A polypeptide cleavage circulating cooling device
By introducing a scraping component and a drive mechanism into the condensation device, the problem of low condensation efficiency caused by condensate accumulation was solved, achieving efficient peptide collection and stable operation, and reducing production costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI YUYUN PHARMACEUTICAL EQUIPMENT CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-06-05
AI Technical Summary
In existing technologies, condensate on the surface of the condenser plate does not slide off in time to form a heat insulation layer, resulting in reduced water vapor condensation efficiency, decreased peptide collection efficiency and quality, and increased production costs.
A peptide lysis circulating cooling device is designed, which adopts a scraping component and a driving mechanism to work together. A servo motor drives a threaded rod to drive a scraper to scrape off condensate, and the condensate is collected in an orderly manner through a collection block and a collection tube, so as to avoid the formation of a heat insulation layer on the surface of the condensation box.
This improves the efficiency of water vapor condensation, ensures the purity of collected peptides, reduces the introduction of impurities, lowers production costs, and ensures stable operation of the equipment.
Smart Images

Figure CN224327594U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of circulating cooling devices, and in particular to a polypeptide lysis circulating cooling device. Background Technology
[0002] In the field of peptide extraction, plant protein cleavage generates peptide-containing water vapor. To effectively extract the peptide components, the water vapor needs to be condensed and the condensed water collected. Currently, related technologies typically use condenser plates to condense the peptide-containing water vapor. However, in actual operation, as water vapor continuously condenses on the surface of the condenser plate, when a layer of condensate adheres to the surface and does not slide off in time, this layer of condensate forms a heat insulation layer, hindering direct contact between subsequent water vapor and the condenser plate. This affects the condensation efficiency of subsequent water vapor, reduces the collection efficiency and quality of peptides, and increases production costs. Therefore, this invention proposes a peptide cleavage circulating cooling device. Utility Model Content
[0003] The purpose of this invention is to address the problem in the prior art where, when condensing polypeptide-containing water vapor using a condenser plate, the condensate on the surface of the condenser plate does not fall off in time to form a heat insulation layer, resulting in reduced water vapor condensation efficiency, which in turn reduces polypeptide collection efficiency and quality and increases costs. The invention proposes a polypeptide pyrolysis circulating cooling device.
[0004] The technical solution of this utility model is as follows: A polypeptide lysis circulating cooling device includes a hollow condenser box, in which two sets of partitions are fixedly connected; two sets of vent pipes are arranged through both sides of the condenser box, and the two sets of vent pipes are respectively fixedly connected to the two sets of partitions; a condensation mechanism installed on the top of the condenser box, which is used to condense the water vapor introduced through the vent pipes; a scraping component arranged below the condensation mechanism, which is in close contact with the condensation mechanism; and a driving mechanism located on the side of the scraping component, which is used to drive the scraping component to move and scrape off the condensate on the condensation mechanism.
[0005] Optionally, the condensation mechanism includes a refrigeration unit installed on the top of the condensation chamber. The output and input ends of the refrigeration unit are connected to inlet and outlet pipes. A connecting joint is installed at the end of the inlet and outlet pipes away from the refrigeration unit. The inlet and outlet pipes are connected to multiple sets of connecting pipes through the connecting joints. All sets of connecting pipes pass through the top of the condensation chamber and are connected to a dispersion box. A condensation box is provided between two sets of dispersion boxes. The condensation box is fixedly connected between two sets of partitions. Multiple sets of through holes are opened between the dispersion box and the condensation box.
[0006] Optionally, the scraping assembly includes a movable rod slidably connected between two sets of partitions. Multiple sets of rubber sleeves are rotatably sleeved on the movable rod. A rotating ring is fixedly connected to the outer ring of the rubber sleeve. A limiting rod is fixedly connected to the top of the rotating ring. A scraper is fixedly connected to the multiple sets of limiting rods. A first spring is sleeved on the outer ring of each set of limiting rods. The first spring is located between the rotating ring and the scraper.
[0007] Optionally, a limit block is fixedly connected to the bottom of the rotating ring, and stops are symmetrically arranged on both sides of the limit block. Two sets of fixed discs are fixedly connected to both ends of the two sets of stops, and both sets of fixed discs are fixedly connected to the outer ring of the moving rod.
[0008] Optionally, a fixing plate is fixedly connected to the bottom of the limiting block, and a top rod is slidably connected in the fixing plate. Both ends of the top rod are fixedly connected to contact blocks, and two sets of second springs are sleeved and installed on the top rod, with the two sets of second springs symmetrically arranged on both sides of the fixing plate.
[0009] Optionally, baffles are installed on opposite sides of both sets of partitions, and both sets of baffles are located above the moving rod. Two sets of retaining rings are fixedly connected to the moving rod, and the two sets of retaining rings are located on the side of the two sets of baffles that are far apart from each other.
[0010] Optionally, the drive mechanism includes a threaded sleeve fixedly connected to one end of a moving rod, a threaded rod threadedly connected to the threaded sleeve, the threaded rod being rotatably connected to the condenser box, a servo motor mounted on the outside of the condenser box, the output end of the servo motor passing through the condenser box and fixedly connected to the threaded rod, a slider fixedly connected to the end of the moving rod away from the threaded sleeve, a sliding rod slidably connected to the slider, and the sliding rod being fixedly connected to the inner wall of the condenser box.
[0011] Optionally, a collection block is provided between the two sets of partitions, the collection block is fixedly connected to the bottom of the condenser box, a collection pipe is installed at the bottom of the condenser box, and multiple sets of support legs are fixedly connected to the bottom of the condenser box.
[0012] In summary, this application includes at least one of the following beneficial technical effects:
[0013] This invention utilizes a coordinated design of the scraping component and the driving mechanism. When the condensate on the surface of the condensation box reaches a certain amount, the servo motor drives the threaded rod to rotate, which in turn drives the scraper on the moving rod to move along the surface of the condensation box. The scraper, in conjunction with the first spring, ensures that it fits tightly against the condensation box, effectively removing the condensate. Simultaneously, when the scraper moves to the side wall of the condensation box, the top rod and the contact block work together to tilt the scraper, ensuring that the condensate is completely scraped off. This prevents the condensate from forming a heat insulation layer on the surface of the condensation box, allowing subsequent water vapor to directly contact the low-temperature condensation box, significantly improving condensation efficiency and effectively solving the problem of condensate affecting water vapor condensation in the prior art.
[0014] Furthermore, the condensate scraped off flows along the scraper to the collection block, and is then discharged through the collection pipe. This design forms an orderly collection path for the condensate, avoiding random dripping or residue of condensate that could interfere with the operation of the device. This ensures that the peptide components in the collected condensate are purer and reduces the mixing of impurities. At the same time, the efficient condensate removal and collection mechanism ensures the continuous and stable operation of the device, thereby improving the quality and efficiency of peptide collection and reducing production costs.
[0015] In summary, this invention effectively solves the problem of condensate accumulation and achieves orderly collection, improves water vapor condensation efficiency and peptide collection quality, and reduces production costs. Attached Figure Description
[0016] Figure 1 A schematic diagram of a polypeptide lysis circulating cooling device is provided.
[0017] Figure 2 for Figure 1 A schematic diagram of the cross-sectional structure;
[0018] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0019] Figure 4 This is a schematic diagram of the cross-sectional structure of the rotating ring.
[0020] Figure label:
[0021] 1. Condensation chamber; 11. Baffle; 12. Collection block; 13. Collection pipe; 14. Support leg;
[0022] 2. Vent pipe; 3. Condensation mechanism; 31. Refrigeration unit; 32. Inlet and outlet pipes; 33. Connecting joint; 34. Connecting pipe; 35. Dispersion box; 36. Condensation box;
[0023] 4. Scraping assembly; 41. Moving rod; 42. Rubber sleeve; 43. Rotating ring; 44. Limiting rod; 45. Scraper; 46. First spring; 47. Limiting block; 48. Stop block; 49. Fixing plate; 410. Fixing plate; 411. Top rod; 412. Contact block; 413. Second spring; 414. Baffle; 415. Retaining ring;
[0024] 5. Drive mechanism; 51. Threaded sleeve; 52. Threaded rod; 53. Servo motor; 54. Slider; 55. Slide bar. Detailed Implementation
[0025] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are some embodiments of this utility model, but not all embodiments.
[0026] The components of the present invention embodiments described and shown in the accompanying drawings can typically be arranged and designed in a variety of different configurations. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention.
[0027] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0028] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0029] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0030] Example
[0031] like Figure 1 and Figure 2 As shown, the present invention proposes a polypeptide lysis circulating cooling device, comprising a hollow condenser box 1, two sets of partitions 11 fixedly connected in the condenser box 1, a collecting block 12 disposed between the two sets of partitions 11, the collecting block 12 fixedly connected to the bottom of the condenser box 1, and a collecting pipe 13 installed at the bottom of the condenser box 1, so that the falling condensate can be collected by the collecting block 12 and discharged from the collecting pipe 13. Multiple sets of support legs 14 are fixedly connected to the bottom of the condenser box 1.
[0032] Furthermore, the aforementioned circulating cooling device includes two sets of vent pipes 2 that run through both sides of the condenser box 1. The two sets of vent pipes 2 are fixedly connected to two sets of partitions 11, respectively, so that water vapor can be discharged between the two sets of partitions 11 through the vent pipes 2.
[0033] Furthermore, the aforementioned circulating cooling device also includes a condensation mechanism 3 installed on the top of the condensing chamber 1. The condensation mechanism 3 is used to condense the water vapor introduced into the vent pipe 2. The condensation mechanism 3 includes a refrigerator 31 installed on the top of the condensing chamber 1. Both the output and input ends of the refrigerator 31 are connected to inlet and outlet pipes 32. A connecting joint 33 is installed at the end of the inlet and outlet pipes 32 away from the refrigerator 31. The inlet and outlet pipes 32 are connected to multiple sets of connecting pipes 34 through the connecting joint 33. The multiple sets of connecting pipes 34 all penetrate the top of the condensing chamber 1 and are connected to a dispersion box 35. A condensation box 36 is arranged between two sets of dispersion boxes 35. The condensation box 36 is fixedly connected between two sets of partitions 11. Multiple sets of through holes are opened between the dispersion box 35 and the condensation box 36. The refrigerator 31 drives the condensate to circulate in the condensation box 36, reducing the surface temperature of the condensation box 36.
[0034] For details, please refer to Figures 2 to 4The aforementioned circulating cooling device includes a scraping assembly 4 located below the condensing mechanism 3, which is in close contact with the condensing mechanism 3. The scraping assembly 4 includes a movable rod 41 slidably connected between two sets of partitions 11. Multiple sets of rubber sleeves 42 are rotatably fitted onto the movable rod 41. A rotating ring 43 is fixedly connected to the outer ring of each rubber sleeve 42. The rubber sleeves 42 increase the friction of the rotating ring 43 during rotation, preventing accidental rotation. A limiting rod 44 is fixedly connected to the top of the rotating ring 43. A scraper 45 is fixedly connected to the multiple limiting rods 44. A first spring 46 is fitted onto the outer ring of each limiting rod 44. The first spring 46 is located between the rotating ring 43 and the scraper 45. The first spring 46 releases its elastic force, causing the scraper 45 to approach the condensation box 36, facilitating the scraping of condensed water at the bottom of the condensation box 36 as the scraper 45 moves, allowing subsequent water vapor to directly contact the condensation box 36. A limiting block 47 is fixedly connected to the bottom of the rotating ring 43. A stop block 48 is symmetrically arranged on both sides of the limiting block 47. Two sets of fixed disks 49 are fixedly connected to both ends of the two sets of stop blocks 48. Both sets of fixed disks 49 are fixedly connected to the outer ring of the moving rod 41. The positions of the stop block 48 and the fixed disk 49 are fixed, and they work with the limiting block 47 to limit the rotation angle of the rotating ring 43. A fixed plate 410 is fixedly connected to the bottom of the limiting block 47. A top rod 411 is slidably connected in the fixed plate 410. Contact blocks 412 are fixedly connected to both ends of the top rod 411. Two sets of second springs 413 are sleeved on the top rod 411 and are symmetrically arranged on both sides of the fixed plate 410. When the moving rod 41 moves, it drives the fixed plate 410 and the top rod 411 to move synchronously. When the moving rod 41 moves to a position close to the side wall of the condenser box 1, the contact blocks 412 contact the condenser box 1, thereby shifting the angle of the scraper 45, making the scraper 45 tilt, so that the condensate at the bottom of the condenser box 36 can be scraped off when the scraper 45 moves. Baffles 414 are installed on opposite sides of the two sets of partitions 11. Both sets of baffles 414 are located above the moving rod 41. The baffles 414 are used to prevent condensate from passing through the sliding position between the moving rod 41 and the partition 11. Two sets of retaining rings 415 are fixedly connected to the moving rod 41. The two sets of retaining rings 415 are located on the opposite side of the two sets of baffles 414. The retaining rings 415 are used to prevent condensate from flowing along the moving rod 41 to the opposite side of the two sets of baffles 11.
[0035] Furthermore, the aforementioned circulating cooling device also includes a drive mechanism 5 located on the side of the scraping assembly 4. The drive mechanism 5 is used to move the scraping assembly 4 to scrape away the condensate on the condensation mechanism 3. The drive mechanism 5 includes a threaded sleeve 51 fixedly connected to one end of a moving rod 41. The threaded sleeve 51 moves synchronously with the moving rod 41. A threaded rod 52 is threadedly connected to the threaded sleeve 51. The threaded rod 52 is rotatably connected to the condensation box 1. When the threaded rod 52 rotates, it drives the threaded sleeve 51 to move along the length of the threaded rod 52. A servo motor 53 is installed on the outside of the condensation box 1. The output end of the servo motor 53 passes through the condensation box 1 and is fixedly connected to the threaded rod 52. After the servo motor 53 starts, it drives the threaded rod 52 to rotate. A slider 54 is fixedly connected to the end of the moving rod 41 away from the threaded sleeve 51. A slide rod 55 is slidably connected to the slider 54. The slide rod 55 is fixedly connected to the inner wall of the condensation box 1. The position of the slide rod 55 is fixed. It works with the slider 54 to limit the movement of the moving rod 41, making the movement of the moving rod 41 smooth.
[0036] In this embodiment, firstly, water vapor containing peptides is discharged into the space between the two sets of partitions 11 through the vent pipe 2. At this time, the refrigerator 31 installed on the top of the condenser box 1 is started. The refrigerator 31 drives the condensate to flow in the circulation path composed of the inlet and outlet pipes 32, the connecting pipe 34, the dispersion box 35, and the condensation box 36. Through the through hole between the dispersion box 35 and the condensation box 36, the condensate is evenly dispersed into the condensation box 36, reducing the surface temperature of the condensation box 36, thereby condensing the water vapor introduced in the vent pipe 2, causing the water vapor to condense into liquid water and adhere to the surface of the condensation box 36.
[0037] Next, when the water condensed on the surface of the condensation box 36 reaches a certain amount, the drive mechanism 5 starts working. The servo motor 53 starts, driving the threaded rod 52 to rotate. Since the threaded sleeve 51 is threadedly connected to the threaded rod 52, the threaded sleeve 51 will move along the length of the threaded rod 52, thereby driving the moving rod 41 fixedly connected to it to move. When the moving rod 41 moves, it drives the scraper 45 to move along the surface of the condensation box 36. Under the elastic force of the first spring 46, the scraper 45 tightly adheres to the condensation box 36, scraping off the water condensed at the bottom.
[0038] Simultaneously, when the moving rod 41 moves to a position close to the side wall of the condenser box 1, the fixed plate 410 drives the top rod 411 to move. The contact blocks 412 at both ends of the top rod 411 contact the condenser box 1, pushing the top rod 411 to slide in the fixed plate 410, compressing the second spring 413, causing the scraper 45 to tilt at an angle, more effectively scraping down the condensate at the bottom of the condenser box 36. The scraped condensate flows along the scraper 45 to the collection block 12 and is discharged through the collection pipe 13 for subsequent collection of the polypeptide components. During this process, the rubber sleeve 42 increases the friction of the rotating ring 43 during rotation, preventing it from rotating accidentally; the limiting block 47, the stop block 48, and the fixed plate 49 cooperate to limit the rotation angle of the rotating ring 43; the baffle 414 prevents condensate from passing through the sliding position between the moving rod 41 and the partition 11; the retaining ring 415 prevents condensate from flowing along the moving rod 41 to the side of the two sets of partitions 11 that are far apart, ensuring the normal and stable operation of the device.
[0039] The above specific embodiments are merely optional embodiments of this utility model. Based on the technical solution of this utility model and the relevant teachings of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.
Claims
1. A polypeptide lysis circulating cooling device, characterized in that, include: A hollow condenser box (1) is provided, and two sets of partitions (11) are fixedly connected in the condenser box (1); Two sets of vent pipes (2) are installed through both sides of the condenser (1), and the two sets of vent pipes (2) are fixedly connected to two sets of partitions (11) respectively; The condensing mechanism (3) installed on the top of the condensing box (1) is used to condense the water vapor introduced into the vent pipe (2); A scraping assembly (4) is disposed below the condensation mechanism (3), and the scraping assembly (4) is in close contact with the condensation mechanism (3); A drive mechanism (5) is located on the side of the scraping assembly (4), which is used to drive the scraping assembly (4) to move and scrape the condensate on the condensation mechanism (3).
2. The polypeptide lysis circulating cooling device according to claim 1, characterized in that, The condensation mechanism (3) includes a refrigeration unit (31) installed on the top of the condensation box (1). The output end and input end of the refrigeration unit (31) are connected to inlet and outlet pipes (32). A connecting joint (33) is installed on the end of the inlet and outlet pipe (32) away from the refrigeration unit (31). The inlet and outlet pipe (32) is connected to multiple sets of connecting pipes (34) through the connecting joint (33). The multiple sets of connecting pipes (34) all pass through the top of the condensation box (1) and are connected to a dispersion box (35). A condensation box (36) is provided between two sets of dispersion boxes (35). The condensation box (36) is fixedly connected between two sets of partitions (11). Multiple sets of through holes are opened between the dispersion box (35) and the condensation box (36).
3. The polypeptide lysis circulating cooling device according to claim 2, characterized in that, The scraping assembly (4) includes a movable rod (41) slidably connected between two sets of partitions (11). Multiple sets of rubber sleeves (42) are rotatably sleeved on the movable rod (41). A rotating ring (43) is fixedly connected to the outer ring of the rubber sleeves (42). A limiting rod (44) is fixedly connected to the top of the rotating ring (43). A scraper (45) is fixedly connected to the multiple sets of limiting rods (44). A first spring (46) is sleeved and installed on the outer ring of each of the multiple sets of limiting rods (44). The first spring (46) is located between the rotating ring (43) and the scraper (45).
4. The polypeptide lysis circulating cooling device according to claim 3, characterized in that, The bottom of the rotating ring (43) is fixedly connected to a limiting block (47). The limiting block (47) is symmetrically provided with a stop block (48) on both sides. The two sets of stop blocks (48) are fixedly connected to two sets of fixed discs (49) at both ends. The two sets of fixed discs (49) are fixedly connected to the outer ring of the moving rod (41).
5. The polypeptide lysis circulating cooling device according to claim 4, characterized in that, The bottom of the limiting block (47) is fixedly connected to a fixing plate (410), and a top rod (411) is slidably connected in the fixing plate (410). Both ends of the top rod (411) are fixedly connected to contact blocks (412). Two sets of second springs (413) are sleeved on the top rod (411), and the two sets of second springs (413) are symmetrically arranged on both sides of the fixing plate (410).
6. The polypeptide lysis circulating cooling device according to claim 5, characterized in that, Both sets of partitions (11) are equipped with baffles (414) on opposite sides. Both sets of baffles (414) are located above the moving rod (41). Two sets of retaining rings (415) are fixedly connected to the moving rod (41). The two sets of retaining rings (415) are located on opposite sides of the two sets of baffles (414).
7. The polypeptide lysis circulating cooling device according to claim 6, characterized in that, The drive mechanism (5) includes a threaded sleeve (51) fixedly connected to one end of a moving rod (41), a threaded rod (52) threadedly connected in the threaded sleeve (51), the threaded rod (52) being rotatably connected in the condenser box (1), a servo motor (53) being installed on the outside of the condenser box (1), the output end of the servo motor (53) passing through the condenser box (1) and fixedly connected to the threaded rod (52), a slider (54) fixedly connected to one end of the moving rod (41) away from the threaded sleeve (51), a sliding rod (55) slidably connected in the slider (54), and the sliding rod (55) being fixedly connected to the inner wall of the condenser box (1).
8. The polypeptide lysis circulating cooling device according to claim 7, characterized in that, A collection block (12) is provided between the two sets of partitions (11). The collection block (12) is fixedly connected to the bottom of the condenser box (1). A collection pipe (13) is installed at the bottom of the condenser box (1). Multiple sets of support legs (14) are fixedly connected to the bottom of the condenser box (1).