A silicone cleaning machine and a cleaning method

By designing a silicone cleaning machine including a rotating frame, a flushing rod and a transmission mechanism, the problem of incomplete cleaning in the prior art is solved, and comprehensive coverage and efficient flushing of the silicone surface are achieved.

CN118950560BActive Publication Date: 2025-06-24JINING AVOVE ELECTRONICS TECH CO LTD
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Patent Information

Application Number
CN202411427110.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-06-24
Estimated Expiration
2044-10-14

AI Technical Summary

Technical Problem

When cleaning silicone by existing cylinder cleaning machines, it is difficult for a single spray rod to effectively cover the surface of the silicone, especially the microporous structure, resulting in incomplete cleaning and a blind spot for rinsing.

Method used

A silicone cleaning machine is designed, including a cleaning box, a support rod, a rotary frame, a flush rod, a transmission mechanism and a timing rotating assembly. Through the rotation of the rotating frame and the cleaning cylinder, combined with the flushing rods of multiple water outlet holes, a comprehensive coverage and flushing of the silicone surface is achieved.

Benefits of technology

Effectively cover and rinse the silicone surface inside the cleaning cylinder, improve the rinsing effect of the silicone surface and ensure the thoroughness of the cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application discloses a silicone cleaning machine and a cleaning method, which relate to the technical field of silicone cleaning. The present application includes: a cleaning tank, inside which a support rod is vertically installed, a rotating frame is rotatably sleeved on the support rod, vertically-oriented flushing rods are symmetrically configured on the rotating frame, a plurality of water outlet holes are circularly arrayed on the outer peripheral side of the flushing rods, a cleaning cylinder is rotatably sleeved on the flushing rods, and a plurality of drainage holes are formed on the outer side of the cleaning cylinder; a blocking mechanism, including a cover shell rotatably installed on the cleaning tank, which is used to block the opening at the top of the cleaning tank, and a plurality of blocking blocks for blocking the opening of the cleaning cylinder are installed on the cover shell. When the cover shell blocks the opening of the cleaning tank, the blocking blocks synchronously block the opening of the cleaning cylinder. In the present application, the cleaning cylinder and the rotating frame are driven to rotate through a timing rotation assembly and a transmission mechanism, and the cooperation with the flushing rods can effectively flush the silicone inside the cleaning cylinder, improving the flushing effect.
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Description

Technical Field

[0001] This application relates to the technical field of cleaning devices, and particularly relates to a silicone washer and a cleaning method. Background Art

[0002] In existing drum washers, generally, silicone is poured into the drum washer. There is a spray bar inside the drum washer, and the silicone is rinsed by continuously rotating the drum in cooperation with the spray bar. The drum washer uses a single spray bar for rinsing. This design may lead to inadequate rinsing, and the rinsing of the water flow is difficult to effectively cover the surface of the silicone, especially the microporous structure of the silicone, which may result in incomplete cleaning and rinsing blind spots.

[0003] Therefore, the present invention proposes a silicone washer and a cleaning method. Summary of the Invention

[0004] The purpose of this application is to provide a silicone washer and a cleaning method to solve the problems in the above background art.

[0005] To achieve the above purpose, this application specifically adopts the following technical solutions:

[0006] A silicone washer, comprising:

[0007] A cleaning tank, a support rod is vertically installed inside the cleaning tank, a rotating frame is rotatably sleeved on the support rod, vertically-oriented rinsing rods are symmetrically configured on the rotating frame, a plurality of water outlet holes are circularly arrayed on the outer peripheral side of the rinsing rods, a cleaning cylinder is rotatably sleeved on the rinsing rods, and a plurality of drainage holes are provided on the outer side of the cleaning cylinder;

[0008] A blocking mechanism, including a cover shell rotatably installed on the cleaning tank, which is used to block the opening at the top of the cleaning tank, and a plurality of blocking blocks for blocking the opening of the cleaning cylinder are installed on the cover shell. When the cover shell blocks the opening of the cleaning tank, the blocking blocks synchronously block the opening of the cleaning cylinder;

[0009] A water circulation mechanism, the water circulation mechanism includes a water inlet part and a water drainage part installed on the cleaning tank. The water inlet part acts on the rinsing rod and is used to convey cleaning liquid into the rinsing rod, and the water drainage part is used to drain the cleaning liquid inside the cleaning tank;

[0010] A transmission mechanism, installed on the rotating frame and acting on the cleaning cylinder, which is used to drive the cleaning cylinder to rotate;

[0011] A timing rotation assembly, installed on the cleaning tank and acting on the rotating frame, which is used to drive the rotating frame to rotate after staying for a fixed time.

[0012] Further, the timing rotation assembly includes an internal gear ring rotatably mounted in the cleaning tank. The internal gear ring is coaxial with the support rod. A notch is formed on the tooth surface of the internal gear ring. A rotating rod is rotatably mounted on the cleaning tank. A small gear meshing with the internal gear ring is sleeved outside the rotating rod. Synchronous wheels are mounted on both the rotating rod and the rotating frame, and a synchronous belt is mounted between the two synchronous wheels. A transmission member acting on the drainage member is mounted on the cleaning tank. When the drainage member drains the water inside the cleaning tank, the transmission member drives the internal gear ring to rotate.

[0013] Further, the transmission member includes a connection box mounted on the cleaning tank. Two driving gears meshing with each other are rotatably mounted in the connection box. A transmission gear ring is mounted outside the internal gear ring. One of the driving gears meshes with the transmission gear ring. The drainage member includes a drain pipe mounted on the cleaning tank. The connection box is located between the two ends of the drain pipe and is communicated with the drain pipe. One end of the drain pipe is inside the cleaning tank, and the other end is outside for connecting to a pump body.

[0014] Further, the transmission mechanism includes a fixed gear mounted on the top end of the support rod. Driven gears meshing with the fixed gear are circularly and arrayedly mounted on the rotating frame. A transmission gear is mounted at the bottom end of the cleaning cylinder, and multiple transmission gears respectively mesh with multiple driven gears.

[0015] Further, the water inlet member includes a water inlet pipe mounted on the cleaning tank. One end of the water inlet pipe is vertically communicated with a water inlet cylinder coaxial with the support rod, and the other end is outside, which is used to connect to a pump body. The rotating frame is rotatably sleeved on the water inlet cylinder. The top end of the water inlet cylinder is communicated with a piston cylinder. A rotating disk is constructed on the rotating frame. The rotating disk is rotatably inserted into the piston cylinder. The flushing rod is connected to the rotating disk and is connected to the inside of the piston cylinder.

[0016] Further, a piston disk is slidably mounted in the piston cylinder. A flushing member for driving the piston disk to move is mounted on the rotating frame. A through hole is formed on the piston disk, and a one-way valve is mounted in the through hole.

[0017] Further, the flushing member includes a connection frame constructed on the top of the rotating disk. The connection frame has a horizontal section, and the horizontal section is located below the piston cylinder and vertically constructs a convex rod. A connecting plate vertically constructed to pass through the piston cylinder is formed at the bottom end of the piston disk. A driven disk coaxial with the piston cylinder is constructed at the bottom end of the connecting plate. A guiding ring groove is coaxially formed at the bottom end of the driven disk. The guiding ring groove has a highest end and a lowest end, and the highest end and the lowest end are smoothly transitioned. A forcing ball located in the guiding ring groove is constructed at the top end of the connecting plate.

[0018] Further, the number of cleaning cylinders is two. A connecting cylinder is slidably sleeved on the flushing rod. A plurality of through grooves for exposing the drain holes are formed in the connecting cylinder. A bearing plate that fits the inner peripheral side of the cleaning cylinder is constructed at the bottom end of the connecting cylinder. A sealing plate for blocking the opening end of the cleaning cylinder is constructed at the top end of the connecting cylinder. Feeding ports are formed in both sealing plates. A blocking block is used to block the feeding ports. An adjusting member for driving the connecting cylinder to move is installed on the rotating frame.

[0019] Further, the adjusting member includes a connecting frame constructed between the two sealing plates. An adjusting screw rod is vertically and rotatably installed on the rotating frame. The connecting frame is threadedly sleeved on the adjusting screw rod.

[0020] A cleaning method for a silicone cleaning machine, using the above silicone cleaning machine, includes the following steps;

[0021] S1: Pump bodies are installed on both the water inlet pipe and the drain pipe. Rotate and open the cover to pour the silicone to be cleaned into the two cleaning cylinders, and then pour the cleaning liquid into the cleaning tank for the drain pipe to extract, and then rotate and close the cover;

[0022] S2: The water pumps externally connected to the water inlet pipe and the drain pipe are started simultaneously. The drain pipe pumps the cleaning liquid inside the cleaning tank to the outside. At the same time, the drain pipe will drive the two driving gears to rotate due to the flow of water, so that the transmission gear ring rotates. The rotation of the transmission gear ring indirectly drives the internal gear ring to rotate. The rotation of the internal gear ring drives the small gear meshing with it to rotate, and then the rotating frame rotates. When the rotating frame rotates, it will drive the driven gear to rotate around the support rod, and then drive the driven gear to rotate around its own axis. The driven gear meshes with the transmission gear, so that the cleaning cylinder rotates around its own axis; so as to attach the silicone inside the cleaning cylinder to the inner peripheral side of the cleaning cylinder by centrifugal force, and cooperate with the flushing rod to flush the silicone.

[0023] S3: Open the cover, and then rotate the adjusting screw rod to drive the connecting frame to move upward, so as to indirectly drive the bearing plate to move upward to take out the silicone inside the cleaning cylinder.

[0024] The beneficial effects of the present application are as follows:

[0025] In the present application, the cleaning cylinder and the rotating frame are driven to rotate through the timing rotating assembly and the transmission mechanism, and at the same time, cooperate with the flushing rod, which can effectively cover and flush the surface of the silicone inside the cleaning cylinder. The cleaning effect of the silicone surface is good, which is beneficial to improving the flushing effect of the silicone surface. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is a three-dimensional structural schematic diagram of the present application;

[0027] Figure 2 is the present application Figure 1 partial three-dimensional sectional view;

[0028] Figure 3 is a local perspective sectional view of the present application Figure 1 Another partial perspective sectional view;

[0029] Figure 4 is a local perspective sectional view of the present application Figure 1 Another partial perspective sectional view;

[0030] Figure 5 is a partial structure display view of the present application;

[0031] Figure 6 is a local perspective sectional view of the present application Figure 5 Another perspective schematic view;

[0032] Figure 7 is a local perspective sectional view of the present application Figure 6 Partial perspective sectional view;

[0033] Figure 8 is a local perspective sectional view of the present application Figure 2 Enlarged view of the structure at position A in the present application;

[0034] Reference numerals: 1, cleaning tank; 2, support rod; 3, rotating frame; 4, flushing rod; 5, water outlet hole; 6, cleaning cylinder; 7, drain hole; 8, water circulation mechanism; 801, water inlet part; 8011, water inlet pipe; 8012, piston cylinder; 8013, rotating disk; 8014, piston disk; 8015, through hole; 8016, check valve; 8017, water inlet cylinder; 802, drain part; 9, timing rotation assembly; 901, internal gear ring; 902, notch; 903, rotating rod; 904, pinion gear; 905, synchronous pulley; 906, synchronous belt; 10, transmission part; 1001, connection box; 1002, driving gear; 1003, transmission gear ring; 11, transmission mechanism; 1101, fixed gear; 1102, driven gear; 1103, transmission gear; 12, flushing part; 1201, connection frame; 1202, convex rod; 1203, connection plate; 1204, driven disk; 1205, guiding ring groove; 1206, forcing ball; 13, blocking mechanism; 1301, housing; 1302, blocking block; 14, connecting cylinder; 15, through groove; 16, blocking plate; 17, blanking port; 18, adjusting part; 1801, connection frame; 1802, adjusting screw; 19, bearing plate. Detailed implementation manners

[0035] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present application.

[0036] As Figures 1 - 8 shown, a silica gel cleaning machine proposed in an embodiment of the present application includes:

[0037] Cleaning box 1, a support rod 2 is vertically installed inside the cleaning box 1, a rotating frame 3 is rotatably sleeved on the support rod 2, vertically-oriented flushing rods 4 are symmetrically configured on the rotating frame 3, a plurality of water outlet holes 5 are circularly arrayed on the outer peripheral side of the flushing rod 4, a cleaning cylinder 6 is rotatably sleeved on the flushing rod 4, and a plurality of drain holes 7 are provided on the outer side of the cleaning cylinder 6;

[0038] Blocking mechanism 13, including a housing 1301 rotatably installed on the cleaning box 1, which is used to block the opening at the top of the cleaning box 1, and a plurality of blocking blocks 1302 for blocking the opening of the cleaning cylinder 6 are installed on the housing 1301. When the housing 1301 blocks the opening of the cleaning box 1, the blocking blocks 1302 synchronously block the opening of the cleaning cylinder 6;

[0039] Water circulation mechanism 8, the water circulation mechanism 8 includes a water inlet member 801 and a water drain member 802 installed on the cleaning box 1. The water inlet member 801 acts on the flushing rod 4 and is used to convey cleaning liquid into the flushing rod 4, and the water drain member 802 is used to drain the cleaning liquid inside the cleaning box 1;

[0040] Transmission mechanism 11, installed on the rotating frame 3 and acting on the cleaning cylinder 6, which is used to drive the cleaning cylinder 6 to rotate;

[0041] Timing rotation assembly 9, installed on the cleaning box 1 and acting on the rotating frame 3, which is used to drive the rotating frame 3 to rotate after staying for a fixed time;

[0042] That is to say, during use, first pour the silicone to be cleaned into the cleaning cylinder 6, and then rotate the cover 1301 so that the blocking block 1302 closes the opening end of the cleaning cylinder 6. Preferably, a lock can be installed between the rotating cover 1301 and the cleaning box 1. After the rotating cover 1301 is rotated and closed, the lock can prevent the rotating cover 1301 from accidentally opening. Then, the water inlet member 801 supplies water to the flushing rod 4 so that water jets out from the water outlet holes 5. At this time, the transmission mechanism 11 and the timing rotation assembly 9 are activated to rotate the rotating frame 3 and the cleaning cylinder 6. When the rotating frame 3 rotates, the cleaning cylinder 6 will also rotate. When the cleaning cylinder 6 continuously rotates around its own axis, the silicone will adhere to the inner circumferential side of the cleaning cylinder 6 due to centrifugal force. In this way, the water jets from the flushing rod 4 can effectively flush the silicone. After the rotating frame 3 rotates for a set time, the rotating frame 3 stops rotating. At this time, the cleaning cylinder 6 also stops rotating through the transmission mechanism 11, so that the silicone adhering to the inside of the cleaning cylinder 6 falls onto the inner bottom surface of the cleaning cylinder 6 under the action of gravity. When the rotating frame 3 and the cleaning cylinder 6 rotate again, the silicone will adhere to the inner circumferential side of the cleaning cylinder 6 again due to the action of centrifugal force, but the position where the silicone adheres to the inner side of the cleaning cylinder 6 will change, so as to realize that the flushing rod 4 flushes different positions of the silicone. The water inside the cleaning cylinder 6 will be discharged from the drain hole 7 into the cleaning box 1 under the rotation of the rotating frame 3, and cooperate with the drainage member 802 to pump out the water inside the cleaning box 1. The pumped water can be pumped into the flushing rod 4 through the water inlet member 801 to realize circulation, so as to save the cleaning liquid. When the silicone inside the cleaning cylinder 6 is cleaned, the rotation of the cleaning cylinder 6 and the rotating frame 3 can effectively dry the silicone. Compared with the prior art, the cleaning cylinder 6 and the rotating frame 3 are driven to rotate by the timing rotation assembly 9 and the transmission mechanism 11, and cooperate with the flushing rod 4 to effectively flush the silicone inside the cleaning cylinder 6, improving the flushing effect.

[0043] Such as Figure 1 And Figure 6As shown, in some embodiments, the timing rotation assembly 9 includes an internal gear ring 901 rotatably mounted in the cleaning tank 1. The internal gear ring 901 is coaxial with the support rod 2. A notch 902 is formed on the tooth surface of the internal gear ring 901. A rotating rod 903 is rotatably mounted on the cleaning tank 1. A small gear 904 meshing with the internal gear ring 901 is sleeved outside the rotating rod 903. Synchronous pulleys 905 are mounted on both the rotating rod 903 and the rotating frame 3, and a synchronous belt 906 is mounted between the two synchronous pulleys 905. A transmission member 10 acting on the drain member 802 is mounted on the cleaning tank 1. When the drain member 802 drains the water inside the cleaning tank 1, the transmission member 10 drives the internal gear ring 901 to rotate. That is to say, before use, there is cleaning liquid in the cleaning tank 1. When the drain member 802 pumps water, at this time, the transmission member 10 will drive the internal gear ring 901 to rotate. The rotation of the internal gear ring 901 will drive the small gear 904 meshing with it to rotate. At this time, the rotation speed of the small gear 904 is greater than that of the internal gear ring 901. The rotation of the small gear 904 drives the rotating rod 903 connected to it to rotate. Because synchronous pulleys 905 are mounted between the rotating rod 903 and the rotating frame 3, and a synchronous belt 906 is synchronously mounted between the two, the rotating frame 3 will also rotate at this time, thus realizing the rotation of the rotating frame 3. There is no need for an additional power component to independently drive the rotation of the rotating frame 3, which is more convenient to use and saves energy consumption. As the internal gear ring 901 rotates, when the notch 902 faces the small gear 904, then the small gear 904 is not meshed with the internal gear ring 901 at this time, so that the rotating frame 3 stops rotating until the internal gear ring 901 rotates and meshes with the small gear 904 again to drive the rotating frame 3 to rotate.

[0044] As Figure 1 and Figure 4 As shown, in some embodiments, the transmission member 10 includes a connection box 1001 mounted on the cleaning tank 1. Two mutually meshing driving gears 1002 are rotatably mounted in the connection box 1001. A transmission gear ring 1003 is mounted outside the internal gear ring 901. One of the driving gears 1002 meshes with the transmission gear ring 1003. The drain member 802 includes a drain pipe mounted on the cleaning tank 1. The connection box 1001 is located between the two ends of the drain pipe and is communicated with the drain pipe. One end of the drain pipe is located inside the cleaning tank 1, and the other end is located outside for connecting a pump body. That is to say, when the drain pipe extracts the cleaning liquid by connecting to an external pump body, the cleaning liquid will flow into the drain pipe and pass through the connection box 1001. When the cleaning liquid passes through the connection box 1001, it passes between the two driving gears 1002, thus driving the two driving gears 1002 to rotate. Because one of the driving gears 1002 meshes with the transmission gear ring 1003, the transmission gear 1103 will rotate to drive the internal gear ring 901 to rotate, and further realize that when the drain pipe pumps water, it will drive the rotating frame 3 to rotate.

[0045] As shown in Figure 1 , Figure 2 and Figure 7 shown, in some embodiments, the transmission mechanism 11 includes a fixed gear 1101 mounted on the top end of the support rod 2. A plurality of driven gears 1102 meshing with the fixed gear 1101 are circularly arrayed on the rotating frame 3. A transmission gear 1103 is mounted at the bottom end of the cleaning cylinder 6. The plurality of transmission gears 1103 respectively mesh with the plurality of driven gears 1102. That is to say, when the rotating frame 3 rotates, it will drive the driven gear 1102 to rotate around the support rod 2, and then drive the driven gear 1102 to rotate around its own axis. The driven gear 1102 meshes with the transmission gear 1103, so that the cleaning cylinder 6 rotates around its own axis, so as to realize that the cleaning cylinder 6 also rotates when the rotating frame 3 rotates. Preferably, the rotation speed of the cleaning cylinder 6 is faster than that of the rotating frame 3. Therefore, the transmission gear 1103 is smaller than the driven gear 1102, which can prevent the silica gel inside the cleaning cylinder 6 from being affected by the centrifugal force when the rotating frame 3 rotates and sticking to the inner side of the cleaning cylinder 6, resulting in the silica gel concentrating on one side of the cleaning cylinder 6.

[0046] As shown in Figure 2 , Figure 3 and Figure 6 shown, in some embodiments, the water inlet member 801 includes a water inlet pipe 8011 mounted on the cleaning tank 1. One end of the water inlet pipe 8011 is vertically communicated with a water inlet cylinder 8017 coaxial with the support rod 2, and the other end is located outside, which is used to connect a pump body. The rotating frame 3 is rotatably sleeved on the water inlet cylinder 8017. The top end of the water inlet cylinder 8017 is communicated with a piston cylinder 8012. A rotating disk 8013 is constructed on the rotating frame 3. The rotating disk 8013 is rotatably inserted into the piston cylinder 8012. The flushing rod 4 is connected to the rotating disk 8013 and is connected to the inside of the piston cylinder 8012. The water inlet pipe 8011 is externally connected to a water pump to supply cleaning liquid to the inside of the piston cylinder 8012. The cleaning liquid enters the water inlet cylinder 8017 and then enters the piston cylinder 8012. Since the flushing rod 4 is communicated with the inside of the piston cylinder 8012 at this time, the flushing rod 4 can be realized to eject the cleaning liquid, so that the cleaning liquid can be supplied to the cleaning cylinder 6 while the rotating frame 3 and the cleaning cylinder 6 are continuously rotating.

[0047] As shown in Figure 2 and Figure 3, in some embodiments, a piston disk 8014 is slidably installed within the piston cylinder 8012. A flushing member 12 for driving the piston disk 8014 to move is installed on the rotating frame 3. A through hole 8015 is formed in the piston disk 8014, and a one-way valve 8016 is installed within the through hole 8015. That is to say, when the flushing member 12 drives the piston disk 8014 to move downward, the cleaning liquid located below the piston disk 8014 at this time will pass through the one-way valve 8016 and enter above the piston disk 8014. However, when the piston disk 8014 moves upward, the one-way valve 8016 can prevent the cleaning liquid from passing through the through hole 8015 and re-entering below the piston disk 8014, so as to realize the reciprocating movement of the piston disk 8014 to supply the cleaning liquid to the flushing pipe. It should be noted that the diameter of the piston cylinder 8012 is much larger than the diameter of the flushing rod 4, so as to provide a greater water flow impact.

[0048] As Figure 2 and Figure 6 shown, in some embodiments, the flushing member 12 includes a connecting frame 1201 constructed at the top of the rotating disk 8013. The connecting frame 1201 has a horizontal section, and the horizontal section is located below the piston cylinder 8012 and is vertically constructed with a convex rod 1202. A connecting plate 1203 vertically passing through the piston cylinder 8012 is constructed at the bottom end of the piston disk 8014. A driven disk 1204 coaxial with the piston cylinder 8012 is constructed at the bottom end of the connecting plate 1203. A guiding ring groove 1205 is coaxially formed at the bottom end of the driven disk 1204. The guiding ring groove 1205 has a highest end and a lowest end, and the highest end and the lowest end are smoothly transitioned. A forcing ball 1206 located within the guiding ring groove 1205 is constructed at the top end of the connecting plate 1203. It should be noted that the water inlet pipe 8011 is located below the connecting plate 1203 and will not affect the rotation of the connecting plate 1203. When the rotating frame 3 rotates, it will drive the connecting plate 1203 to rotate. When the connecting plate 1203 rotates, it will drive the convex rod 1202 to rotate. Because the forcing ball 1206 on the convex rod 1202 is located within the guiding ring groove 1205, when the convex rod 1202 continuously rotates, the forcing ball 1206 continuously moves within the guiding ring groove 1205, thereby causing the driven disk 1204 to move vertically in a reciprocating manner. The vertical reciprocating movement of the driven disk 1204 will drive the piston disk 8014 to move vertically in a reciprocating manner. Therefore, no additional driving force is required to drive the movement of the piston disk 8014. Only the drain pipe and the water inlet pipe 8011 need to be started, which is convenient to use.

[0049] As Figure 6 and Figure 7As shown, in some embodiments, the number of cleaning cylinders 6 is two. A connecting cylinder 14 is slidably sleeved on the flushing rod 4. A plurality of through grooves 15 for exposing the drain holes 7 are formed in the connecting cylinder 14. A bearing plate 19 that fits the inner peripheral side of the cleaning cylinder 6 is constructed at the bottom end of the connecting cylinder 14. A blocking plate 16 for blocking the opening end of the cleaning cylinder 6 is constructed at the top end of the connecting cylinder 14. Feeding ports 17 are formed in both blocking plates 16. A blocking block 1302 is used to block the feeding ports 17. An adjusting member 18 for driving the connecting cylinder 14 to move is installed on the rotating frame 3. When it is necessary to take out the silica gel inside the cleaning cylinder 6, the bearing plate 19 is driven to move upward by the adjusting member 18, which will drive the silica gel inside the cleaning cylinder 6 to move upward, thus making it more convenient for the staff to take the silica gel.

[0050] As Figure 2 and Figure 6 As shown, in some embodiments, the adjusting member 18 includes a connecting frame 1801 constructed between the two blocking plates 16. An adjusting screw 1802 is vertically and rotatably installed on the rotating frame 3. The connecting frame 1801 is threadedly sleeved on the adjusting screw 1802. Rotating the adjusting screw 1802 will drive the rotating frame 3 to move upward, and the design of threaded fit can prevent the bearing plate 19 from moving by itself when the rotating frame 3 rotates, having self-locking property.

[0051] As Figures 1 - 8 As shown, a cleaning method for a silica gel cleaning machine, using the above-mentioned silica gel cleaning machine, includes the following steps;

[0052] S1: Pump bodies are installed on both the water inlet pipe 8011 and the drain pipe. Rotate and open the cover 1301 to pour the silica gel to be cleaned into the two cleaning cylinders 6. Then pour the cleaning liquid into the cleaning tank 1 for the drain pipe to extract. Then rotate and close the cover 1301;

[0053] S2: The water pumps connected to the water inlet pipe 8011 and the drain pipe are started simultaneously. The drain pipe pumps the cleaning liquid inside the cleaning tank 1 to the outside. At the same time, the drain pipe will drive the two driving gears 1002 to rotate due to the flow of water, so that the transmission gear ring 1003 rotates. The rotation of the transmission gear ring 1003 indirectly drives the internal gear ring 901 to rotate. The rotation of the internal gear ring 901 drives the small gear 904 meshing with it to rotate, and then the rotating frame 3 rotates. When the rotating frame 3 rotates, it will drive the driven gear 1102 to rotate around the support rod 2, and then drive the driven gear 1102 to rotate around its own axis. The driven gear 1102 meshes with the transmission gear 1103, so that the cleaning cylinder 6 rotates around its own axis; so as to attach the silica gel inside the cleaning cylinder 6 to the inner peripheral side of the cleaning cylinder 6 through centrifugal force, and cooperate with the flushing rod 4 to flush the silica gel.

[0054] S3: Open the housing 1301, then rotate the adjusting screw rod 1802 to drive the connecting frame 1801 to move upward, so as to indirectly drive the bearing plate 19 to move upward, and take out the silica gel located inside the cleaning cylinder 6.

[0055] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present application. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to these embodiments shown herein, but will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A silica gel cleaning machine, characterized in that: include: A cleaning box, wherein a support rod is vertically installed inside the cleaning box, a rotating frame is rotatably mounted on the support rod, a vertical flushing rod is symmetrically constructed on the rotating frame, a plurality of water outlet holes are opened in a circular array on the outer circumference of the flushing rod, a cleaning cylinder is rotatably mounted on the flushing rod, the number of the cleaning cylinders is two, and a plurality of drainage holes are opened on the outer side of the cleaning cylinder; The blocking mechanism comprises a cover shell rotatably mounted on the cleaning box, which is used to block the top opening of the cleaning box. A plurality of blocking blocks for blocking the opening of the cleaning cylinder are mounted on the cover shell. When the cover shell blocks the opening of the cleaning box, the blocking blocks synchronously block the opening of the cleaning cylinder. A water circulation mechanism, the water circulation mechanism comprising a water inlet and a water outlet mounted on the cleaning box, the water inlet acting on the flushing rod for conveying cleaning liquid into the flushing rod, and the water outlet for discharging the cleaning liquid from the cleaning box; The water inlet component includes a water inlet pipe installed on the cleaning box, one end of the water inlet pipe is vertically connected to a water inlet cylinder coaxial with the support rod, and the other end is located outside and is used to connect to the pump body. The rotating frame is rotatably mounted on the water inlet cylinder, and the top of the water inlet cylinder is connected to a piston cylinder. A rotating disk is constructed on the rotating frame, and the rotating disk is rotatably inserted in the piston cylinder. The flushing rod is connected to the rotating disk and connected to the inside of the piston cylinder. A piston disc is slidably mounted in the piston cylinder, a flushing member for driving the piston disc to move is mounted on the rotating frame, a through hole is opened on the piston disc, and a one-way valve is mounted in the through hole; The flushing member comprises a connecting frame constructed on the top of the rotating disk, the connecting frame has a horizontal section, and the horizontal section is located below the piston cylinder and is vertically constructed with a convex rod, the bottom end of the piston disk is vertically constructed with a connecting plate that passes through the piston cylinder, the bottom end of the connecting plate is constructed with a driven disk coaxial with the piston cylinder, the bottom end of the driven disk is coaxially opened with a guide ring groove, the guide ring groove has a highest end and a lowest end, and the highest end and the lowest end are smoothly transitioned, and the top end of the connecting plate is constructed with a forcing ball located in the guide ring groove; A transmission mechanism is installed on the rotating frame and acts on the cleaning cylinder, and is used to drive the cleaning cylinder to rotate; the transmission mechanism includes a fixed gear installed on the top of the support rod, a circular array of driven gears meshing with the fixed gears are installed on the rotating frame, and a transmission gear is installed at the bottom of the cleaning cylinder, and multiple transmission gears are respectively meshed with multiple driven gears; A timing rotation assembly is installed on the cleaning box and acts on the rotating frame, and is used to drive the rotating frame to rotate after staying for a fixed time; The timing rotation assembly includes an inner gear ring rotatably installed in the cleaning box, the inner gear ring is coaxial with the support rod, a groove is provided on the tooth surface of the inner gear ring, a rotating rod is rotatably installed on the cleaning box, a small gear meshing with the inner gear ring is set on the outer side of the rotating rod, synchronous wheels are installed on the rotating rod and the rotating frame, a synchronous belt is installed between the two synchronous wheels, and a transmission member acting on the drainage member is installed on the cleaning box, and when the drainage member discharges water inside the cleaning box, the transmission member drives the inner gear ring to rotate.

2. A silicone cleaning machine according to claim 1, characterized in that: The transmission member includes a connecting box installed on the cleaning box, two mutually meshing driving gears are rotatably installed in the connecting box, a transmission gear ring is installed on the outer side of the inner gear ring, one of the driving gears is meshed with the transmission gear ring, and the drainage member includes a drainage pipe installed on the cleaning box, the connecting box is located between the two ends of the drainage pipe and is connected to the drainage pipe, one end of the drainage pipe is located in the cleaning box, and the other end is located outside for connecting to the pump body.

3. A silica gel cleaning machine according to claim 2, characterized in that: A connecting tube is slidingly sleeved on the flushing rod, and a plurality of through grooves for exposing drainage holes are provided on the connecting tube. A supporting plate is constructed at the bottom end of the connecting tube and fits with the inner circumference of the cleaning tube. A blocking plate is constructed at the top end of the connecting tube and is used to block the open end of the cleaning tube. Feeding ports are provided on both blocking plates, and the blocking blocks are used to block the feeding ports. An adjusting member for driving the connecting tube to move is installed on the rotating frame.

4. A silica gel cleaning machine according to claim 3, characterized in that: The adjusting member comprises a connecting frame constructed between two blocking plates, an adjusting screw is vertically and rotatably mounted on the rotating frame, and the connecting frame is threadedly sleeved on the adjusting screw.

5. A cleaning method of a silicone cleaning machine, using the silicone cleaning machine as claimed in claim 4, characterized in that: The steps include: S1: Install the pump body on both the water inlet pipe and the drain pipe, turn the cover open and pour the silica gel to be cleaned into the two cleaning cylinders, then pour the cleaning liquid into the cleaning tank for the drain pipe to draw, and then turn the cover closed; S2: The water pumps connected to the water inlet pipe and the drain pipe are started at the same time, and the drain pipe draws the cleaning liquid inside the cleaning box to the outside. At the same time, the flow of water in the drain pipe drives the two driving gears to rotate, thereby causing the transmission ring to rotate. The rotation of the transmission ring indirectly drives the internal ring to rotate, and the rotation of the internal ring drives the small gear meshing with it to rotate, thereby causing the rotating frame to rotate. When the rotating frame rotates, it drives the driven gear to rotate around the support rod, thereby driving the driven gear to rotate around its own axis. The driven gear meshes with the transmission gear, thereby causing the cleaning cylinder to rotate around its own axis; the silica gel inside the cleaning cylinder is attached to the inner circumference of the cleaning cylinder through centrifugal force, and the silica gel is washed with the flushing rod; S3: Open the cover shell, and then rotate the adjusting screw to drive the connecting frame to move upward, so as to indirectly drive the carrying plate to move upward, so as to take out the silica gel located inside the cleaning cylinder.

Citation Information

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