Immobilized enzyme catalytic reaction device
By using elastic telescopic frame and spline connection structure in the enzyme catalytic reaction device, the precise release of immobilized enzymes is achieved, the problem of inability to accurately release enzymes in the prior art is solved, and the reaction efficiency is improved.
Patent Information
- Application Number
- CN202421060273.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-16
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-05-16
AI Technical Summary
The existing enzyme catalytic reaction devices cannot accurately release immobilized enzymes when there is insufficient translation materials, resulting in delays in the reaction process.
The lifting plate is connected by the elastic telescopic frame connected to the output end of the drive cylinder, and the lifting operation is achieved using the spline connection structure of the spline sleeve and the spline strip, which simultaneously drives the transmission and rotating motor to operate, so that the bearing ball and the leakage hole can accurately fall into the reaction substance and release immobilized enzyme.
The precise release of immobilized enzymes is achieved, the reaction efficiency is improved, and the efficient work of the reaction process is ensured.
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Figure CN222821571U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of immobilized enzymes, in particular to an immobilized enzyme catalytic reaction device. Background Art
[0002] Immobilized enzyme refers to an enzyme that plays a catalytic role within a certain spatial range and can be used repeatedly and continuously. Usually, enzyme-catalyzed reactions are carried out in aqueous solutions, and immobilized enzyme is a water-soluble enzyme treated by physical or chemical methods to make it insoluble in water but still have enzymatic activity.
[0003] When using an existing enzyme-catalyzed reaction device, the raw materials are generally placed in a relatively closed container and immobilized enzymes are added to achieve catalysis into the required products. For example, application number CN202121604075.2 belongs to the field of enzymatic hydrolysis reaction technology, which discloses an immobilized enzyme catalytic reaction device, including: a device body, a stirring assembly and an immobilized enzyme catalytic assembly. The device body is mainly composed of a reaction tank and an upper cover plate, and a liquid adding pipe is provided on the upper part of the upper cover plate; however, in the above-mentioned technology, the stirring shaft and the stirring rod are fixedly arranged. When the translation material is insufficient, the immobilized enzyme cannot be accurately released, which will delay the reaction process. Therefore, the utility model proposes an immobilized enzyme catalytic reaction device to solve the problems existing in the prior art. Utility Model Content
[0004] In view of the above problems, the utility model proposes an immobilized enzyme catalytic reaction device, which mainly utilizes an elastic telescopic frame connected to the output end of a driving cylinder to connect a lifting plate, and can be freely lifted and lowered through a spline connection structure of a spline sleeve and a spline bar. In this way, when the rotating motor is running, the gearbox can synchronously drive the spline sleeve and the spline bar to rotate, and through the lifting and sliding adjustment, the bearing ball and the leakage hole can fall into the reaction substance, thereby achieving the effect of accurately releasing the immobilized enzyme to ensure efficient reaction efficiency.
[0005] To achieve the purpose of the utility model, the utility model is implemented by the following technical solutions: an immobilized enzyme catalytic reaction device, comprising a frame component and a container inlet and outlet component, the upper inner side of the frame component is provided with a container inlet and outlet component, and the inner side of the end of the container inlet and outlet component is provided with a sleeve-mounted mixing reaction mechanism;
[0006] The container inlet and outlet components include a shell, a heating chamber, a lower chamber, a discharge valve, a top cover, a side pipe, a feed cover, an end motor and a spiral auger. The shell is arranged on the upper inner side of the frame component, and the outer side of the shell is provided with a ring-shaped heating chamber, a lower chamber with bolts is arranged below the shell, and a discharge valve is arranged below the lower chamber, a top cover with bolts is arranged on the top side of the shell, a side pipe is arranged on one side of the shell, and a feed cover is arranged above one end of the side pipe, and a spiral auger connected to the output end of the end motor is arranged inside the side pipe.
[0007] As a preferred embodiment of the utility model, the lower platform cabin is in the form of an inverted rounded shell, the spiral auger is in the form of a spiral rod, and the shell, the lower platform cabin and the central axis of the top cover are in the same straight line.
[0008] As a preferred embodiment of the utility model, the frame component includes a cushion block, a fixing frame and a control panel, fixing frames assembled with bolts are arranged above both sides of the cushion block, and a control panel is arranged above one end of the fixing frame.
[0009] As a preferred embodiment of the utility model, the mixed reaction mechanism includes a driving cylinder, an elastic telescopic frame, a lifting plate, a spline sleeve, a spline strip, a gearbox, a rotating motor, a diagonal rod, a load-bearing ball, a leakage hole, a swing rod and an arc strip. The driving cylinder is arranged above both sides of the top cover, and the output end of the driving cylinder passes through the top cover and is connected to the elastic telescopic frame, and a lifting plate is arranged below the elastic telescopic frame.
[0010] As a preferred embodiment of the utility model, a spline sleeve is provided on the inner side of the lifting plate, and a spline bar connected by a spline is provided above the spline sleeve, a gearbox is provided on the top side of the spline bar, and a rotating motor is provided at one end of the gearbox.
[0011] As a preferred embodiment of the utility model, an inclined rod is provided on the outer side of the spline sleeve, and a load-bearing ball with a leakage hole is provided at one end of the inclined rod, a swing rod is provided at the bottom end of the spline sleeve, and arc strips are provided on both sides of one end of the swing rod.
[0012] The beneficial effects of the utility model are:
[0013] The utility model mainly utilizes the elastic telescopic frame connected to the output end of the driving cylinder to connect the lifting plate, and can freely perform lifting and lowering operation through the spline connection structure of the spline sleeve and the spline bar. In this way, the gearbox can synchronously drive the spline sleeve and the spline bar to rotate when the rotating motor is running. Through the lifting and sliding adjustment, the bearing ball and the leakage hole can fall into the reaction material, thereby achieving the effect of accurately releasing the immobilized enzyme, so as to ensure the efficient operation of the reaction efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a three-dimensional structural schematic diagram of the utility model;
[0015] Figure 2 It is a side view stereoscopic structural schematic diagram of the utility model;
[0016] Figure 3 It is a cross-sectional three-dimensional structural schematic diagram of the utility model;
[0017] Figure 4 It is a schematic diagram of the load-bearing ball and leakage hole structure of the utility model.
[0018] Wherein: 1. Frame component; 101. Pad; 102. Fixing frame; 103. Control panel; 2. Container inlet and outlet components; 201. Shell; 202. Heating chamber; 203. Lower chamber; 204. Discharge valve; 205. Top cover; 206. Side pipe; 207. Feed cover; 208. End motor; 209. Screw auger; 3. Mixing reaction mechanism; 301. Drive cylinder; 302. Elastic telescopic frame; 303. Lifting plate; 304. Spline sleeve; 305. Spline strip; 306. Gearbox; 307. Rotating motor; 308. Inclined rod; 309. Load-bearing ball; 3010. Leakage hole; 3011. Swinging rod; 3012. Arc strip. DETAILED DESCRIPTION
[0019] In order to deepen the understanding of the present invention, the present invention will be further described in detail below in conjunction with an embodiment. The embodiment is only used to explain the present invention and does not constitute a limitation on the protection scope of the present invention.
[0020] according to Figure 1-4 As shown, this embodiment proposes an immobilized enzyme catalytic reaction device, comprising a frame component 1 and a container inlet and outlet member 2, wherein the container inlet and outlet member 2 is disposed on the upper inner side of the frame component 1, and a sleeve-mounted mixing reaction mechanism 3 is disposed on the inner side of the end of the container inlet and outlet member 2;
[0021] The container inlet and outlet component 2 includes a shell 201, a heating chamber 202, a lower chamber 203, a discharge valve 204, a top cover 205, a side pipe 206, a feed cover 207, an end motor 208 and a spiral auger 209. The shell 201 is arranged on the upper inner side of the frame component 1, and the outer side of the shell 201 is provided with a ring-shaped heating chamber 202, the lower part of the shell 201 is provided with a bolt-connected lower chamber 203, and the lower part of the lower chamber 203 is provided with a discharge valve 204, the top side of the shell 201 is provided with a bolt-connected top cover 205, a side of the shell 201 is provided with a side pipe 206, and a feed cover 207 is provided above one end of the side pipe 206, and a spiral auger 209 connected to the output end of the end motor 208 is provided inside the side pipe 206.
[0022] The lower platform cabin 203 is in the form of an inverted rounded shell, the spiral auger 209 is in the form of a spiral rod, and the central axis of the shell 201, the lower platform cabin 203 and the top cover 205 are in the same straight line.
[0023] In this embodiment, the feed cover 207 above one end of the side tube 206 is then opened to place the material in the side tube 206, and then the starter end motor 208 outputs power to drive the spiral auger 209 connected to the output end to rotate. Through the rotation of the spiral auger 209, the raw materials are input into the shell 201 through the side tube 206 for storage. When the reaction is completed, the discharge valve 204 under the lower cabin 203 is opened to discharge the equipment to achieve a cleaning effect.
[0024] The frame component 1 includes a cushion block 101 , a fixing frame 102 and a control panel 103 . The fixing frames 102 assembled with bolts are arranged above both sides of the cushion block 101 , and the control panel 103 is arranged above one end of the fixing frame 102 .
[0025] In this embodiment, when in use, the container loading and unloading member 2 is installed by means of the cushion block 101 and the fixing frame 102 and then placed at the processing site, and the equipment is adjusted and operated by means of the control panel 103 above one end of the fixing frame 102 .
[0026] The mixing reaction mechanism 3 includes a driving cylinder 301, an elastic telescopic frame 302, a lifting plate 303, a spline sleeve 304, a spline bar 305, a gearbox 306, a rotating motor 307, a tilting rod 308, a bearing ball 309, a leak hole 3010, a swing rod 3011 and an arc bar 3012. The driving cylinder 301 is arranged above both sides of the top cover 205, and the output end of the driving cylinder 301 passes through the top cover 205 and is connected to the elastic telescopic frame 302, and a lifting plate 303 is arranged below the elastic telescopic frame 302.
[0027] In this embodiment, when cleaning is required, the driving cylinder 301 is started to output power to drive the output end of the driving cylinder 301 to operate. By extending and retracting the output end of the driving cylinder 301, the output end of the driving cylinder 301 can drive the elastic telescopic frame 302 and the lifting plate 303 to apply pressure to the inside of the shell 201 to help discharge the raw materials.
[0028] A spline sleeve 304 is provided on the inner side of the lifting plate 303 , and a spline bar 305 connected by a spline is provided above the spline sleeve 304 , a gearbox 306 is provided on the top side of the spline bar 305 , and a rotating motor 307 is provided at one end of the gearbox 306 .
[0029] In this embodiment, when the raw materials enter the equipment, the rotating motor 307 is started to output power to drive the output end of the rotating motor 307 to operate. Through the operation of the output end of the rotating motor 307, the gearbox 306 is adjusted so that the gearbox 306 drives the spline bar 305 to rotate, and the rotation of the spline bar 305 drives the spline sleeve 304 to rotate.
[0030] An inclined rod 308 is provided on the outer side of the spline sleeve 304, and a bearing ball 309 with a leakage hole 3010 is provided at one end of the inclined rod 308. A swing rod 3011 is provided at the bottom end of the spline sleeve 304, and arc strips 3012 are provided on both sides of one end of the swing rod 3011.
[0031] In this embodiment, the rotation of the spline sleeve 304 drives the load-bearing ball 309 installed at one end of the inclined rod 308 to mix and stir the raw materials inside the shell 201, and the immobilized enzyme is discharged from the inside of the load-bearing ball 309 to the outside through the leakage hole 3010 to achieve the mixing effect. When the spline sleeve 304 is lifted and lowered, the inside of the shell 201 can be effectively cleaned by the swing rod 3011 and the arc bar 3012.
[0032] The working principle of the immobilized enzyme catalytic reaction device is as follows: when in use, the container feed and discharge member 2 is installed by the cushion block 101 and the fixing frame 102 and then placed at the processing site, the device is adjusted and operated by the control panel 103 above one end of the fixing frame 102, and then the feed cover 207 above one end of the side tube 206 is opened to place the material in the side tube 206, and then the end motor 208 is started to output power to drive the spiral auger 209 connected to the output end to rotate, and the raw material is input into the shell 201 through the side tube 206 through the rotation of the spiral auger 209 for storage, and when the reaction is completed, the discharge valve 204 under the lower cabin 203 is opened to discharge the device to achieve a cleaning effect, and when the raw material enters the device, the rotating motor 307 is started to output power to drive the output end of the rotating motor 307 to operate, and the gearbox 306 is adjusted through the operation of the output end of the rotating motor 307. After the festival, the gearbox 306 drives the spline bar 305 to rotate, and the rotation of the spline bar 305 drives the spline sleeve 304 to rotate, and the rotation of the spline sleeve 304 drives the bearing ball 309 installed at one end of the inclined rod 308 to mix and stir the raw materials inside the shell 201, so that the immobilized enzyme is discharged from the inside of the bearing ball 309 to the outside through the leak hole 3010 to achieve a mixing effect. When the spline sleeve 304 is lifted and lowered, the inside of the shell 201 can be effectively cleaned by the swing rod 3011 with the arc strip 3012. When cleaning is required, the driving cylinder 301 is started to output power to drive the output end of the driving cylinder 301 to operate, and the output end of the driving cylinder 301 is telescopically operated. After the output end of the driving cylinder 301 operates, the elastic telescopic frame 302 and the lifting plate 303 can be driven to pressurize the inside of the shell 201 to help discharge the raw materials.
[0033] The above shows and describes the basic principles, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only for explaining the principles of the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection claimed by the utility model is defined by the attached claims and their equivalents.
Claims
1. An immobilized enzyme catalytic reaction device, comprising a frame component (1) and a container inlet and outlet component (2), characterized in that: A container material inlet and outlet member (2) is arranged on the inner side of the upper part of the frame component (1), and a mixing reaction mechanism (3) is arranged on the inner side of the end of the container material inlet and outlet member (2) in a sleeve-mounted manner; The container inlet and outlet member (2) comprises a shell (201), a heating chamber (202), a lower chamber (203), a discharge valve (204), a top cover (205), a side pipe (206), a feed cover (207), an end motor (208) and a spiral auger (209); the shell (201) is arranged on the upper inner side of the frame component (1); the outer side of the shell (201) is provided with an annularly distributed heating chamber (202); A lower platform cabin (203) is provided at the bottom and a discharge valve (204) is provided at the bottom of the lower platform cabin (203); a top cover (205) is provided at the top side of the shell (201) and a side pipe (206) is provided at one side of the shell (201); a feed cover (207) is provided above one end of the side pipe (206); and a spiral auger (209) connected to the output end of the end motor (208) is provided inside the side pipe (206).
2. The immobilized enzyme catalytic reaction device according to claim 1, characterized in that: The lower platform cabin (203) is in the form of an inverted rounded shell, the spiral auger (209) is in the form of a spiral rod, and the central axis of the shell (201), the lower platform cabin (203) and the top cover (205) are located on the same straight line.
3. The immobilized enzyme catalytic reaction device according to claim 1, characterized in that: The frame component (1) comprises a cushion block (101), a fixing frame (102) and a control panel (103); fixing frames (102) assembled with bolts are arranged above both sides of the cushion block (101), and a control panel (103) is arranged above one end of the fixing frame (102).
4. The immobilized enzyme catalytic reaction device according to claim 1, characterized in that: The mixing reaction mechanism (3) comprises a driving cylinder (301), an elastic telescopic frame (302), a lifting plate (303), a spline sleeve (304), a spline strip (305), a gearbox (306), a rotating motor (307), an inclined rod (308), a bearing ball (309), a leak hole (3010), a swing rod (3011) and an arc strip (3012); the driving cylinder (301) is arranged above both sides of the top cover (205); an output end of the driving cylinder (301) passes through the top cover (205) and is connected to the elastic telescopic frame (302); and a lifting plate (303) is arranged below the elastic telescopic frame (302).
5. The immobilized enzyme catalytic reaction device according to claim 4, characterized in that: A spline sleeve (304) is provided on the inner side of the lifting plate (303), and a spline bar (305) connected by a spline is provided above the spline sleeve (304). A gearbox (306) is provided on the top side of the spline bar (305), and a rotating motor (307) is provided at one end of the gearbox (306).
6. The immobilized enzyme catalytic reaction device according to claim 4, characterized in that: An inclined rod (308) is arranged on the outer side of the spline sleeve (304), and a bearing ball (309) having a leak hole (3010) is arranged at one end of the inclined rod (308); a swing rod (3011) is arranged at the bottom end of the spline sleeve (304), and arc-shaped bars (3012) are arranged on both sides of one end of the swing rod (3011).
Citation Information
Patent Citations
Immobilized enzyme catalytic reaction device
CN215480957U