Figure 6 This is a schematic diagram of the installation structure of the stirring frame of the present invention;

[0026] Figure 7 This is a schematic diagram of the exhaust plug ring installation structure of the present invention;

[0027] Figure 8 This is a schematic diagram of the installation structure of the external threaded sleeve of the present invention;

[0028] Figure 9 This is a schematic diagram of the installation structure of the drain plug of the present invention;

[0029] Figure 10 This is a schematic diagram of the installation structure of the load-bearing cylinder rack of the present invention;

[0030] Figure 11 This is a schematic diagram of the installation structure of the trigger rod of the present invention;

[0031] Figure 12 This is a schematic diagram of the inner core rod installation structure of the present invention;

[0032] Figure 13This is a schematic diagram of the installation structure of the load-bearing block of the present invention;

[0033] Figure 14 This is a schematic diagram of the installation structure of the reciprocating rod frame of the present invention;

[0034] Figure 15 This is a schematic diagram of the installation structure of the loading rack of the present invention;

[0035] Figure 16 This is a schematic diagram of the installation structure of the movable inclined plate of the present invention.

[0036] Figure: 1, base; 2, extraction cylinder; 3, electric pusher; 4, electric discharge plug; 5, filter plate; 6, infusion valve tube; 7, purification cylinder; 8, collection cylinder; 9, cooling tube rack; 10, balance valve tube; 11, pressure relief valve tube; 12, drive motor; 13, moving cylinder; 14, stirring rack; 15, connecting gear ring; 16, rotating motor; 17, electric heating plate; 18, guide frame; 19, external threaded sleeve; 20, transmission sleeve; 21, inner core rod; 22, discharge plug; 23, Exhaust plug ring; 24. Air flow channel; 25. Rotating gear; 26. Transmission gear; 27. Internal gear ring frame; 28. Power conversion mechanism; 2801. Loading frame; 2802. Thrust ring frame; 2803. Lower docking block; 2804. Upper docking block; 2805. Guide column; 2806. Force block; 29. Rotating disk; 30. Reciprocating rod frame; 31. Detection plug rod; 32. Force cylinder frame; 33. Trigger rod; 34. Extrusion frame; 35. Contact plate; 36. Moving inclined plate. DETAILED DESCRIPTION

[0037] 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.

[0038] See also Figures 1-16 The present invention provides a technical solution: a low-temperature extraction and purification device for bone marrow peptides, comprising:

[0039] The base 1 has an extraction cylinder 2 and a purification cylinder 7 fixedly connected to its top sides respectively; it also includes: a liquid infusion valve tube 6 fixedly connected between the lower end of the extraction cylinder 2 and the middle of the side wall of the purification cylinder 7, a moving cylinder 13 and a discharge plug 22 are slidably embedded on the inner wall of the purification cylinder 7, the bottom end of the moving cylinder 13 is fixedly connected to the discharge plug 22, a guide frame 18 is slidably passed through the top of the moving cylinder 13, and the top end of the guide frame 18 is fixedly installed on the inner wall of the purification cylinder 7, and a power conversion mechanism 28 is movably embedded in the bottom of the guide frame 18; the power conversion mechanism 28 includes a loading frame 2801, a thrust ring frame 2802 is rotatably embedded on the side wall of the lower part of the loading frame 2801, and guide columns 2805 are fixedly connected at both ends of the thrust ring frame 2802, and the top end of the guide column 2805 is slidably inserted on the guide frame 18; a liquid level trigger module for detecting the liquid level is provided at the bottom of the discharge plug 22.

[0040] The top of the extraction cylinder 2 is fixedly connected to the motor of the electric pushing rack 3, and the rotating rack of the electric pushing rack 3 is rotatably installed in the interior of the extraction cylinder 2. The filter plate 5 is coaxially fixedly connected to the inner wall of the bottom of the extraction cylinder 2, and the top of the filter plate 5 is fitted with a bracket at the bottom of the electric pushing rack 3. The filter plate 5 is above the upper port of the infusion valve tube 6. An electric unloading plug 4 is provided above the edge of the filter plate 5. The plug body of the electric unloading plug 4 is fitted and embedded in the discharge port of the extraction cylinder 2, and the electric cylinder of the electric unloading plug 4 is fixedly installed on the outer wall of the extraction cylinder 2. The filter plate 5 is used to intercept the residue in the extraction cylinder 2. At the same time, when the electric pushing rack 3 rotates, the bracket at the bottom of the electric pushing rack 3 can The filter plate 5 can be cleaned, and the bottom of the inner wall of the purification cylinder 7 is fitted with a symmetrically distributed stirring frame 14, and the outer wall of the bottom end of the stirring frame 14 is fixedly connected to the top of the connecting gear ring 15, and the top of the connecting gear ring 15 and the bottom of the inner wall of the purification cylinder 7 are flush with each other, and the tooth edge of the connecting gear ring 15 is engaged with the output gear of the rotating motor 16, and the main shaft and output gear of the rotating motor 16 are rotatably embedded in the inner wall of the purification cylinder 7, and the motor housing of the rotating motor 16 is fixedly embedded in the bottom surface of the purification cylinder 7, so that the rotating motor 16 can drive the connecting gear ring 15 to rotate through the output gear, and the connecting gear ring 15 can drive the stirring frame 14 to rotate.

[0041] The discharge port on the upper part of the purification cylinder 7 is fixedly connected to the upper part of the inner wall of the collecting cylinder 8, and the side wall of the collecting cylinder 8 is fixedly connected to the base 1. A cooling pipe rack 9 is provided on the inner side of the collecting cylinder 8, and the ports on the upper and lower sides of the cooling pipe rack 9 are fixedly passed through the collecting cylinder 8. The middle part of the collecting cylinder 8 is fixedly installed with an infusion valve tube 6. The top of the collecting cylinder 8 is fixedly connected with a pressure relief valve tube 11 which plays a safety protection role. The side wall of the purification cylinder 7 is fixedly connected with the lower port of the balancing valve tube 10, and the lower port of the balancing valve tube 10 is below the discharge plug 22. When the vaporized extract enters the collecting cylinder 8, the cooling pipe rack 9 can condense the vaporized extract.

[0042] A driving motor 12 is fixedly installed on the top of the purification cylinder 7, and an inner core rod 21 is fixedly connected to the output shaft of the driving motor 12. The inner core rod 21 is coaxially slidably inserted into the inner side of the transmission sleeve 20, and the cross-section of the inner core rod 21 is rectangular. An external threaded sleeve 19 is rotatably sleeved on the outer wall of the transmission sleeve 20, and the external threaded sleeve 19 passes through the top of the moving cylinder 13 to form a threaded transmission structure. The upper end of the external threaded sleeve 19 is rotatably embedded in the inner wall of the purification cylinder 7, and the lower end of the external threaded sleeve 19 is rotatably embedded in the bottom of the guide frame 18. The lower part of the transmission sleeve 20 is fixedly penetrated through the bottom of the guide frame 18, and the lower end surface of the transmission sleeve 20 is coaxially fixedly connected with a rotating disk 29, and the outer wall of the rotating disk 29 is rotatably embedded in the discharge plug 22. On the inner wall, the driving motor 12 can drive the transmission sleeve 20 to rotate through the inner core rod 21, and the convex key arranged on the inner side of the loading frame 2801 is slidably embedded in the vertical groove on the transmission sleeve 20, and the inner side of the upper surface of the loading frame 2801 is fixedly connected with upper docking blocks 2804 distributed at equal angles, and the upper docking blocks 2804 are slidably inserted into the docking groove opened at the bottom of the rotating gear 25, and the lower outer side of the loading frame 2801 is slidably inserted with a lower docking block 2803, and the top of the lower docking block 2803 and the inner wall of the loading frame 2801 are elastically connected by a spring, the top of the rotating gear 25 is coaxially fixedly connected to the bottom of the external threaded sleeve 19, and a transmission gear 26 is meshed between the teeth of the rotating gear 25 and the upper part of the inner gear ring frame 27. The top of the transmission gear 26 is rotatably embedded in the inner wall of the guide frame 18, and the convex ring at the bottom of the guide frame 18 is embedded in the mounting groove at the top of the inner gear ring frame 27 to form a rotation limiting structure. The inner side of the lower part of the inner gear ring frame 27 is provided with docking holes distributed at equal angles, and the bottom end of the lower docking block 2803 is provided just above the docking holes, so that the transmission sleeve 20 can drive the rotating gear 25 and the external threaded sleeve 19 to rotate through the loading frame 2801 and the upper docking block 2804. Since the thrust ring frame 2802 is below the inner gear ring frame 27, the top of the thrust ring frame 2802 and the bottom surface of the guide frame 18 are elastically connected by a spring, and the spring is sleeved on the outer wall of the guide column 2805, and the through groove on the upper part of the guide column 2805 is fixedly connected. The force-bearing block 2806 has an isosceles trapezoidal structure. The end face of the extrusion frame 34 is fitted on the inclined surface of one side of the force-bearing block 2806. The extrusion frame 34 slides horizontally through the inside of the guide frame 18, and the end of the extrusion frame 34 away from the force-bearing block 2806 is embedded in the vertical groove on the side wall of the trigger rod 33 to form a sliding limit structure. The trigger rod 33 slides through the opening at the bottom of the guide frame 18. When the extrusion frame 34 pushes the force-bearing block 2806 to move, the force-bearing block 2806 will push the guide column 2805 to move downward, and the guide column 2805 will drive the loading frame 2801 to move downward through the thrust ring frame 2802, so that the lower docking block 2803 on the loading frame 2801 can form a transmission relationship with the inner gear ring frame 27.

[0043] An exhaust plug ring 23 is embedded at the top edge of the discharge plug 22 to form a sliding limit structure, and the lower part of the exhaust plug ring 23 is provided with air flow channels 24 distributed at equal angles. The air flow channels 24 are in a "T" shape, and the lower end of the air flow channel 24 faces the lower part of the purification cylinder 7, and the two upper ends of the air flow channel 24 are both fitted on the inner wall of the discharge plug 22 to form a closed structure, so that the vaporized extract can flow into the top of the discharge plug 22 through the air flow channel 24.

[0044] The liquid level trigger module includes a reciprocating rod frame 30 that is horizontally slidably inserted on the inner wall of the discharge plug 22. The reciprocating rod frame 30 is a "T"-shaped structure, and the eccentric convex shaft on the rotating disk 29 is fitted in the horizontal groove at one end of the reciprocating rod frame 30, and a detection plug rod 31 is fixedly installed on the bottom of the other end of the reciprocating rod frame 30. The detection plug rod 31 and the force cylinder frame 32 are arranged below the discharge plug 22. The force cylinder frame 32 is slidably embedded in the bottom of the discharge plug 22, and the port of the force cylinder frame 32 is fitted with a plug head on one side of the detection plug rod 31 away from the reciprocating rod frame 30. A slender notch is provided at the lower part of the port of the force cylinder frame 32 for liquid inlet. The top bracket of the force cylinder frame 32 is fixedly connected to the lower end of the trigger rod 33. After liquid enters the force-bearing cylinder frame 32, the detection plug rod 31 can push the force-bearing cylinder frame 32 to move through the liquid medium, and the force-bearing cylinder frame 32 will drive the trigger rod 33 to move. The trigger rod 33 has an "L"-shaped structure, and the top of the trigger rod 33 is fixedly connected to the contact plate 35, and the contact plate 35 is slidably embedded in the top inner wall of the moving cylinder 13. The bottom of the moving inclined plate 36 is fitted on the inclined surface of the top of the contact plate 35, and the moving inclined plate 36 is slidably embedded in the inner wall of the moving cylinder 13, and the convex column at the bottom of the moving inclined plate 36 slides through the top setting of the moving cylinder 13, and the bottom of the trigger rod 33 is slidably embedded in the inner wall of the discharge plug 22. At this time, the trigger rod 33 will drive the contact plate 35 to move synchronously.

[0045] Working principle: When using the bone marrow peptide low temperature extraction and purification device, first refer to Figures 1-16 , the user puts the bone marrow peptide product raw material and the extract into the extraction cylinder 2, the upper and lower ports of the cooling tube rack 9 are connected to the external coolant circulation equipment, and the electric pushing rack 3 is started. At this moment, the bone marrow peptide substance in the product raw material will dissolve in the extract. After the extraction of the set time, the infusion valve tube 6 is opened. At this moment, the extract containing the bone marrow peptide substance will flow into the purification cylinder 7 through the infusion valve tube 6. The filter plate 5 can intercept the raw material residue. After the extract containing the bone marrow peptide raw material fully enters the purification cylinder 7, the balancing valve tube 10 is closed and the infusion valve tube 6 is closed. At the same time, the electric unloading plug 4 is opened so that the residue in the extraction cylinder 2 can be discharged.

[0046] Then the rotating motor 16 will drive the stirring frame 14 to rotate through the connecting gear ring 15, so that the liquid is fully heated, and the driving motor 12 is started. At this time, the driving motor 12 will drive the transmission sleeve 20 to rotate through the inner core rod 21, and the transmission sleeve 20 will drive the rotating gear 25 to rotate forward through the upper docking block 2804 on the loading frame 2801, and the rotating gear 25 will drive the external threaded sleeve 19 to rotate synchronously. At this time, the external threaded sleeve 19 will drive the moving cylinder 13 with the top thread connection to move downward along the guide frame 18, and the moving cylinder 13 will push the discharge plug 22 to move synchronously along the inner wall of the purification cylinder 7, and the discharge plug 22 will drive the transmission sleeve 20 to move downward synchronously through the rotating disk 29. During this process, the transmission sleeve 20 itself will keep rotating, and the transmission sleeve 20 will drive the rotating disk 2 9 rotates synchronously, and the eccentric convex shaft at the bottom of the rotating disk 29 will drive the reciprocating rod frame 30 to move back and forth synchronously, and the reciprocating rod frame 30 will drive the detection plug rod 31 to move synchronously, and the detection plug rod 31 slides along the inside of the force-bearing cylinder frame 32. Since the end face of the detection plug rod 31 is not in contact with the force-bearing cylinder frame 32, the detection plug rod 31 will not be able to push the force-bearing cylinder frame 32 at this time. When the discharge plug 22 drives the bottom force-bearing cylinder frame 32 to first enter the extract containing the bone marrow peptide raw material, since a liquid inlet notch is provided at the port of the force-bearing cylinder frame 32, the liquid will enter the force-bearing cylinder frame 32 to act as a force medium. At this time, the detection plug rod 31 that continuously moves back and forth will push the force-bearing cylinder frame 32 to move, and the high-pressure liquid squeezed out of the notch of the force-bearing cylinder frame 32 can also accelerate the liquid in the purification cylinder 7 to rise. Due to the laminar convection effect, the force-bearing cylinder frame 32 will push the trigger rod 33 to move, and the contact plate 35 on the top of the trigger rod 33 will push the movable inclined plate 36 to move upward. At the same time, the trigger rod 33 will drive the fixedly connected extrusion frame 34 to move, so that the inclined surface at the end of the extrusion frame 34 can exert pressure on the force-bearing block 2806, and the force-bearing block 2806 can drive the guide column 2805 to move downward, and the bottom surface of the extrusion frame 34 will fit with the top plane of the force-bearing block 2806 to form a limit. At this time, the guide column 2805 will drive the thrust ring frame 2802 to move synchronously, and the thrust ring frame 2802 will drive the loading frame 2801 to move downward, so that the upper docking block 2804 and the rotating gear 25 are separated, and the lower docking block 2803 can enter the docking hole on the inner gear ring frame 27. The lower docking block 2803 will drive the rotating gear 25 to rotate in the opposite direction through the internal gear ring frame 27 and the transmission gear 26, and the rotating gear 25 will drive the external threaded sleeve 19 on the top to rotate synchronously. At this time, the external threaded sleeve 19 will drive the moving cylinder 13 to move upward for reset. When the moving cylinder 13 drives the top of the moving inclined plate 36 to press against the top of the purification cylinder 7, the inclined surface of the moving inclined plate 36 will push the contact plate 35 and the trigger rod 33 to reset. The trigger rod 33 will drive the extrusion frame 34 to reset synchronously. At this time, the extrusion frame 34 will move away from the force block 2806, and the spring at the bottom of the guide frame 18 will drive the thrust ring frame 2802 and the guide column 2805 to reset, so that the upper docking block 2804 on the loading frame 2801 can drive the rotating gear 25 to rotate again to enter the next movement cycle.

[0047] When the discharge plug 22 moves in the purification cylinder 7, the electric heating plate 17 will start, and the electric heating plate 17 will heat the extract containing the bone marrow peptide raw material in the purification cylinder 7, so that the extract is gasified and separated. When the discharge plug 22 moves downward, the discharge plug 22 will squeeze the extract gas in the purification cylinder 7. At this time, the extract gas will push the exhaust plug ring 23 to move upward, and the air flow channel 24 on the exhaust plug ring 23 will open. At this time, the extract gas will enter the top of the exhaust plug ring 23. When the liquid level trigger module in the device is started, it means that the discharge plug 22 is close to the liquid surface in the purification cylinder 7, indicating that most of the separated extract gas is discharged. After that, it can be seen from the above steps that the discharge plug 22 will move upward. At this time, the exhaust plug ring 23 will be pressed tightly on the discharge plug 22 to form a sealing structure. The discharge plug 22 will be away from the liquid surface in the purification cylinder 7. At this time, the air pressure above the liquid surface will be in a low pressure state. At this time, the boiling point of the extract will decrease with the decrease in air pressure, so that the electric heating plate 17 can heat the vaporized extract at a lower temperature, thereby ensuring the activity of the bone marrow peptide product and reducing the risk of effective ingredients decomposing due to high temperature. The liquid and extract gas condensed on the inner wall of the purification cylinder 7 will be pressed into the collecting cylinder 8, and the cooling pipe rack 9 in the collecting cylinder 8 can contact the extract gas, so that the extract gas quickly condenses and accumulates in the collecting cylinder 8. The pressure relief valve tube 11 on the collecting cylinder 8 is used to discharge gas exceeding the safety pressure limit. An openable valve tube is provided at the bottom of the collecting cylinder 8. At this time, the extract components in the purification cylinder 7 will be reduced to achieve the effect of purifying the bone marrow peptide product.

[0048] In the description of the present invention, unless otherwise specified, "plurality" means two or more; terms such as "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," and "tail" indicate positions or relationships based on those shown in the accompanying drawings. These terms are intended solely to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limiting the present invention. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0049] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "connected" and "connection" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integral connection; mechanical connection, electrical connection; direct connection, or indirect connection through an intermediary. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.

[0050] 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 scope of protection of the present invention.

Claims

1. Bone marrow peptide low temperature extraction and purification device, including: The base (1) has an extraction cylinder (2) and a purification cylinder (7) fixedly connected to both sides of its top; it is characterized in that it also includes: a liquid infusion valve tube (6) is fixedly connected between the lower end of the extraction cylinder (2) and the middle part of the side wall of the purification cylinder (7); a moving cylinder (13) and a discharge plug (22) are slidably embedded on the inner wall of the purification cylinder (7); the bottom end of the moving cylinder (13) is fixedly connected to the discharge plug (22); the top of the moving cylinder (13) is slidably penetrated by a guide frame (18), and the top of the guide frame (18) is fixedly installed on the purification cylinder (7). On the inner wall of the cylinder (7), a power conversion mechanism (28) is movably embedded in the bottom of the guide frame (18); the power conversion mechanism (28) includes a loading frame (2801), a thrust ring frame (2802) is rotatably embedded in the lower side wall of the loading frame (2801), and the two ends of the thrust ring frame (2802) are fixedly connected to guide pillars (2805), and the top of the guide pillars (2805) is slidably inserted on the guide frame (18); a liquid level trigger module for detecting the liquid level is provided at the bottom of the discharge plug (22); the purification cylinder ( 7) The upper discharge port is fixedly connected to the upper inner wall of the collecting cylinder (8), and the side wall of the collecting cylinder (8) and the base (1) are fixedly connected. A cooling pipe rack (9) is provided on the inner side of the collecting cylinder (8), and the ports on the upper and lower sides of the cooling pipe rack (9) are fixedly passed through the collecting cylinder (8). A liquid infusion valve tube (6) is fixedly installed in the middle of the collecting cylinder (8). The top of the collecting cylinder (8) is fixedly connected to a pressure relief valve tube (11) for safety protection. A balancing valve is fixedly connected to the side wall of the purification cylinder (7). The lower end of the balance valve tube (10) is located below the discharge plug (22); an exhaust plug ring (23) is embedded at the top edge of the discharge plug (22) to form a sliding limit structure, and the lower portion of the exhaust plug ring (23) is provided with airflow channels (24) distributed at equal angles, the airflow channels (24) are in a "T"-shaped structure, and the lower end of the airflow channel (24) faces the lower portion of the purification cylinder (7), and the two upper ends of the airflow channel (24) are both fitted on the inner wall of the discharge plug (22) to form a closed structure;The liquid level trigger module includes a reciprocating rod frame (30) horizontally slidably inserted on the inner wall of the discharge plug (22), the reciprocating rod frame (30) is in a "T"-shaped structure, and the eccentric convex shaft on the rotating disk (29) is fitted in the horizontal groove at one end of the reciprocating rod frame (30), and the bottom of the other end of the reciprocating rod frame (30) is fixedly installed with a detection plug rod (31), the detection plug rod (31) and the force cylinder frame (32) are arranged below the discharge plug (22), the force cylinder frame (32) is slidably embedded in the bottom of the discharge plug (22), and the end of the force cylinder frame (32) is fitted with a plug head on one side of the detection plug rod (31) away from the reciprocating rod frame (30), the lower part of the end of the force cylinder frame (32) is provided with a slender notch for liquid inlet, and the top bracket of the force cylinder frame (32) is fixedly connected to the lower end of the trigger rod (33).

2. The bone marrow peptide low-temperature extraction and purification device according to claim 1, characterized in that: The top of the extraction cylinder (2) is fixedly connected to the motor of the electric pusher rack (3), and the rotating rack of the electric pusher rack (3) is rotatably installed inside the extraction cylinder (2). The filter plate (5) is coaxially fixedly connected to the inner wall of the bottom of the extraction cylinder (2), and the top of the filter plate (5) is fitted with a bracket at the bottom of the electric pusher rack (3). The filter plate (5) is located above the upper port of the infusion valve tube (6). An electric discharge plug (4) is provided above the edge of the filter plate (5). The plug body of the electric discharge plug (4) is fitted and embedded in the slag discharge port of the extraction cylinder (2), and the electric cylinder of the electric discharge plug (4) is fixedly installed on the outer wall of the extraction cylinder (2).

3. The bone marrow peptide low-temperature extraction and purification device according to claim 1, characterized in that: The bottom of the inner wall of the purification cylinder (7) is fitted with a symmetrically distributed stirring rack (14), and the outer wall of the bottom end of the stirring rack (14) is fixedly connected to the top of the connecting gear ring (15), and the top of the connecting gear ring (15) and the bottom of the inner wall of the purification cylinder (7) are arranged flush, and the tooth edge of the connecting gear ring (15) is meshed with the output gear of the rotating motor (16), and the main shaft and the output gear of the rotating motor (16) are rotatably embedded in the inner wall of the purification cylinder (7), and the motor housing of the rotating motor (16) is fixedly embedded in the bottom surface of the purification cylinder (7).

4. The bone marrow peptide low-temperature extraction and purification device according to claim 1, characterized in that: A driving motor (12) is fixedly installed on the top of the purification cylinder (7), and an inner core rod (21) is fixedly connected to the output shaft of the driving motor (12), and the inner core rod (21) is coaxially slidably inserted into the inner side of the transmission sleeve (20), and the cross-section of the inner core rod (21) is rectangular. An external threaded sleeve (19) is rotatably sleeved on the outer wall of the transmission sleeve (20), and the external threaded sleeve (19) is inserted through the top of the moving cylinder (13) to form a threaded transmission structure. The upper end of the external threaded sleeve (19) is rotatably embedded in the inner wall of the purification cylinder (7), and the lower end of the external threaded sleeve (19) is rotatably embedded in the bottom of the guide frame (18). The lower part of the transmission sleeve (20) is fixedly inserted through the bottom of the guide frame (18), and a rotating disk (29) is coaxially fixedly connected to the lower end surface of the transmission sleeve (20), and the outer wall of the rotating disk (29) is rotatably embedded in the inner wall of the discharge plug (22).

5. The bone marrow peptide low-temperature extraction and purification device according to claim 1, characterized in that: The convex key provided on the inner side of the loading frame (2801) is slidably embedded in the vertical groove on the transmission sleeve (20), the inner side of the upper surface of the loading frame (2801) is fixedly connected with upper docking blocks (2804) distributed at equal angles, and the upper docking blocks (2804) are slidably inserted into the docking groove opened at the bottom of the rotating gear (25), and the lower outer side of the loading frame (2801) is slidably inserted with a lower docking block (2803), and the top of the lower docking block (2803) and the inner wall of the loading frame (2801) are elastically connected by a spring, and the rotating gear (25 ) is coaxially fixedly connected to the bottom of the external threaded sleeve (19), and a transmission gear (26) is provided between the teeth of the rotating gear (25) and the upper part of the inner gear ring frame (27), and the top of the transmission gear (26) is rotatably embedded in the inner wall of the guide frame (18), and the convex ring at the bottom of the guide frame (18) is embedded in the mounting groove at the top of the inner gear ring frame (27) to form a rotation limiting structure, and the inner side of the lower part of the inner gear ring frame (27) is provided with docking holes distributed at equal angles, and the bottom end of the lower docking block (2803) is provided directly above the docking holes.

6. The bone marrow peptide low-temperature extraction and purification device according to claim 1, characterized in that: The thrust ring frame (2802) is located below the inner gear ring frame (27), and the top of the thrust ring frame (2802) and the bottom surface of the guide frame (18) are elastically connected by a spring, and the spring is sleeved on the outer wall of the guide column (2805). A force block (2806) is fixedly connected in the through groove on the upper part of the guide column (2805), and the force block (2806) is an isosceles trapezoidal structure. The end face of the extrusion frame (34) is fitted on the inclined surface of one side of the force block (2806). The extrusion frame (34) is horizontally slidably installed in the interior of the guide frame (18), and the end of the extrusion frame (34) away from the force block (2806) is embedded in the vertical groove on the side wall of the trigger rod (33) to form a sliding limit structure. The trigger rod (33) slides through the opening at the bottom of the guide frame (18).

7. The low-temperature extraction and purification device for bone marrow peptide according to claim 6, characterized in that: The trigger rod (33) is in an "L"-shaped structure, and the top of the trigger rod (33) is fixedly connected to a contact plate (35), and the contact plate (35) is slidably embedded in the top inner wall of the moving cylinder (13). The bottom of the moving inclined plate (36) is fitted on the inclined surface of the top of the contact plate (35), and the moving inclined plate (36) is slidably embedded in the inner wall of the moving cylinder (13), and the convex column at the bottom of the moving inclined plate (36) slides through the top of the moving cylinder (13), and the bottom of the trigger rod (33) is slidably embedded in the inner wall of the discharge plug (22).

Citation Information

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