Multifunctional separation device for calcium gluconate double-enzyme method purification
The upper and lower filter buckets with a multifunctional separation device were purified by the calcium gluconate double enzyme method. The upper and lower filter buckets were graded filtration designs combined with the stirring and vibration components, which solved the problem that a single funnel could not completely separate impurities and reactants, improved the filtration efficiency and service life of the filter paper, and ensured the purity and quality of the product.
Patent Information
- Application Number
- CN202422167007.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-04
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-09-04
AI Technical Summary
In the prior art, a single funnel cannot achieve complete separation of calcium gluconate reactants and impurities, resulting in a decrease in product purity, and the filter paper is prone to damage and has a short service life.
A multifunctional separation device for purification using calcium gluconate double enzyme method, including a graded filtration design of the upper filter bucket and the lower filter bucket. Combined with agitation and vibration components, the filtration is accelerated through the stirring rod, and the leakage plate vibration avoids blockage, improves filtration efficiency and extends the life of the filter paper.
It improves filtration efficiency, reduces damage and wear of filter paper, extends the service life of filter paper, and ensures the purity and quality of the product.
Smart Images

Figure CN223214107U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of purification and processing of calcium gluconate, in particular to a multifunctional separation device for purifying calcium gluconate by a double-enzyme method. Background Art
[0002] Calcium gluconate is an organic calcium salt that is widely used in the fields of medicine, food, and chemical industry. Currently, the dual-enzyme method is usually used to catalyze the conversion of glucose into calcium gluconate. During the catalytic process, impurities in the reactants need to be purified so that the reactants can be separated, thereby improving the purity of the product and thus improving product quality.
[0003] Currently, in the process of purifying and separating calcium gluconate, only a funnel is usually used to separate the reactants. However, a single funnel cannot completely separate impurities and reactants, which may cause impurities to mix into the filtrate, thereby affecting the purity of the product. In addition, filtering through only one funnel will make the filter paper in the funnel more easily damaged, thereby reducing the service life of the filter paper. Therefore, to address the above problems, a multifunctional separation device for the dual-enzyme purification of calcium gluconate is proposed. Utility Model Content
[0004] In order to make up for the shortcomings of the existing technology and avoid the problem that a single funnel cannot achieve complete separation of impurities and reactants, the utility model proposes a multifunctional separation device for calcium gluconate dual-enzyme purification.
[0005] The technical solution adopted by the utility model to solve its technical problems is as follows: a multifunctional separation device for double-enzyme purification of calcium gluconate comprises a pillar, an upper filter assembly is provided on the top of the pillar surface, the upper filter assembly comprises an upper limiting plate provided on the top of the pillar surface, an upper threaded rod is threadedly connected to the right side of the upper limiting plate, an upper support block is fixedly connected to the left side of the upper limiting plate, an upper filter bucket is sleeved on the interior of the left side of the upper support block, an upper filter bucket is fixedly connected to the bottom end of the upper filter bucket, a material discharge assembly is provided on the top of the upper filter assembly, a stirring assembly is provided on the top of the material discharge assembly, a vibration assembly is provided on the surface of the upper filter assembly, a lower filter assembly is provided on the middle part of the pillar surface, and a collecting cylinder is sleeved on the bottom of the pillar surface;
[0006] The blanking assembly includes a support rod fixedly installed on the top of the upper support block, the top of the support rod is slidably connected to a sliding guide rail, a return spring is fixedly installed on the left side of the top of the support rod, a convex rod is fixedly installed on the right side of the sliding guide rail, a leak plate is fixedly installed on the left side of the sliding guide rail, and a partition is fixedly installed on the top of the leak plate.
[0007] Preferably, one end of the return spring away from the support rod is fixedly mounted inside the sliding guide rail, and one end of the protruding rod away from the support rod passes through the sliding guide rail.
[0008] Preferably, the stirring assembly includes two support sleeves fixedly installed on the front and rear sides of the top of the leak plate, a motor 1 is fixedly installed between the two support sleeves, the output shaft at the bottom end of the motor 1 is fixedly connected to the drive rod, and the surface of the bottom of the drive rod is fixedly connected to the stirring rod.
[0009] Preferably, the motor is located at the axis of the leak plate, the bottom end of the drive rod passes through the leak plate and extends to the interior of the upper filter bucket, and the stirring rod is located inside the upper filter bucket. When the drive rod rotates, it drives the stirring rod to rotate inside the upper filter bucket, thereby accelerating the filtration efficiency of the reactants inside the upper filter bucket.
[0010] Preferably, the vibration assembly includes a vertical pole fixedly mounted on the top of the upper support block, a second motor is fixedly mounted on the top of the vertical pole, a rear end of the second motor is transmission-connected to a rotating disk, and a protrusion is fixedly mounted on the surface of the rotating disk.
[0011] Preferably, the protrusion and the protrusion rod are in adaptive contact at one end away from the sliding guide rail. When the rotating disk rotates, the protrusion will drive the protrusion rod, so that the protrusion rod pushes the sliding guide rail. At this time, the sliding guide rail and the leak plate are pushed and move a small distance to the left, so that the leak plate vibrates slightly periodically in this reciprocating manner.
[0012] Preferably, the lower filter assembly includes a lower limiting plate arranged in the middle of the support surface, the right side of the lower limiting plate is threadedly connected to a lower threaded rod, the left side of the lower limiting plate is fixedly connected to a lower support block, the inner part of the left side of the lower support block is sleeved with a lower filter bucket, and the bottom end of the lower filter bucket is fixedly connected to a lower conduit.
[0013] Preferably, the bottom end of the upper conduit is attached to the inner wall on the left side of the lower filter bucket, and the bottom end of the lower conduit is attached to the inner wall on the left side of the collecting tube. The reactants inside the upper filter bucket enter the interior of the lower filter bucket through the upper conduit, and then the reactants are filtered again and enter the interior of the collecting tube through the lower conduit, thereby improving the filtration effect through separate filtration.
[0014] The utility model is beneficial in that:
[0015] The utility model performs graded filtration on the reactants through the upper filter hopper and the lower filter hopper, thereby improving the filtration efficiency. At this time, the filter paper inside the upper filter hopper and the lower filter hopper can be more evenly stressed, thereby reducing the damage and wear of the filter paper, thereby increasing the service life of the filter paper;
[0016] The rotating disk drives the protrusion to periodically push the protrusion rod, so that the bushing plate vibrates back and forth, which accelerates the discharge efficiency of the reactants on the surface of the bushing plate and prevents the reactants from clogging on the surface of the bushing plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0018] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0019] Figure 2 This is a partial cross-sectional structural diagram of the upper filter assembly of the present invention;
[0020] Figure 3 This is a schematic diagram of the blanking component structure of the utility model;
[0021] Figure 4 This is a schematic structural diagram of the vibration component of the present utility model.
[0022] In the figure: 1. Pillar; 2. Upper filter assembly; 21. Upper limiting plate; 22. Upper threaded rod; 23. Upper support block; 24. Upper filter hopper; 25. Upper guide tube; 3. Discharge assembly; 31. Support rod; 32. Sliding guide rail; 33. Return spring; 34. Protruding rod; 35. Leakage plate; 36. Partition; 4. Stirring assembly; 41. Support sleeve; 42. Motor 1; 43. Drive rod; 44. Stirring rod; 5. Vibration assembly; 51. Vertical rod; 52. Motor 2; 53. Rotating disk; 54. Protruding block; 6. Lower filter assembly; 61. Lower limiting plate; 62. Lower threaded rod; 63. Lower support block; 64. Lower filter hopper; 65. Lower guide tube; 7. Collecting cylinder. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described 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.
[0024] The following is combined with Figure 1 —4 Further details of this application:
[0025] The present application discloses a multifunctional separation device for the dual enzyme purification of calcium gluconate. Figure 1 , a multifunctional separation device for the dual-enzyme purification of calcium gluconate, comprising a pillar 1, an upper filtering assembly 2 is provided on the top of the surface of the pillar 1, the upper filtering assembly 2 comprises an upper limiting plate 21 provided on the top of the surface of the pillar 1, an upper threaded rod 22 is threadedly connected to the right side of the upper limiting plate 21, an upper supporting block 23 is fixedly connected to the left side of the upper limiting plate 21, an upper filter bucket 24 is sleeved inside the left side of the upper supporting block 23, an upper filter bucket 24 is fixedly connected to the bottom end of the upper filter bucket 24 with an upper conduit 25, a feeding assembly 3 is provided on the top of the upper filtering assembly 2, a stirring assembly 4 is provided on the top of the feeding assembly 3, a vibration assembly 5 is provided on the surface of the upper filtering assembly 2, a lower filtering assembly 6 is provided in the middle of the surface of the pillar 1, and a collecting cylinder 7 is sleeved on the bottom of the surface of the pillar 1;
[0026] Reference Figure 2 - Figure 3 The blanking assembly 3 includes a support rod 31 fixedly mounted on the top of the upper support block 23, and the top of the support rod 31 is slidably connected to a sliding guide rail 32. A return spring 33 is fixedly mounted on the left side of the top of the support rod 31, and a protruding rod 34 is fixedly mounted on the right side of the sliding guide rail 32. The end of the return spring 33 away from the support rod 31 is fixedly mounted inside the sliding guide rail 32, and the end of the protruding rod 34 away from the support rod 31 passes through the sliding guide rail 32. A leak plate 35 is fixedly mounted on the left side of the sliding guide rail 32, and a partition 36 is fixedly mounted on the top of the leak plate 35.
[0027] Reference Figure 2 The stirring assembly 4 includes two support sleeves 41 fixedly installed on the front and rear sides of the top of the leak plate 35, and a motor 42 is fixedly installed between the two support sleeves 41. The output shaft at the bottom end of the motor 42 is fixedly connected to the driving rod 43, and the surface of the bottom of the driving rod 43 is fixedly connected to the stirring rod 44. The motor 42 is located at the axis of the leak plate 35, and the bottom end of the driving rod 43 passes through the leak plate 35 and extends to the interior of the upper filter bucket 24. The stirring rod 44 is located inside the upper filter bucket 24. When the driving rod 43 rotates, it drives the stirring rod 44 to rotate inside the upper filter bucket 24, thereby accelerating the filtration efficiency of the reactants inside the upper filter bucket 24.
[0028] Reference Figure 4 The vibration assembly 5 includes a vertical rod 51 fixedly mounted on the top of the upper support block 23, a second motor 52 fixedly mounted on the top of the vertical rod 51, and a rotating disk 53 is connected to the rear end of the motor 52. A protrusion 54 is fixedly mounted on the surface of the rotating disk 53, and the protrusion 54 and the end of the protrusion 34 away from the sliding guide rail 32 are adapted to contact. When the rotating disk 53 rotates, the protrusion 54 will drive the protrusion 34 to push the protrusion 34, so that the protrusion 34 pushes the sliding guide rail 32. At this time, the sliding guide rail 32 and the leak plate 35 are pushed and moved a small distance to the left, so that the leak plate 35 vibrates periodically with a small amplitude.
[0029] Reference Figure 1 The lower filter assembly 6 includes a lower limiting plate 61 arranged in the middle of the surface of the pillar 1, and the right side of the lower limiting plate 61 is threadedly connected to the lower threaded rod 62, and the left side of the lower limiting plate 61 is fixedly connected to the lower support block 63, and the inner part of the left side of the lower support block 63 is sleeved with the lower filter bucket 64, and the bottom end of the lower filter bucket 64 is fixedly connected to the lower guide tube 65, and the bottom end of the upper guide tube 25 is attached to the inner wall of the left side of the lower filter bucket 64, and the bottom end of the lower guide tube 65 is attached to the inner wall of the left side of the collecting tube 7. The reactant inside the upper filter bucket 24 enters the interior of the lower filter bucket 64 through the upper guide tube 25, and then the reactant is filtered again and enters the interior of the collecting tube 7 through the lower guide tube 65, thereby improving the filtering effect through separation and filtration.
[0030] Working principle: The operator puts the upper filter bucket 24 on the top of the surface of the pillar 1, then rotates the upper threaded rod 22 to limit the upper limiting plate 21, and then limits the lower limiting plate 61 in the same direction, and then places the filter paper inside the upper filter bucket 24 and the lower filter bucket 64.
[0031] At this time, the reactant is placed inside the leak plate 35, and then the motor 1 42 and the motor 2 52 are driven. At this time, the motor 2 52 drives the rotating disk 53 to rotate, and the rotating disk 53 drives the protrusion 54 to rotate. At this time, the protrusion 54 pushes the protrusion 34 during the rotation, so that the protrusion 34 pushes the sliding guide rail 32 and the leak plate 35 to move to the left. At this time, the sliding guide rail 32 will stretch the return spring 33 when moving, and then the rotating disk 53 continues to drive the protrusion 54 to rotate and disengage from the protrusion 34. At this time, the sliding guide rail 32 will drive the leak plate 35 to move to the right under the action of the rebound force of the return spring 33, and then the rotating disk 53 continues to drive the protrusion 54 to rotate and push the protrusion 34, so that the leak plate 35 moves back and forth left and right. At this time, the reactant on the top of the leak plate 35 falls downward to the inside of the upper filter bucket 24 under the action of reciprocating vibration.
[0032] At the same time, when the motor 42 is driven, the driving rod 43 and the stirring rod 44 will be driven to rotate. At this time, the stirring rod 44 stirs the reactants that fall into the upper filter bucket 24, so that the reactants in the upper filter bucket 24 are filtered downward and fall into the lower filter bucket 64 through the upper conduit 25. Then, the reactants in the lower filter bucket 64 are filtered again through the lower conduit 65 to the inside of the collecting tube 7, and then the reactants collected in the collecting tube 7 can be taken out.
[0033] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention as claimed.
Claims
1. A multifunctional separation device for the double-enzyme purification of calcium gluconate, characterized by: The invention comprises a pillar (1), wherein an upper filter assembly (2) is provided on the top of the surface of the pillar (1), wherein the upper filter assembly (2) comprises an upper limiting plate (21) provided on the top of the surface of the pillar (1), wherein the right side of the upper limiting plate (21) is threadedly connected to an upper threaded rod (22), wherein the left side of the upper limiting plate (21) is fixedly connected to an upper support block (23), wherein an upper filter bucket (24) is sleeved inside the left side of the upper support block (23), wherein the bottom end of the upper filter bucket (24) is fixedly connected to an upper guide tube (25), wherein a feed assembly (3) is provided on the top of the upper filter assembly (2), wherein a stirring assembly (4) is provided on the top of the feed assembly (3), wherein a vibration assembly (5) is provided on the surface of the upper filter assembly (2), wherein a lower filter assembly (6) is provided in the middle of the surface of the pillar (1), and wherein a collecting cylinder (7) is sleeved on the bottom of the surface of the pillar (1); The blanking assembly (3) includes a support rod (31) fixedly mounted on the top of the upper support block (23), the top of the support rod (31) is slidably connected to a sliding guide rail (32), a return spring (33) is fixedly mounted on the left side of the top of the support rod (31), a convex rod (34) is fixedly mounted on the right side of the sliding guide rail (32), a leak plate (35) is fixedly mounted on the left side of the sliding guide rail (32), and a partition plate (36) is fixedly mounted on the top of the leak plate (35).
2. The multifunctional separation device for the calcium gluconate double enzyme purification according to claim 1, wherein: One end of the return spring (33) away from the support rod (31) is fixedly mounted inside the sliding guide rail (32), and one end of the protruding rod (34) away from the support rod (31) passes through the sliding guide rail (32).
3. The multifunctional separation device for the calcium gluconate double enzyme purification according to claim 1, wherein: The stirring assembly (4) comprises two support sleeves (41) fixedly mounted on the front and rear sides of the top of the leak plate (35), a motor 1 (42) fixedly mounted between the two support sleeves (41), an output shaft at the bottom end of the motor 1 (42) fixedly connected to a driving rod (43), and a stirring rod (44) fixedly connected to the surface of the bottom end of the driving rod (43).
4. The multifunctional separation device for the double-enzyme purification of calcium gluconate according to claim 3, wherein: The motor 1 (42) is located at the axis of the leak plate (35), the bottom end of the driving rod (43) passes through the leak plate (35) and extends to the inside of the upper filter bucket (24), and the stirring rod (44) is located inside the upper filter bucket (24).
5. The multifunctional separation device for the double-enzyme purification of calcium gluconate according to claim 1, wherein: The vibration assembly (5) comprises a vertical rod (51) fixedly mounted on the top of the upper support block (23); a second motor (52) is fixedly mounted on the top of the vertical rod (51); a rear end of the second motor (52) is transmission-connected to a rotating disk (53); and a protrusion (54) is fixedly mounted on the surface of the rotating disk (53).
6. The multifunctional separation device for the double-enzyme purification of calcium gluconate according to claim 5, characterized in that: The protrusion (54) and the end of the protrusion rod (34) away from the sliding guide rail (32) are adapted to contact each other.
7. The multifunctional separation device for the double-enzyme purification of calcium gluconate according to claim 1, characterized in that: The lower filter assembly (6) comprises a lower limiting plate (61) arranged in the middle of the surface of the pillar (1); the right side of the lower limiting plate (61) is threadedly connected to a lower threaded rod (62); the left side of the lower limiting plate (61) is fixedly connected to a lower support block (63); the left side of the lower support block (63) is sleeved with a lower filter hopper (64); the bottom end of the lower filter hopper (64) is fixedly connected to a lower guide tube (65).
8. The multifunctional separation device for the double-enzyme purification of calcium gluconate according to claim 7, characterized in that: The bottom end of the upper conduit (25) is attached to the inner wall on the left side of the lower filter bucket (64), and the bottom end of the lower conduit (65) is attached to the inner wall on the left side of the collecting cylinder (7).