Disc type separation equipment
By introducing a buffer mounting base and a damping shock absorber into the disc-type separation device, the problem of easy damage to the transmission shaft after long-term use was solved, and the stability and efficiency of the equipment were improved.
Patent Information
- Application Number
- CN202423180581.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-23
AI Technical Summary
After long-term use, the drive shaft of existing disc separators is prone to problems such as shaft misalignment, cracking, or even breakage, which affects the centrifugation effect and the life of the equipment.
The system adopts a buffer mounting structure, including a mounting top plate, a mounting bottom plate, and several damping shock absorbers. These damping shock absorbers absorb and convert vibrations, reduce vibration transmission, and enhance equipment stability.
It significantly reduced equipment vibration levels, improved separation efficiency, extended equipment lifespan, reduced noise, facilitated maintenance and adjustment, and increased production efficiency.
Smart Images

Figure CN223549719U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of mannan peptide preparation equipment, and in particular to a disc separation device. Background Technology
[0002] Mannan peptides are an immune enhancer, and their preparation mainly includes fermentation, extraction, separation, and drying. Disc separators are commonly used in the separation step. A disc separator, also known as a disc centrifuge, is a type of sedimentation centrifuge. It mainly consists of a drum, a vertical shaft, a drive shaft, and a motor. Inside the drum are a set of interlocking discs with gaps between them. The suspension (or emulsion) is fed into the drum through a feed pipe located at its center. During operation, as the suspension (or emulsion) flows through the gaps between the discs, solid particles (or droplets) settle onto the discs under centrifugal force, forming sediment (or a liquid layer). The sediment slides along the disc surface, detaches from the discs, and accumulates at the largest diameter part of the drum. The separated liquid is discharged from the drum through the outlet. The solids accumulated in the drum are manually removed after the separator is stopped, or discharged from the drum without stopping the machine, via a slag discharge mechanism.
[0003] Currently, disc centrifuges are generally installed directly on the ground without any corresponding vibration damping structure. When the centrifuge is operating, the vibrations generated act directly on the ground without any damping, and then react back onto the centrifuge itself, affecting the centrifugation efficiency. Simultaneously, because the vibrations also act on the drive shaft, uneven wear can occur during rotation. This can lead to shaft misalignment, cracking, or even breakage after prolonged use, thus affecting rotational stability and shortening the centrifuge's lifespan.
[0004] A utility model patent with application number CN201510937326.1 and publication number CN105363568A discloses a disc centrifuge, including a base, a body mounted on the base, a drum mounted above the body, and a motor mounted on the side of the body. A horizontal shaft is horizontally arranged inside the body, and a vertical shaft is vertically arranged. A cover is installed on the outside of the drum, and an inlet and outlet are located above the cover. However, the problem persists: after prolonged use, the drive shaft is prone to misalignment, cracking, and even breakage. Utility Model Content
[0005] Based on this, and in response to the above problems, this utility model proposes a disc-type separation device, which solves the problem that the transmission shaft in the current disc-type separation device is prone to shaft misalignment, cracking, or even breakage after long-term use.
[0006] The technical solution of this utility model is:
[0007] A disc-type separation device, comprising:
[0008] Disc separator body;
[0009] The main body of the disc separator is mounted on the buffer mounting base.
[0010] The buffer mounting base includes a mounting top plate, a mounting bottom plate, and several damping shock absorbers. The mounting bottom plate is set on the mounting structure, the mounting top plate is set above the mounting bottom plate, and several damping shock absorbers are set between the mounting top plate and the mounting bottom plate and are detachably connected to the mounting top plate and the mounting bottom plate. The main body of the disc separator is set on the mounting top plate and is detachably connected to the mounting top plate.
[0011] The damping shock absorber includes a mounting base, a damping telescopic rod, a spring, and a pressure plate assembly. The mounting base is detachably connected to the mounting base plate. The damping telescopic rod is mounted on the mounting base, and one end of the rod is detachably connected to the mounting base. The pressure plate assembly is located at the other end of the damping telescopic rod and is detachably connected to it. The pressure plate assembly is detachably connected to the mounting top plate via a connector. The spring is sleeved on the damping telescopic rod, with one end of the spring contacting the pressure plate assembly and the other end contacting the mounting base.
[0012] Preferably, the mounting base has a mounting groove on its top, and one end of the damping telescopic rod is set in the mounting groove and detachably connected to the mounting base.
[0013] Preferably, the end of the damping telescopic rod connected to the mounting base is provided with a connecting ring. The connecting ring is fixedly installed at the bottom of the damping telescopic rod, located in the mounting groove, and is detachably connected to the mounting base by bolts. The bottom of the mounting base is provided with a mating groove that cooperates with the mounting groove.
[0014] Preferably, the mounting base has a dust plug at the bottom, one end of which can be inserted into the mating groove and is interference-fitted with the mating groove.
[0015] Preferably, it also includes a dustproof housing, which has a receiving cavity inside. The receiving cavity extends through the dustproof housing from top to bottom. The bottom of the dustproof housing is detachably connected to the mounting base, and the receiving cavity is connected to the mounting groove. The damping telescopic rod, spring, and pressure plate assembly are disposed in the receiving cavity, and the pressure plate assembly is slidably connected to the inner wall of the receiving cavity.
[0016] Preferably, the bottom of the dustproof housing is provided with a pair of connecting ears, which are respectively located on both sides of the dustproof housing and fixedly connected to the dustproof housing. The connecting ears, the mounting base and the mounting plate are detachably connected by bolts.
[0017] Preferably, the pressure plate assembly includes an upper clamping plate, a circular sealing gasket, and a lower clamping plate. The circular sealing gasket is disposed between the upper clamping plate and the lower clamping plate. The upper clamping plate, the circular sealing gasket, and the lower clamping plate are detachably connected by at least one pair of bolts. The circular sealing gasket is slidably connected to the inner wall of the receiving cavity.
[0018] Preferably, the damping telescopic rod includes an extension and a body, one end of the extension is disposed inside the body and is dampedly connected to the body, and the pressure plate assembly is detachably connected to the other end of the extension.
[0019] Preferably, the end of the protrusion that connects to the pressure plate assembly is provided with a threaded hole. The pressure plate assembly is detachably connected to the protrusion by a fixing bolt. One end of the fixing bolt passes through the upper clamping plate, the circular sealing gasket and the lower clamping plate in sequence, and is threadedly connected to the threaded hole. The fixing bolt is slidably connected to the upper clamping plate, the circular sealing gasket and the lower clamping plate.
[0020] Preferably, the connector includes a connecting plate and several connecting rods. The connecting plate is detachably connected to the mounting top plate by bolts. Several connecting rods are arranged at the bottom of the connecting plate, with one end of each connecting rod fixedly connected to the connecting plate and the other end fixedly connected to the upper clamping plate.
[0021] Compared with the prior art, the beneficial effects of this utility model are:
[0022] In this invention, the buffer mounting base consists of a top mounting plate, a bottom mounting plate, and several damping shock absorbers, forming a stable support structure. The bottom mounting plate is placed on the mounting structure, which can be a stable structure such as the ground or a mounting frame installed on the ground. The main body of the disc separator is then mounted on the top mounting plate, thus forming a stable structure. Each damping shock absorber includes a mounting base, a damping telescopic rod, a spring, and a pressure plate assembly. When the disc separator is operating, the vibrations generated can be absorbed and converted by the damping telescopic rod and the spring, thereby reducing vibration transmission. The mounting base is detachably connected to the bottom mounting plate, providing a stable foundation for the damping shock absorbers. The pressure plate assembly is detachably connected to the damping telescopic rod and, through a connector, to the top mounting plate. This not only ensures the stability of the buffer mounting base but also facilitates the transmission of vibrations to the damping telescopic rod and the spring.
[0023] This invention significantly reduces the vibration level of the disc separator during operation by using several damping shock absorbers, thereby enhancing the stability of the disc separator and improving separation efficiency. Effective vibration control also significantly reduces noise levels, directly contributing to a better operating environment. The reduced vibration and noise decrease the pressure and wear on the various components, extending the overall lifespan of the equipment. The buffer mounting base design allows for flexible installation and adjustment of the disc separator according to actual needs, providing convenience for different applications. The detachable design makes maintenance and component replacement easier, reducing downtime and improving production efficiency. It also solves the problem of shaft misalignment, cracking, and even breakage that often occurs in current disc separators after prolonged use. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of a disc-type separation device described in an embodiment of this utility model;
[0025] Figure 2 This is a schematic diagram of the structure of the buffer mounting base described in the embodiment of this utility model;
[0026] Figure 3 This is a schematic diagram of the structure of the damping shock absorber described in the embodiment of this utility model;
[0027] Figure 4 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 1 ;
[0028] Figure 5 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 2 ;
[0029] Figure 6 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 3 ;
[0030] Figure 7 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 4 ;
[0031] Figure 8 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 5 ;
[0032] Figure 9 This is a partial structural diagram of the damping shock absorber described in this embodiment of the utility model. Figure 6 ;
[0033] Explanation of reference numerals in the attached figures:
[0034] 10-Disc separator body, 20-Buffer mounting base, 200-Mounting top plate, 201-Mounting bottom plate, 202-Damping shock absorber, 203-Mounting base, 204-Damping telescopic rod, 205-Spring, 206-Pressure plate assembly, 207-Mounting groove, 208-Connecting ring, 209-Matching groove, 210-Dust plug, 211-Dustproof housing, 212-Receiving cavity, 213-Connecting ear, 214-Upper clamping plate, 215-Circular sealing gasket, 216-Lower clamping plate, 217-Extension, 218-Body part, 219-Threaded hole, 220-Fixing bolt, 221-Connecting disc, 222-Connecting rod. Detailed Implementation
[0035] The embodiments of this utility model will now be described in detail with reference to the accompanying drawings.
[0036] Example:
[0037] like Figures 1 to 4 , Figure 6 As shown, in order to solve the above problems, this embodiment discloses a disc-type separation device, including:
[0038] Disc separator body 10;
[0039] The buffer mounting base 20, and the disc separator body 10 are mounted on the buffer mounting base 20;
[0040] The buffer mounting base 20 includes a mounting top plate 200, a mounting bottom plate 201, and several damping shock absorbers 202. The mounting bottom plate 201 is mounted on the mounting structure, the mounting top plate 200 is mounted above the mounting bottom plate 201, and several damping shock absorbers 202 are mounted between the mounting top plate 200 and the mounting bottom plate 201 and are detachably connected to the mounting top plate 200 and the mounting bottom plate 201. The disc separator body 10 is mounted on the mounting top plate 200 and is detachably connected to the mounting top plate 200.
[0041] The damping shock absorber 202 includes a mounting base 203, a damping telescopic rod 204, a spring 205, and a pressure plate assembly 206. The mounting base 203 is detachably connected to the mounting base plate 201. The damping telescopic rod 204 is mounted on the mounting base 203, and one end is detachably connected to the mounting base 203. The pressure plate assembly 206 is mounted on the other end of the damping telescopic rod 204 and is detachably connected to the damping telescopic rod 204. The pressure plate assembly 206 is detachably connected to the mounting top plate 200 through a connector. The spring 205 is sleeved on the damping telescopic rod 204, with one end of the spring 205 contacting the pressure plate assembly 206 and the other end contacting the mounting base 203.
[0042] This invention aims to reduce the vibration and noise generated during the operation of the disc separator body 10. In this invention, the buffer mounting base 20 consists of a mounting top plate 200, a mounting bottom plate 201, and several damping shock absorbers 202, forming a stable support structure. The mounting bottom plate 201 is mounted on the mounting structure, which can be a stable structure such as the ground or a mounting frame installed on the ground. The disc separator body 10 is then mounted on the mounting top plate 200, thus forming a stable structure. Furthermore, each damping shock absorber 202 includes a mounting base 203, a damping telescopic rod 204, a spring 205, and a pressure plate assembly 206. When the disc separator body 10 is operating, the generated vibration can be absorbed and converted by the damping telescopic rod 204 and the spring 205, thereby reducing vibration transmission. The mounting base 203 is detachably connected to the mounting base plate 201, which can provide a stable foundation for the damping shock absorber 202. The pressure plate assembly 206 is detachably connected to the damping telescopic rod 204 and is detachably connected to the mounting top plate 200 through the connector. This not only ensures the stability of the buffer mounting base 20, but also facilitates the transmission of vibration to the damping telescopic rod 204 and the spring 205.
[0043] This invention significantly reduces the vibration level of the disc separator body 10 during operation by using several damping shock absorbers 202, thereby enhancing the stability of the disc separator body 10 and improving separation efficiency. Effective vibration control also significantly reduces noise levels, directly contributing to a better operating environment. The reduced vibration and noise decrease the pressure and wear on various components, extending the overall lifespan of the equipment. The design of the buffer mounting base 20 allows for flexible installation and adjustment of the disc separator body 10 according to actual needs, providing convenience for applications in different situations. The detachable design makes maintenance and component replacement easier, reducing downtime and improving production efficiency. It also solves the problem of shaft misalignment, cracking, and even breakage that often occurs in current disc separators after prolonged use.
[0044] It should be noted that the damping telescopic rod 204 can be a hydraulic damping telescopic rod 204 or a friction-type damping telescopic rod 204 as used in the prior art. The disc separator body 10 adopts a disc separator as used in the prior art.
[0045] The hydraulic damping telescopic rod 204 is a commercially available conventional hydraulic damping rod. Utilizing the hydraulic principle, it dissipates vibration energy through the viscous resistance of a liquid. It typically consists of a closed container, an internal piston, and a connecting rod. One end of the piston is connected to the connecting rod, and the other end is connected to the structure requiring vibration damping. When the structure vibrates, the piston moves within the liquid, and the liquid's viscosity generates resistance. This resistance is proportional to the piston's speed, effectively suppressing the amplitude of the vibration.
[0046] The friction-type damping telescopic rod 204 converts vibration energy into heat energy for consumption. That is, when the damping telescopic rod 204 is compressed or extended, it uses friction to provide resistance, converting vibration energy into heat energy generated by friction, thereby consuming the energy generated by vibration and achieving the vibration reduction effect.
[0047] like Figure 7 As shown, in order to facilitate the installation of the damping telescopic rod 204, this embodiment is modified based on the above embodiment. The difference from the above embodiment is that the top of the mounting base 203 is provided with a mounting groove 207, one end of the damping telescopic rod 204 is set in the mounting groove 207, and is detachably connected to the mounting base 203.
[0048] like Figure 8 As shown, the damping telescopic rod 204 is connected to the mounting base 203 at one end with a connecting ring 208. The connecting ring 208 is fixedly installed at the bottom of the damping telescopic rod 204. The connecting ring 208 is located in the mounting groove 207 and is detachably connected to the mounting base 203 by bolts. The bottom of the mounting base 203 is provided with a mating groove 209 that cooperates with the mounting groove 207.
[0049] In use, the end of the damping telescopic rod 204 with the connecting ring 208 can be placed in the mounting groove 207. Then, several corresponding holes are made in the connecting ring 208 and the mounting groove 207. These holes extend through the mounting base 203 to the mating groove 209. Then, one end of the bolt is passed through the hole and into the mating groove 209. Finally, the bolt and nut are tightened in the mating groove 209 to install the damping telescopic rod 204.
[0050] like Figure 9 As shown, to reduce dust entry into the mating groove 209, this embodiment modifies the previous embodiment. The difference lies in that a dust plug 210 is provided at the bottom of the mounting base 203. One end of the dust plug 210 can be inserted into the mating groove 209 and is interference-fitted with it. The dust plug 210 effectively reduces dust entry into the mating groove 209, and the plug-in connection facilitates quick installation and removal of the dust plug 210.
[0051] like Figure 3As shown, in order to facilitate the reduction of dust on the spring 205 and the damping telescopic rod 204, this embodiment is modified based on the above embodiment. The difference from the above embodiment is that it also includes a dustproof housing 211. The dustproof housing 211 is provided with a receiving cavity 212. The receiving cavity 212 extends through the dustproof housing 211 from top to bottom. The bottom of the dustproof housing 211 is detachably connected to the mounting base 203, and the receiving cavity 212 is connected to the mounting groove 207. The damping telescopic rod 204, the spring 205 and the pressure plate assembly 206 are arranged in the receiving cavity 212. The pressure plate assembly 206 is slidably connected to the inner side wall of the receiving cavity 212.
[0052] When in use, the dustproof housing 211 can effectively reduce dust from adhering to the spring 205 and the damping telescopic rod 204.
[0053] like Figure 4 As shown, in order to facilitate the installation of the dustproof housing 211 and the mounting base 203, as a further preferred embodiment, the bottom of the dustproof housing 211 is provided with a pair of connecting ears 213. The pair of connecting ears 213 are respectively provided on both sides of the dustproof housing 211 and are fixedly connected to the dustproof housing 211. The connecting ears 213, the mounting base 203 and the mounting base plate 201 are detachably connected by bolts.
[0054] like Figure 5 As shown, in order to further reduce dust on the spring 205 and the damping telescopic rod 204, this embodiment is modified based on the above embodiment. The difference from the above embodiment is that the pressure plate assembly 206 includes an upper clamping plate 214, a circular sealing gasket 215 and a lower clamping plate 216. The circular sealing gasket 215 is disposed between the upper clamping plate 214 and the lower clamping plate 216. The upper clamping plate 214, the circular sealing gasket 215 and the lower clamping plate 216 are detachably connected by at least one pair of bolts. The circular sealing gasket 215 is slidably connected to the inner wall of the receiving cavity 212.
[0055] The circular sealing gasket 215 allows it to form a relative seal with the inner wall of the receiving cavity 212, thereby reducing dust from entering the dustproof housing 211 and further reducing dust from adhering to the spring 205 and the damping telescopic rod 204.
[0056] like Figure 7 As shown, in order to facilitate the connection between the pressure plate assembly 206 and the damping telescopic rod 204, this embodiment is modified based on the above embodiment. The difference from the above embodiment is that the damping telescopic rod 204 includes an extension 217 and a body 218. One end of the extension 217 is disposed in the body 218 and is dampedly connected to the body 218. The other end of the pressure plate assembly 206 is detachably connected to the extension 217.
[0057] In this embodiment, the damping telescopic rod 204 is a friction-type damping telescopic rod 204. The damping connection refers to a sliding connection with friction, that is, one end of the protrusion 217 is slidably connected to the body part 218, and there is friction between the protrusion 217 and the body part 218.
[0058] The protrusion 217 is connected to the pressure plate assembly 206 at one end with a threaded hole 219. The pressure plate assembly 206 is detachably connected to the protrusion 217 by a fixing bolt 220. One end of the fixing bolt 220 passes through the upper clamping plate 214, the circular sealing gasket 215 and the lower clamping plate 216 in sequence, and is threadedly connected to the threaded hole 219. The fixing bolt 220 is slidably connected to the upper clamping plate 214, the circular sealing gasket 215 and the lower clamping plate 216.
[0059] The threaded connection between the fixing bolt 220 and the threaded hole 219 facilitates the connection or disassembly of the pressure plate assembly 206 and the damping telescopic rod 204.
[0060] like Figures 3 to 4 As shown, in order to facilitate the connection between the pressure plate assembly 206 and the mounting top plate 200, this embodiment is modified based on the above embodiment. The difference from the above embodiment is that the connector includes a connecting plate 221 and a plurality of connecting rods 222. The connecting plate 221 is detachably connected to the mounting top plate 200 by bolts. The plurality of connecting rods 222 are arranged at the bottom of the connecting plate 221. One end of the plurality of connecting rods 222 is fixedly connected to the connecting plate 221, and the other end is fixedly connected to the upper clamping plate 214.
[0061] The connecting plate 221 and several connecting rods 222 are arranged such that the connecting plate 221 is detachably connected to the mounting top plate 200 with bolts, which facilitates the installation or removal of the connecting plate 221 and the mounting top plate 200, and thus facilitates the installation or removal of the pressure plate assembly 206 and the mounting top plate 200. The length of the connecting rods 222 can be set according to actual needs; generally, the length of the connecting rods 222 is set to match the maximum extension / retraction amount of the damping telescopic rod 204.
[0062] Working principle of this utility model:
[0063] In this invention, the buffer mounting base 20 consists of a mounting top plate 200, a mounting bottom plate 201, and several damping shock absorbers 202, forming a stable support structure. The mounting bottom plate 201 is mounted on the mounting structure, which can be a stable structure such as the ground or a mounting frame installed on the ground. The disc separator body 10 is then mounted on the mounting top plate 200, thus forming a stable structure. Furthermore, each damping shock absorber 202 includes a mounting base 203, a damping telescopic rod 204, a spring 205, and a pressure plate assembly 206. When the disc separator body 10 is working, the generated vibrations can be absorbed and converted by the damping telescopic rod 204 and the spring 205, thereby reducing vibration transmission. The mounting base 203 is detachably connected to the mounting base plate 201, which can provide a stable foundation for the damping shock absorber 202. The pressure plate assembly 206 is detachably connected to the damping telescopic rod 204 and is detachably connected to the mounting top plate 200 through the connector. This not only ensures the stability of the buffer mounting base 20, but also facilitates the transmission of vibration to the damping telescopic rod 204 and the spring 205.
[0064] The embodiments described above merely illustrate specific implementations of this utility model, and while the descriptions are detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model.
Claims
1. A disc-type separation device, characterized in that, include: Disc separator body (10); A buffer mounting base (20) is provided on which the disc separator body (10) is mounted; The buffer mounting base (20) includes a mounting top plate (200), a mounting bottom plate (201), and several damping shock absorbers (202). The mounting bottom plate (201) is mounted on the mounting structure, the mounting top plate (200) is mounted above the mounting bottom plate (201), and several damping shock absorbers (202) are mounted between the mounting top plate (200) and the mounting bottom plate (201) and are detachably connected to the mounting top plate (200) and the mounting bottom plate (201). The disc separator body (10) is mounted on the mounting top plate (200) and is detachably connected to the mounting top plate (200). The damping shock absorber (202) includes a mounting base (203), a damping telescopic rod (204), a spring (205), and a pressure plate assembly (206). The mounting base (203) is detachably connected to the mounting base plate (201). The damping telescopic rod (204) is mounted on the mounting base (203) and one end is detachably connected to the mounting base (203). The pressure plate assembly (206) is mounted on the other end of the damping telescopic rod (204) and is detachably connected to the damping telescopic rod (204). The pressure plate assembly (206) is detachably connected to the mounting top plate (200) through a connector. The spring (205) is sleeved on the damping telescopic rod (204). One end of the spring (205) contacts the pressure plate assembly (206), and the other end contacts the mounting base (203).
2. The disc-type separation device according to claim 1, characterized in that, The mounting base (203) has a mounting groove (207) on its top. One end of the damping telescopic rod (204) is set in the mounting groove (207) and is detachably connected to the mounting base (203).
3. The disc-type separation device according to claim 2, characterized in that, A connecting ring (208) is provided at one end of the damping telescopic rod (204) that is connected to the mounting base (203). The connecting ring (208) is fixedly installed at the bottom of the damping telescopic rod (204). The connecting ring (208) is located in the mounting groove (207) and is detachably connected to the mounting base (203) by bolts. The bottom of the mounting base (203) is provided with a mating groove (209) that is matched with the mounting groove (207).
4. The disc-type separation device according to claim 3, characterized in that, The mounting base (203) has a dust plug (210) at the bottom. One end of the dust plug (210) can be inserted into the mating groove (209) and is interference-fitted with the mating groove (209).
5. The disc-type separation device according to claim 4, characterized in that, It also includes a dustproof housing (211), which has a receiving cavity (212) inside. The receiving cavity (212) runs through the dustproof housing (211) from top to bottom. The bottom of the dustproof housing (211) is detachably connected to the mounting base (203), and the receiving cavity (212) is connected to the mounting groove (207). The damping telescopic rod (204), spring (205) and pressure plate assembly (206) are arranged inside the receiving cavity (212), and the pressure plate assembly (206) is slidably connected to the inner wall of the receiving cavity (212).
6. The disc-type separation device according to claim 5, characterized in that, The bottom of the dustproof housing (211) is provided with a pair of connecting ears (213). The pair of connecting ears (213) are respectively located on both sides of the dustproof housing (211) and are fixedly connected to the dustproof housing (211). The connecting ears (213), the mounting base (203) and the mounting base plate (201) are detachably connected by bolts.
7. The disc-type separation device according to claim 6, characterized in that, The pressure plate assembly (206) includes an upper clamping plate (214), a circular sealing gasket (215), and a lower clamping plate (216). The circular sealing gasket (215) is disposed between the upper clamping plate (214) and the lower clamping plate (216). The upper clamping plate (214), the circular sealing gasket (215), and the lower clamping plate (216) are detachably connected by at least one pair of bolts. The circular sealing gasket (215) is slidably connected to the inner wall of the receiving cavity (212).
8. A disc-type separation device according to claim 7, characterized in that, The damping telescopic rod (204) includes an extension (217) and a body (218). One end of the extension (217) is disposed inside the body (218) and is dampedly connected to the body (218). The pressure plate assembly (206) is detachably connected to the other end of the extension (217).
9. A disc-type separation device according to claim 8, characterized in that, The end of the protrusion (217) connected to the pressure plate assembly (206) is provided with a threaded hole (219). The pressure plate assembly (206) is detachably connected to the protrusion (217) by a fixing bolt (220). One end of the fixing bolt (220) passes through the upper clamping plate (214), the circular sealing gasket (215) and the lower clamping plate (216) in sequence, and is threadedly connected to the threaded hole (219). The fixing bolt (220) is slidably connected to the upper clamping plate (214), the circular sealing gasket (215) and the lower clamping plate (216).
10. A disc-type separation device according to claim 9, characterized in that, The connector includes a connecting plate (221) and several connecting rods (222). The connecting plate (221) is detachably connected to the mounting top plate (200) by bolts. Several connecting rods (222) are set at the bottom of the connecting plate (221). One end of several connecting rods (222) is fixedly connected to the connecting plate (221), and the other end is fixedly connected to the upper clamping plate (214).
Citation Information
Patent Citations
Disk centrifuge
CN105363568A