Chemical material rinsing device

By designing the rinsing and drying drums in the chemical raw material rinsing device, and utilizing the cooperation of the insertion rod and the limiting block, combined with the motor drive and the screw slide, the automated transfer and separation of chemical raw materials is achieved. This solves the problem of waiting for the dried chemical raw materials to be taken out and rinsed again, and improves the rinsing efficiency of chemical raw materials.

CN224294098UActive Publication Date: 2026-05-29HUNAN FORTUNE NEW MATERIAL TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUNAN FORTUNE NEW MATERIAL TECHNOLOGY CO LTD
Filing Date
2025-03-26
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing technologies, chemical raw materials need to be removed during the air-drying process before they can be rinsed, which reduces the rinsing efficiency of chemical raw materials.

Method used

Design a chemical raw material rinsing device, including a rinsing cylinder and a drying cylinder. Through the cooperation of the insertion rod and the limiting block, the placement cylinders are located on the same axis, realizing the automated transfer and separation of chemical raw materials. Combined with the cooperation of motor drive and screw slide, the placement cylinder can be efficiently switched between different cylinders.

Benefits of technology

It enables continuous rinsing and air-drying of chemical raw materials, improves the rinsing efficiency of chemical raw materials, and avoids the time loss of waiting for air drying.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of chemical raw materials rinsing device, belong to chemical raw materials rinsing technical field.This kind of chemical raw materials rinsing device, including main part and transfer mechanism, main part includes support, and the upper end side of support is equipped with rinsing cylinder, and the upper end side of support is equipped with air drying cylinder away from rinsing cylinder, and transfer mechanism includes support seat, and the inside of support seat movably inserts telescopic link, and the upper end of telescopic link is equipped with crosspiece, and the inside of telescopic link upper end is embedded with second motor, and the output of second motor penetrates telescopic link, and transmission connection between with crosspiece, and the inside of crosspiece is rotatably connected with a pair of rotating shafts, and the bottom of a pair of rotating shafts is extended to outside and is connected with round plate, and the inside of round plate movably inserts several inserting rods, and several inserting rods bottom is connected with placing cylinder, and the inside of several inserting rods is movably inserted with limit block, and the bottom of several limit blocks is consistent with the upper end of round plate.
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Description

Technical Field

[0001] This utility model relates to the field of chemical raw material rinsing technology, and more specifically, to a chemical raw material rinsing device. Background Technology

[0002] Chemical raw materials are the raw materials used in the chemical industry. There are many types of chemical raw materials, with wide applications in various industries such as food, medicine, daily necessities, industry, and agriculture, influencing economic development. During the use of chemical raw materials, rinsing equipment is needed to wash and remove impurities.

[0003] Chinese Patent Publication No. CN218945733U discloses a chemical raw material rinsing device, including a rinsing tank. The bottom of the rinsing tank is funnel-shaped and has several drainage holes. Several mounting holes are formed on the outer surface of the rinsing tank. A mounting ring is fixedly connected to the outer surface of the rinsing tank, and a retaining ring is fixedly connected to one side of the mounting ring. A wastewater tank is fixedly connected to the bottom of the rinsing tank, and a lid is fixedly connected to the top of the rinsing tank. The advantages of this invention are: by incorporating an air pump, the device can air-dry the rinsed chemical raw materials after rinsing, eliminating the need for additional drying processes and reducing work efficiency. Furthermore, the motor, in conjunction with the stirring rod, agitates the materials during air pump operation, further improving drying efficiency and increasing the device's practicality.

[0004] The technical solution described in this paper uses an air pump to dry the chemical raw materials inside the rinsing tank. During the drying process, the chemical raw materials inside the rinsing tank must be dried and removed before rinsing can continue, which reduces the rinsing efficiency of the chemical raw materials. Utility Model Content

[0005] The purpose of this invention is to provide a chemical raw material rinsing device to solve the problem mentioned in the background art that during the air-drying process, it is necessary to wait for the chemical raw materials inside the rinsing tank to be dried and removed before the chemical raw material rinsing can continue.

[0006] This utility model is implemented as follows:

[0007] A chemical raw material rinsing device includes a main body and a transfer mechanism. The main body includes a support frame, a rinsing cylinder is installed on one side of the upper end of the support frame, and a drying cylinder is installed on the upper end of the support frame away from the rinsing cylinder. The transfer mechanism includes a support base, a telescopic rod is movably inserted inside the support base, a horizontal plate is provided at the upper end of the telescopic rod, and a second motor is embedded inside the upper end of the telescopic rod. The output end of the second motor passes through the telescopic rod and is connected to the horizontal plate. A pair of rotating shafts are rotatably connected inside the horizontal plate. The bottom ends of the pair of rotating shafts both pass through the horizontal plate and extend to the outside, and are both connected to a circular plate. A plurality of insert rods are movably inserted inside the circular plate. A placement cylinder is connected between the bottom ends of the plurality of insert rods. A limiting block is movably inserted inside each of the plurality of insert rods, and the bottom ends of the plurality of limiting blocks are all in contact with the upper end of the circular plate.

[0008] Furthermore, a screw is rotatably connected inside the support base, the screw extends into the interior of the telescopic rod and is threadedly connected to the telescopic rod, and sliding grooves are provided on both sides of the inner wall of the support base, the sliding grooves being slidably connected to the telescopic rod.

[0009] The beneficial effect of adopting the above-mentioned further solution is that, by setting up a rinsing cylinder and a drying cylinder, and with a pair of placement cylinders located on the same axis as the rinsing cylinder and the drying cylinder respectively, through the cooperation of the insertion rod and the limiting block, when the limiting block and the insertion rod separate, the circular plate and the placement cylinder separate. Unrinsed chemical raw materials and rinsed chemical raw materials are placed in the pair of placement cylinders above the rinsing cylinder and the drying cylinder respectively. Then, the placement cylinders and the circular plate are reattached, and the limiting block is inserted into the insertion rod. Through the cooperation of the screw and the sliding groove, When the screw rotates, the telescopic rod, which is connected to its external thread, moves linearly under the sliding action with the slide groove. When the telescopic rod moves down, a pair of placement cylinders are placed inside the rinsing cylinder and the drying cylinder, respectively, for rinsing and drying. After rinsing and drying are completed, when the telescopic rod moves up, the placement cylinder on the drying cylinder is removed, the chemical raw materials are taken out, and the unrinsed chemical raw materials are poured back in. Then, by starting the second motor, the horizontal plate is rotated, thereby causing the positions of the pair of placement cylinders above the rinsing cylinder and the drying cylinder to be transferred and replaced.

[0010] Furthermore, a driven bevel gear is sleeved on the outside of one end of the screw, and a rotating rod is rotatably connected inside the support base near the screw. A driving bevel gear is sleeved on the outside of one end of the rotating rod, and the driving bevel gear and the driven bevel gear mesh with each other.

[0011] The beneficial effect of adopting the above-mentioned further scheme is that, through the cooperative use of the driven bevel gear and the driving bevel gear, when the rotating rod rotates, it is easy for the driving bevel gear to rotate, which drives the driven bevel gear to rotate, thereby realizing the rotation of the screw.

[0012] Furthermore, a first motor is installed on one side of the outer wall of the support base, and the output end of the first motor is connected to the rotating rod through a coupling.

[0013] The beneficial effect of adopting the above-mentioned further solution is that by setting up a first motor, it is convenient to drive the rotating rod to rotate when the first motor is started.

[0014] Furthermore, a synchronous pulley is fitted around the outside of each pair of rotating shafts, and a synchronous belt is wound between the pair of synchronous pulleys. A third motor is installed at the upper end of the horizontal plate, and the output end of the third motor is connected to one of the rotating shafts through a coupling.

[0015] The beneficial effect of adopting the above-mentioned further solution is that by setting a third motor, when the third motor is started, it is convenient for one of the shafts at its output end to rotate, and under the action of the synchronous pulley and the synchronous belt, it drives the other shaft to rotate.

[0016] Furthermore, electromagnets are embedded in the bottom end of the circular plate and the top end of the placement cylinder, and a pair of electromagnets attract each other.

[0017] The beneficial effect of adopting the above-mentioned further solution is that by setting a pair of electromagnets, when the pair of electromagnets are energized and attract each other, the connection between the circular plate and the placement cylinder is made tighter.

[0018] Furthermore, a filter box is installed at the bottom of the bracket. The filter box is connected to the rinsing cylinder through a pipe. Several sets of first support members and several sets of second support members are installed sequentially from top to bottom at the four corners inside the filter box. Filter plates and activated carbon adsorption beds are respectively provided at the upper ends of the several sets of first support members and several sets of second support members.

[0019] The beneficial effect of adopting the above-mentioned further solution is that, since the filter box is connected to the rinsing cylinder through a pipe and a solenoid valve is installed outside the pipe, when the solenoid valve is activated, it is convenient for the water inside the rinsing cylinder to enter the filter box and pass through the filter plate and activated carbon adsorption bed to filter and purify the rinsing water.

[0020] Furthermore, a booster pump is installed on one side of the outer wall of the filter box. The input end of the booster pump extends into the interior of the filter box, and the output end of the booster pump is connected to a connecting pipe. One end of the connecting pipe passes through the bracket and is connected to the rinsing cylinder.

[0021] The beneficial effect of adopting the above-mentioned further solution is that by setting up a booster pump, when the booster pump is started, it is easy to re-inject the filtered and purified water into the rinsing drum, thereby achieving the purpose of water saving.

[0022] Furthermore, a sealing groove is provided on one side of the filter box, a sealing plate is movably inserted inside the sealing groove, and a sealing ring is fitted around the outside of the sealing plate.

[0023] The beneficial effect of adopting the above-mentioned further solution is that by setting a sealing ring, the outer wall of the sealing ring abuts against the inner wall of the sealing groove, thereby improving the sealing performance between the sealing groove and the sealing plate and preventing water leakage.

[0024] Furthermore, an air box is connected to the outer side of the drying duct, the air box is connected to the drying duct, and a pair of fans are embedded inside one side of the air box.

[0025] The beneficial effect of adopting the above-mentioned further solution is that by embedding a pair of fans on one side of the air box, when the pair of fans are started, it is convenient for external air to enter the interior of the drying cylinder, thereby drying the chemical raw materials placed inside the drying cylinder. At the same time, exhaust slots are opened on both sides of the exterior of the drying cylinder to facilitate air circulation.

[0026] The beneficial effects of this utility model are as follows: This utility model provides a chemical raw material rinsing device through the above design. This device includes a rinsing cylinder and a drying cylinder, with a pair of placement cylinders located on the same axis as the rinsing and drying cylinders. Through the cooperation of the insertion rod and the limiting block, when the limiting block and the insertion rod separate, the circular plate and the placement cylinders separate. Unrinsed chemical raw materials and rinsed chemical raw materials are placed inside the pair of placement cylinders above the rinsing and drying cylinders, respectively. Then, the placement cylinders and the circular plate are reattached, and the limiting block is inserted back into the insertion rod. Inside, through the cooperation of the screw and the slide, when the screw rotates, the telescopic rod connected to its external thread moves linearly under the sliding action with the slide. When the telescopic rod moves down, a pair of placement cylinders are placed inside the rinsing cylinder and the drying cylinder respectively for rinsing and drying. After rinsing and drying are completed, when the telescopic rod moves up, the placement cylinder on the drying cylinder is removed, the chemical raw materials are taken out, and the unrinsed chemical raw materials are poured back in. Then, by starting the second motor, the horizontal plate is rotated, thereby changing the position of the pair of placement cylinders above the rinsing cylinder and the drying cylinder. Attached Figure Description

[0027] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained from these drawings without creative effort.

[0028] Figure 1 A three-dimensional structural diagram of a chemical raw material rinsing device provided by this utility model. Figure 1 ;

[0029] Figure 2A three-dimensional structural diagram of a chemical raw material rinsing device provided by this utility model. Figure 2 ;

[0030] Figure 3 An exploded three-dimensional structural diagram of the transfer mechanism of a chemical raw material rinsing device provided by this utility model;

[0031] Figure 4 A three-dimensional unfolded structural diagram of the circular plate and placement cylinder of a chemical raw material rinsing device provided by this utility model;

[0032] Figure 5 This is a three-dimensional unfolded structural diagram of the filter box of a chemical raw material rinsing device provided by this utility model.

[0033] In the diagram: 100, Main body; 1001, Support frame; 1002, Rinsing cylinder; 1003, Drying cylinder; 1004, Filter box; 1005, First support component; 1006, Filter plate; 1007, Second support component; 1008, Activated carbon adsorption bed; 1009, Booster pump; 1010, Connecting pipe; 1011, Sealing plate; 1012, Air box; 1013, Fan; 200, Transfer mechanism; 2001, Support base; 200 2. Telescopic rod; 2003. Screw; 2004. Driven bevel gear; 2005. Rotating rod; 2006. Driving bevel gear; 2007. First motor; 2008. Horizontal plate; 2009. Second motor; 2010. Rotating shaft; 2011. Circular plate; 2012. Insert rod; 2013. Placement cylinder; 2014. Limiting block; 2015. Electromagnet; 2016. Synchronous pulley; 2017. Synchronous belt; 2018. Third motor. Detailed Implementation

[0034] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0035] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.

[0036] Example 1

[0037] This utility model provides the following technical solutions: such as Figures 1-5 As shown, a chemical raw material rinsing device includes a main body 100 and a transfer mechanism 200. The main body 100 includes a support 1001, a rinsing cylinder 1002 is installed on one side of the upper end of the support 1001, and a drying cylinder 1003 is installed on the upper end of the support 1001 away from the rinsing cylinder 1002. The transfer mechanism 200 includes a support base 2001, a telescopic rod 2002 is movably inserted inside the support base 2001, a horizontal plate 2008 is provided at the upper end of the telescopic rod 2002, and a second motor 2009 is embedded inside the upper end of the telescopic rod 2002. The output end passes through the telescopic rod 2002 and is connected to the horizontal plate 2008 via a transmission mechanism. A pair of rotating shafts 2010 are rotatably connected inside the horizontal plate 2008. The bottom ends of both shafts 2010 extend through the horizontal plate 2008 to the outside and are connected to a circular plate 2011. Several insert rods 2012 are movably inserted inside the circular plate 2011. A placement cylinder 2013 is connected between the bottom ends of the insert rods 2012. Limiting blocks 2014 are movably inserted inside each of the insert rods 2012. The bottom ends of the limiting blocks 2014 are abutted against the upper end of the circular plate 2011. This is achieved by setting a floating... The washing drum 1002 and the drying drum 1003, and a pair of placement drums 2013 are located on the same axis as the washing drum 1002 and the drying drum 1003, respectively. Through the cooperation of the insertion rod 2012 and the limiting block 2014, when the limiting block 2014 and the insertion rod 2012 separate, the circular plate 2011 and the placement drums 2013 separate. Unrinsed chemical raw materials and rinsed chemical raw materials are placed inside the pair of placement drums 2013 above the washing drum 1002 and the drying drum 1003, respectively. Then, the placement drums 2013 and the circular plate 2011 are reattached, and the limiting block 2014 is then... 14 Insert the insert rod 2012 into the interior. When the telescopic rod 2002 moves down, a pair of placement cylinders 2013 are placed inside the rinsing cylinder 1002 and the drying cylinder 1003 respectively for rinsing and drying. After rinsing and drying are completed, when the telescopic rod 2002 moves up, the placement cylinders 2013 on the drying cylinder 1003 are removed and the chemical raw materials are taken out and then unrinsed chemical raw materials are poured back in. Then, by starting the second motor 2009, the horizontal plate 2008 is rotated, thereby causing the positions of the pair of placement cylinders 2013 above the rinsing cylinder 1002 and the drying cylinder 1003 to be transferred and replaced.

[0038] Example 2

[0039] Reference Figures 1-5As shown, a screw 2003 is rotatably connected inside the support base 2001. The screw 2003 extends into the interior of the telescopic rod 2002 and is threadedly connected to the telescopic rod 2002. Sliding grooves are provided on both sides of the inner wall of the support base 2001, and these grooves are slidably connected to the telescopic rod 2002. Through the cooperation of the screw 2003 and the sliding grooves, when the screw 2003 rotates, the externally threaded telescopic rod 2002 moves linearly under the sliding action with the sliding grooves. One end of the screw 2003 is externally fitted with a driven bevel tooth. Inside the wheel 2004 and support base 2001, near the screw 2003, a rotating rod 2005 is rotatably connected. One end of the rotating rod 2005 is fitted with a driving bevel gear 2006. The driving bevel gear 2006 meshes with the driven bevel gear 2004. Through the cooperation of the driven bevel gear 2004 and the driving bevel gear 2006, when the rotating rod 2005 rotates, it facilitates the rotation of the driving bevel gear 2006, which in turn drives the driven bevel gear 2004 to rotate, thereby realizing the rotation of the screw 2003. The support base 200... A first motor 2007 is installed on one side of the outer wall of section 1. The output end of the first motor 2007 is connected to the rotating rod 2005 via a coupling. Starting the first motor 2007 facilitates the rotation of the rotating rod 2005. Synchronous pulleys 2016 are fitted on the outside of each pair of rotating shafts 2010, and a synchronous belt 2017 is wound between the pair of synchronous pulleys 2016. A third motor 2018 is installed on the upper end of the horizontal plate 2008. The output end of the third motor 2018 is connected to one of the rotating shafts 2010 via a coupling. The connection is achieved by starting the third motor 2018, which allows one of its output shafts 2010 to rotate. Under the action of the synchronous pulley 2016 and the synchronous belt 2017, the other shaft 2010 is driven to rotate. Electromagnets 2015 are embedded in the bottom end of the circular plate 2011 and the upper end of the placement cylinder 2013. A pair of electromagnets 2015 attract each other. By energizing the pair of electromagnets 2015, they attract each other, making the connection between the circular plate 2011 and the placement cylinder 2013 tighter.

[0040] Example 3

[0041] Reference Figures 1-5As shown, a filter box 1004 is installed at the bottom of the support 1001. The filter box 1004 is connected to the rinsing cylinder 1002 via a pipe. Several sets of first support members 1005 and several sets of second support members 1007 are installed sequentially from top to bottom at the four corners inside the filter box 1004. A filter plate 1006 and an activated carbon adsorption bed 1008 are respectively installed at the upper ends of the sets of first support members 1005 and the sets of second support members 1007. Since the filter box 1004 is connected to the rinsing cylinder 1002 via a pipe... 002 connection, an external solenoid valve is installed on the pipeline. When the solenoid valve is activated, it facilitates the entry of water from inside the rinsing drum 1002 into the filter box 1004 and through the filter plate 1006 and activated carbon adsorption bed 1008 to filter and purify the rinsing water. A booster pump 1009 is installed on one side of the outer wall of the filter box 1004. The input end of the booster pump 1009 extends into the interior of the filter box 1004, and the output end of the booster pump 1009 is connected to a connecting pipe 1010. One end of the connecting pipe 1010... The filter box 1004 is connected to the rinsing drum 1002 via the support bracket 1001. By activating the booster pump 1009, the filtered and purified water can be easily reinjected into the rinsing drum 1002, thus achieving water conservation. A sealing groove is provided on one side of the filter box 1004, and a sealing plate 1011 is movably inserted inside the sealing groove. A sealing ring is fitted around the outside of the sealing plate 1011. By using the sealing ring, the outer wall of the sealing ring abuts against the inner wall of the sealing groove, thereby improving the seal between the sealing groove and the sealing plate 1011. To prevent water seepage, a blower box 1012 is connected to the outer side of the air drying duct 1003. The blower box 1012 is connected to the air drying duct 1003, and a pair of fans 1013 are embedded inside one side of the blower box 1012. By starting the pair of fans 1013, it is easy for outside air to enter the interior of the air drying duct 1003, thereby drying the chemical raw materials placed inside the container 2013. At the same time, exhaust slots are opened on both sides of the exterior of the air drying duct 1003 to facilitate air circulation.

[0042] Specifically, the working principle of this chemical raw material rinsing device is as follows: During use, the insertion rod 2012 and the limiting block 2014 work together. When the limiting block 2014 and the insertion rod 2012 separate, the circular plate 2011 and the placement cylinder 2013 separate. Unrinsed chemical raw materials and rinsed chemical raw materials are placed inside the pair of placement cylinders 2013 above the rinsing cylinder 1002 and the drying cylinder 1003, respectively. Then, the placement cylinders 2013 and the circular plate 2011 are reattached, and the limiting block 2014 is inserted into the insertion rod 2012. Starting the first motor 2007 drives the rotating rod 2005 to rotate, which in turn drives the active bevel gear 2006, causing the driven bevel gear 2004 to rotate. This, in turn, rotates the screw 2003, facilitating the movement of the externally threaded telescopic rod 2002. The chute moves linearly under the sliding action. When the telescopic rod 2002 moves down, a pair of placement cylinders 2013 are placed inside the rinsing cylinder 1002 and the drying cylinder 1003 respectively for rinsing and drying. By starting a pair of fans 1013, external air can enter the drying cylinder 1003 to dry the chemical raw materials placed inside the placement cylinders 2013. After rinsing and drying are completed, when the telescopic rod 2002 moves up, the placement cylinders 2013 on the drying cylinder 1003 are removed and the chemical raw materials are taken out and then unrinsed chemical raw materials are poured in again. Then, by starting the second motor 2009, the horizontal plate 2008 is rotated, thereby changing the position of the pair of placement cylinders 2013 above the rinsing cylinder 1002 and the drying cylinder 1003, and rinsing and drying are performed again.

[0043] It should be noted that the specific model and specifications of the booster pump 1009, fan 1013, first motor 2007, second motor 2009, electromagnet 2015 and third motor 2018 of a chemical raw material rinsing device need to be selected and determined according to the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be described in detail.

[0044] The power supply and operating principle of a chemical raw material rinsing device, including a booster pump 1009, a blower 1013, a first motor 2007, a second motor 2009, an electromagnet 2015, and a third motor 2018, are clear to those skilled in the art and will not be described in detail here.

[0045] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A chemical raw material rinsing device, characterized in that, The system includes a main body (100) and a transfer mechanism (200). The main body (100) includes a bracket (1001), a rinsing tube (1002) is mounted on one side of the upper end of the bracket (1001), and a drying tube (1003) is mounted on the upper end of the bracket (1001) away from the rinsing tube (1002). The transfer mechanism (200) includes a support base (2001), a telescopic rod (2002) is movably inserted inside the support base (2001), a cross plate (2008) is provided at the upper end of the telescopic rod (2002), and a second motor (2009) is embedded inside the upper end of the telescopic rod (2002). The output end passes through the telescopic rod (2002) and is connected to the horizontal plate (2008) via a transmission. A pair of rotating shafts (2010) are rotatably connected inside the horizontal plate (2008). The bottom ends of the pair of rotating shafts (2010) both pass through the horizontal plate (2008) and extend to the outside, and are both connected to a circular plate (2011). Several insert rods (2012) are movably inserted inside the circular plate (2011). A placement cylinder (2013) is connected between the bottom ends of the several insert rods (2012). A limiting block (2014) is movably inserted inside the several insert rods (2012). The bottom ends of the several limiting blocks (2014) are all in contact with the upper end of the circular plate (2011).

2. The chemical raw material rinsing device according to claim 1, characterized in that, The support base (2001) is rotatably connected to a screw (2003), which extends into the interior of the telescopic rod (2002) and is threadedly connected to the telescopic rod (2002). The inner walls of the support base (2001) are provided with sliding grooves on both sides, and the sliding grooves are slidably connected to the telescopic rod (2002).

3. The chemical raw material rinsing device according to claim 2, characterized in that, A driven bevel gear (2004) is sleeved on one end of the screw (2003). A rotating rod (2005) is rotatably connected inside the support base (2001) near the screw (2003). A driving bevel gear (2006) is sleeved on one end of the rotating rod (2005). The driving bevel gear (2006) and the driven bevel gear (2004) mesh with each other.

4. A chemical raw material rinsing device according to claim 3, characterized in that, A first motor (2007) is installed on one side of the outer wall of the support base (2001), and the output end of the first motor (2007) is connected to the rotating rod (2005) through a coupling.

5. A chemical raw material rinsing device according to claim 4, characterized in that, A synchronous pulley (2016) is fitted around the outside of each pair of rotating shafts (2010), and a synchronous belt (2017) is wound between the pair of synchronous pulleys (2016). A third motor (2018) is installed at the upper end of the horizontal plate (2008), and the output end of the third motor (2018) is connected to one of the rotating shafts (2010) through a coupling.

6. A chemical raw material rinsing device according to claim 5, characterized in that, Electromagnets (2015) are embedded in the bottom end of the circular plate (2011) and the top end of the placement cylinder (2013), and a pair of electromagnets (2015) attract each other.

7. A chemical raw material rinsing device according to claim 1, characterized in that, A filter box (1004) is installed at the bottom of the bracket (1001). The filter box (1004) is connected to the rinsing cylinder (1002) through a pipe. Several sets of first support members (1005) and several sets of second support members (1007) are installed in the four corners of the filter box (1004) from top to bottom. Filter plates (1006) and activated carbon adsorption beds (1008) are respectively provided at the upper ends of the several sets of first support members (1005) and several sets of second support members (1007).

8. A chemical raw material rinsing device according to claim 7, characterized in that, A booster pump (1009) is installed on one side of the outer wall of the filter box (1004). The input end of the booster pump (1009) extends into the interior of the filter box (1004), and the output end of the booster pump (1009) is connected to a connecting pipe (1010). One end of the connecting pipe (1010) passes through the bracket (1001) and is connected to the rinsing cylinder (1002).

9. A chemical raw material rinsing device according to claim 8, characterized in that, The filter box (1004) has a sealing groove on one side, and a sealing plate (1011) is movably inserted inside the sealing groove. A sealing ring is fitted around the sealing plate (1011).

10. A chemical raw material rinsing device according to claim 9, characterized in that, A bellows box (1012) is connected to the outer side of the air drying duct (1003). The bellows box (1012) is connected to the air drying duct (1003), and a pair of fans (1013) are embedded inside one side of the bellows box (1012).