Recovery device for heparin sodium in casing pickling saline water
By introducing aeration and stirring components into the heparin sodium extraction device, the resin deposition problem was solved, the adsorption efficiency and resin life were improved, and efficient solid-liquid separation was achieved.
Patent Information
- Application Number
- CN202423230494.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2034-12-26
AI Technical Summary
In existing heparin sodium extraction devices, resin tends to deposit at the bottom of the adsorption tank, resulting in low adsorption efficiency and a shortened resin lifespan.
An aeration and stirring assembly was designed. Aeration was introduced into the adsorption tank through the central pipe and air hood to make the resin float. The liquid was then propelled by the rotating plate and the pusher plate. Combined with the discharge separation assembly, solid-liquid separation was achieved.
This improved the adsorption efficiency of heparin sodium, extended the service life of the resin, and enabled convenient and thorough solid-liquid separation.
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Figure CN223752495U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of casing production by-product processing equipment, specifically, relates to a recovery device of pickling casing sodium heparin in brine. BACKGROUND
[0002] China is a large country of pig breeding, has rich pig slaughter by-products piglet, can obtain casing and heparin sodium etc. Among them, casing is mainly scraped processing to piglet, left one layer or several layers of transparent, soft, flexible film, through pickling to form salted casing to save, has the characteristics of suitable intestinal wall tenacity, rich elasticity, moderate size and not easy to break, mainly used for making various sausage casing; Heparin sodium is the sodium salt of sulfated amino polysaccharide extracted from the intestinal mucosa left after scraping piglet, belongs to mucopolysaccharide sulfate anticoagulant, is the most effective and largest clinical dosage anticoagulant in the world, mainly used for cardiovascular and cerebrovascular diseases and hemodialysis treatment.
[0003] In recent years, the export of casing and heparin sodium in China has increased substantially, and has become the most promising and potential industry in agricultural products. However, during the production of casing, due to the difference of scraping machine or the skill of the operator, the piglet may not be scraped clean, and part of the heparin-rich intestinal mucosa may remain in the casing. After pickling, the brine permeated by the casing contains rich heparin sodium. If the pickled casing brine is discarded directly, the heparin sodium in it will not be fully extracted and utilized, which will cause waste of resources and environmental pollution. Therefore, it is urgent to develop a recovery device for heparin sodium in pickled casing brine.
[0004] The present application provides a constant temperature resin adsorption tank for heparin sodium extraction, which comprises a support table and an extraction tank, the extraction tank is fixed on the support table, the bottom corners of the support table are fixedly connected with support legs, the adsorption tank of the extraction tank is hollow, and a circulating water layer is arranged inside the tank wall of the extraction tank, a stirring motor is fixedly arranged at the top center of the extraction tank, the output shaft of the stirring motor is fixedly connected with a rotating rod, the rotating rod is fixedly connected with a stirring paddle, first and second feed ports are respectively arranged at the top of the extraction tank on both sides of the stirring motor, and a filter screen layer is arranged in the extraction tank.
[0005] The above-mentioned heparin sodium extraction device has the following problems: the resin in the adsorption tank is easy to deposit at the bottom of the adsorption tank under the action of gravity, which makes it difficult for the resin to fully absorb the heparin sodium in the pickled casing brine in the adsorption tank. At the same time, the resin deposited at the bottom of the adsorption tank is easy to be hit and collided by the stirring paddle, which greatly reduces the service life of the adsorption resin.
[0006] Therefore, the above problems are improved. Utility model content
[0007] The utility model provides a kind of recovery device of pickling casing salt water heparin sodium, solve the resin in the attached jar in relevant technology under the action of gravity, further lead to these resins to be difficult to absorb heparin sodium in pickling casing salt water in adsorption jar, and the resin deposited in the bottom of adsorption jar is also easy to be hit and collide by stirring paddle, lead to the service life of adsorption resin greatly reduced.
[0008] The technical scheme of the utility model is as follows: including
[0009] Adsorption jar and outer support, the outer support is set in the adsorption jar outside;
[0010] Stirring assembly, the stirring assembly is set in the adsorption jar;
[0011] Aeration assembly, the aeration assembly is set in the adsorption jar;
[0012] Bottom box and discharge separation assembly, the bottom box is fixed in the bottom of adsorption jar, and the discharge separation assembly is set in the bottom box;
[0013] The aeration assembly includes top frame, the top frame is fixed in the top of adsorption jar, the center tube is fixedly connected in the top frame, the gas cover is provided at the lower end of the center tube, and a plurality of air holes are formed in the bottom surface of the gas cover.
[0014] As a further technical scheme, the stirring assembly includes a circular port, the circular port is opened in the top of the adsorption jar, the rotating plate is rotatably connected in the circular port, and the rotating plate is rotatably sleeved and connected outside the center tube.
[0015] As a further technical scheme, the rotating plate top is provided with an external gear, the adsorption jar top is provided with a driving motor, the driving motor output end is provided with a driving gear, and the driving gear is engaged with the external gear.
[0016] As a further technical scheme, the rotating plate bottom is provided with a plurality of extension rods, the adsorption jar inner wall is provided with a slide rail, the slide rail is slidably connected with an inner ring frame, a plurality of push flow plates are arranged on the inner surface of the inner ring frame, and the inner ring frame is fixedly connected with the lower end of the extension rod.
[0017] As a further technical scheme, the discharge separation assembly includes a second motor, the second motor is installed on the side surface of the bottom box, the separation cover is rotatably connected in the bottom box, and the separation cover is connected with the output end of the second motor.
[0018] As a further technical scheme, the separation cover is provided with a filter hole on one side, the bottom box is provided with a discharge cover on one side, the separation cover is of an open structure on one side, and the bottom box is provided with a turnover cover on one side.
[0019] As a further technical scheme, the adsorption tank is provided with a plurality of exhaust holes on the top.
[0020] As a further technical scheme, the gas cover is of an arc-shaped structure on the bottom surface.
[0021] As a further technical scheme, the bottom box is provided with a blocking cover, and the blocking cover is sealingly attached to the side end face of the separation cover.
[0022] The working principle and beneficial effects of the utility model are as follows:
[0023] 1. The aeration assembly is arranged in the utility model, and the central pipe, the gas cover and the gas hole interact to continuously aerate the adsorption tank, so that the resin in the adsorption tank floats upwards, the adsorption effect and efficiency are improved, and the use effect of the adsorption tank is improved.
[0024] 2. The discharge separation assembly is arranged in the utility model, and the separation cover, the filter hole, the discharge cover and the turnover cover interact to discharge the adsorbed liquid and solid respectively, and the separation is convenient to clean after separation, no residue is left, and the separation effect is good. DRAWINGS
[0025] The utility model will be further described in detail in combination with the drawings and specific embodiments.
[0026] Figure 1 It is a structural schematic view of the utility model;
[0027] Figure 2 It is an axonometric view of the utility model;
[0028] Figure 3 It is an axonometric sectional view of the utility model;
[0029] Figure 4 It is an attached view of the utility model; Figure 3 It is a local enlarged view of part A of the utility model;
[0030] In the figure: 1, adsorption tank; 2, outer support; 3, bottom box; 4, aeration assembly; 4-1, top frame; 4-2, center tube; 4-3, gas cover; 4-4, air hole; 5, stirring assembly; 5-1, circular port; 5-2, rotating plate; 5-3, outer gear; 5-4, drive motor; 5-5, drive gear; 5-6, extension rod; 5-7, slide rail; 5-8, inner ring frame; 5-9, push flow plate; 6, discharge separation assembly; 6-1, second motor; 6-2, separation cover; 6-3, filter hole; 6-4, discharge cover; 6-5, turnover cover; 7, exhaust hole; 8, baffle cover. DETAILED DESCRIPTION
[0031] The technical solutions in the embodiments of the utility model will be clearly and completely described below in combination with the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor are involved in the protection scope of the utility model.
[0032] As shown in the figure, the embodiment provides a recovery device for sodium heparin in pickling casing brine, which comprises Figures 1-4
[0033] The adsorption tank 1 and the outer support 2 are arranged outside the adsorption tank 1.
[0034] The stirring assembly 5 is arranged in the adsorption tank 1.
[0035] The aeration assembly 4 is arranged in the adsorption tank 1.
[0036] The bottom box 3 is fixed at the bottom of the adsorption tank 1, and the discharge separation assembly 6 is arranged in the bottom box 3.
[0037] The aeration assembly 4 comprises the top frame 4-1, the top frame 4-1 is fixed at the top of the adsorption tank 1, the center tube 4-2 is fixedly connected in the top frame 4-1, the gas cover 4-3 is arranged at the lower end of the center tube 4-2, and a plurality of air holes 4-4 are formed in the bottom surface of the gas cover 4-3.
[0038] In the embodiment, in order to realize the effect of strengthening adsorption by aeration resin floating, the aeration assembly 4 is designed, the top frame 4-1 is arranged at the top of the adsorption tank 1 and the center tube 4-2 is installed, the center tube 4-2 is located in the adsorption tank 1, the gas cover 4-3 is arranged at the bottom of the center tube 4-2 and the air holes 4-4 are formed in the bottom surface, the center tube 4-2 can be connected with the gas conveying equipment, and the gas can be continuously aeration into the adsorption tank 1 through the air holes 4-4, so that the resin can keep floating state.
[0039] Further, the stirring assembly 5 comprises a circular opening 5-1 formed in the top of the adsorption tank 1, a rotating plate 5-2 rotatably connected in the circular opening 5-1, the rotating plate 5-2 rotatably sleeved on the outside of the central pipe 4-2, an external gear 5-3 arranged on the top of the rotating plate 5-2, a driving motor 5-4 arranged on the top of the adsorption tank 1, a driving gear 5-5 arranged on the output end of the driving motor 5-4, the driving gear 5-5 engaged with the external gear 5-3, a plurality of extension rods 5-6 arranged on the bottom of the rotating plate 5-2, a sliding rail 5-7 arranged on the inner wall of the adsorption tank 1, an inner ring frame 5-8 slidably connected in the sliding rail 5-7, a plurality of push flow plates 5-9 arranged on the inner surface of the inner ring frame 5-8, and the inner ring frame 5-8 fixedly connected with the lower ends of the extension rods 5-6.
[0040] In the embodiment, in order to achieve the effect of push flow stirring, the stirring assembly 5 is designed, the circular opening 5-1 is formed in the top of the tank body and the rotating plate 5-2 is rotatably connected in the circular opening 5-1, the external gear 5-3 is arranged on the top of the rotating plate 5-2, the driving motor 5-4 and the driving gear 5-5 are also fixed, the driving gear 5-5 is engaged with the external gear 5-3, the rotating plate 5-2 can be controlled to rotate, the sliding rail 5-7 is arranged on the inner wall of the adsorption tank 1 and the inner ring frame 5-8 is slidably connected, the plurality of push flow plates 5-9 are arranged on the surface of the inner ring frame 5-8, and the liquid can be pushed to flow when the rotating plate 5-2 rotates.
[0041] Further, the discharging and separating assembly 6 comprises a second motor 6-1 mounted on the side surface of the bottom box 3, a separating cover 6-2 rotatably connected in the bottom box 3, the separating cover 6-2 connected with the output end of the second motor 6-1, a filter hole 6-3 formed in one side of the separating cover 6-2, a discharging cover 6-4 arranged on one side of the bottom box 3, the other side of the separating cover 6-2 being an open structure, and a turnover cover 6-5 formed on one side of the bottom box 3.
[0042] In the embodiment, in order to achieve the effect of distinguishing discharging, the discharging and separating assembly 6 is designed, the second motor 6-1 is arranged on one side of the bottom box 3, the separating cover 6-2 is rotatably connected in the bottom box 3, the separating cover 6-2 can be controlled to rotate left and right by the second motor 6-1, the filter hole 6-3 is formed in one side of the separating cover 6-2, the discharged liquid can be filtered, the solid and liquid can be separated, the liquid can be discharged outward through the discharging cover 6-4, the other side of the separating cover 6-2 is an open structure, the solid can be discharged outward by tilting to the other side, and the turnover cover 6-5 is mounted on one side of the bottom box 3, the separating cover 6-2 can be cleaned after being opened.
[0043] Further, a plurality of exhaust holes 7 are formed in the top of the adsorption tank 1.
[0044] In the embodiment, the exhaust holes 7 are formed, and the gas during aeration can be discharged outward.
[0045] Further, the bottom surface of the gas cover 4-3 is an arc-shaped structure surface.
[0046] In this embodiment, the arc-shaped structure surface makes the multiple gas holes 4-4 have an angle, so that the gas distribution is more uniform.
[0047] Further, the bottom box 3 is provided with a baffle cover 8, which is in sealing contact with the side end surface of the separation cover 6-2.
[0048] In this embodiment, the baffle cover 8 can close the opening part of the separation cover 6-2, so as to avoid overflow caused by excessive flow.
[0049] When processing is needed, the material and resin are all put into the adsorption tank 1, the driving motor 5-4 is started to control the rotation of the rotating plate 5-2, the internal push flow plate 5-9 is driven to continuously push flow, gas is input into the gas cover 4-3, and the resin is floated upward through the gas holes 4-4, so as to improve the adsorption effect; when discharging, the discharged material enters into the separation cover 6-2, the liquid is separated out through the filter hole 6-3 and discharged outwards through the discharge cover 6-4, after discharge, the separation cover 6-2 is controlled to rotate to the other side, and the turnover cover 6-5 is opened to clean the inside of the separation cover 6-2.
[0050] The above is only a preferred embodiment of the present application, and is not used to limit the present application, any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application should be included in the protection scope of the present application.
Claims
1. A device for recovering heparin sodium from a casing brine, characterized in that, The utility model relates to an adsorption tank and outer support (2) are arranged outside adsorption tank (1); Stirring assembly (5) is arranged in adsorption tank (1); Aeration assembly (4) is arranged in adsorption tank (1); Bottom box (3) and discharge separation assembly (6) are fixed in the bottom of adsorption tank (1), and discharge separation assembly (6) is arranged in bottom box (3); The aeration assembly (4) includes a top frame (4-1) fixed to the top of the adsorption tank (1), a central pipe (4-2) fixedly connected inside the top frame (4-1), and a gas cover (4-3) provided at the lower end of the central pipe (4-2), wherein the bottom surface of the gas cover (4-3) is provided with a plurality of air holes (4-4). The stirring assembly (5) includes a circular opening (5-1) formed in the top of the adsorption tank (1), and a rotating plate (5-2) rotatably connected inside the circular opening (5-1), wherein the rotating plate (5-2) is rotatably sleeved outside the central pipe (4-2).
2. A device for recovering sodium heparin from a brine used for pickling casings according to claim 1, characterized in that The rotating plate (5-2) is provided with an external gear (5-3) at the top thereof, the top of the adsorption tank (1) is provided with a driving motor (5-4), the output end of the driving motor (5-4) is provided with a driving gear (5-5), and the driving gear (5-5) is engaged with the external gear (5-3).
3. A device for recovering sodium heparin from a brine used for pickling casings according to claim 2, characterized in that The bottom of the rotating plate (5-2) is provided with a plurality of extension rods (5-6), the inner wall of the adsorption tank (1) is provided with a sliding rail (5-7), the sliding rail (5-7) is slidably connected with an inner ring frame (5-8), the inner surface of the inner ring frame (5-8) is provided with a plurality of push flow plates (5-9) around the same, and the inner ring frame (5-8) is fixedly connected with the lower ends of the extension rods (5-6).
4. A device for recovering sodium heparin from a brine used for pickling casings according to claim 3, characterized in that The discharge separation assembly (6) includes a second motor (6-1) mounted on the side surface of the bottom box (3), and a separation cover (6-2) rotatably connected inside the bottom box (3), wherein the separation cover (6-2) is connected with the output end of the second motor (6-1).
5. The device for recovering sodium heparin from brine used for salting casings according to claim 1, characterized in that, One side of the separation cover (6-2) is provided with a filter hole (6-3), one side of the bottom box (3) is provided with a discharge cover (6-4), one side of the separation cover (6-2) is of an open structure, and the bottom box (3) is provided with a turnover cover (6-5) on one side thereof.
6. A device for recovering sodium heparin from a brine used for pickling casings according to claim 5, characterized in that The top of the adsorption tank (1) is provided with a plurality of exhaust holes (7).
7. A device for recovering sodium heparin from a brine used for pickling casings according to claim 1, characterized in that The bottom surface of the gas cover (4-3) is of an arc-shaped structure.
8. A device for recovering sodium heparin from a brine solution for the salting of casings according to claim 1, characterized in that, The bottom box (3) is provided with a blocking cover (8) sealed and attached to the side end surface of the separation cover (6-2).
9. A device for recovering sodium heparin from a brine solution for the salting of casings according to claim 5, characterized in that,