A chemical raw material fine production device and method

By designing a refined production device for chemical raw materials, the combination of the working-shaped shell and heat pipe assembly is used to achieve uniform heating of the chemical solution, solving the problem that the heat pipes in the double-tower film evaporator group are difficult to heat the chemical solution evenly, and improving the purification effect.

CN119746440BActive Publication Date: 2025-05-16SHANDONG HUAYU UNIV OF TECH
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Patent Information

Application Number
CN202510249134.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-05-16
Estimated Expiration
2045-03-04

AI Technical Summary

Technical Problem

During the refined production process of chemical raw materials, the double tower falling film evaporator group has difficulty in heating the chemical solution evenly due to the difficulty of heat pipes, resulting in poor purification effect.

Method used

A refined production device for chemical raw materials is designed, using components such as work-shaped shell, top shell, bottom shell, pore plate, heat pipe, etc., to drive the rotation of ring blocks and strip plates through the round rod to ensure that the hot air flows evenly in the heat pipe and achieve uniform heating of the chemical solution.

Benefits of technology

The uniform heating of the chemical solution is achieved, the purification effect of chemical raw materials is improved, and the poor purification effect is avoided due to the difficulty of uniform heating of the chemical solution in the heat pipe to a boiling state.

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Abstract

The invention discloses a refined production device and method for chemical raw materials, and relates to the technical field of chemical production. The invention comprises an I-shaped shell, wherein a top shell is fixedly installed on the top surface of the I-shaped shell, a leak-proof ring is provided at the bottom of the inner wall of the top shell, a bottom shell is fixedly installed on the bottom surface of the I-shaped shell, hole plates are fixed on the top and bottom of the inner wall of the I-shaped shell, a plurality of circular holes are opened on the top surfaces of the two hole plates, and a plurality of heat pipes are respectively fixed on the inner walls of the circular holes of the two hole plates, a heat dissipation shell is fixed on the bottom surface of the bottom shell, a servo motor is fixedly installed on the bottom end of the heat dissipation shell, a round rod is penetrated through the middle of the bottom surface of the heat dissipation shell and rotatably installed, and the bottom surface of the round rod is fixedly connected to the top surface of the rotating shaft of the servo motor. The invention fans hot air through a strip plate, and the hot air flows evenly in the heat pipe, thereby avoiding the problem that the chemical solution in the heat pipe is difficult to be evenly heated to a boiling state, resulting in poor purification effect of the chemical raw materials.
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Description

Technical Field

[0001] The invention relates to the technical field of chemical production, and in particular to a device and method for fine production of chemical raw materials. Background Art

[0002] The chemical raw material fine production equipment is mainly used for distillation and separation of chemical solutions. Through the heating pipe, the solution in the heating tube is heated and boiled to generate steam. The chemical solution continues to boil and evaporate in the heating tube, and the concentrated solution is discharged from the bottom of the evaporator, thereby increasing the concentration of the chemical solution.

[0003] The patent with publication number CN222488901U discloses a double-tower falling film evaporator group, which belongs to the technical field of evaporator equipment, including a heating evaporator tank, a replacement component is arranged on the top of the heating evaporator tank, which can make the liquid introduction more uniform, and convenient for the replacement and maintenance of the heat pipe. The separator separates the evaporated liquid and steam, and the steam passes through the secondary steam outlet on the upper part of the separator and enters the heating evaporator tank as a heating medium, thereby realizing multi-effect operation and improving the energy utilization rate. The main function of the heating steam inlet is to provide the heat energy required for evaporation, and the condensed water outlet is to discharge the water formed by the condensation of the heating steam after the heat is transferred. The installation slot is arranged to correspond to the bottom of the partition plate to ensure the stability of the partition plate installation, and the processing port and the concentrated liquid outlet can discharge the internal medium in time.

[0004] However, the current double-tower falling film evaporator group has the following problems: when the double-tower falling film evaporator group is in use, the heat pipe is difficult to evenly heat the chemical solution during the fine production of chemical raw materials, which leads to poor purification effect of chemical raw materials. Therefore, we propose a device and method for fine production of chemical raw materials. Summary of the invention

[0005] In view of the deficiencies in the prior art, the present invention provides a device and method for fine production of chemical raw materials, which solves the problems raised in the above background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a chemical raw material fine production device, including an I-shaped shell, a top shell is fixedly installed on the top surface of the I-shaped shell, a leak-proof ring is provided at the bottom of the inner wall of the top shell, a bottom shell is fixedly installed on the bottom surface of the I-shaped shell, a hole plate is fixed on the top and bottom of the inner wall of the I-shaped shell, a plurality of circular holes are opened on the top surfaces of the two hole plates, and a plurality of heat pipes are respectively fixed on the inner walls of the circular holes of the two hole plates, a heat dissipation shell is fixed on the bottom surface of the bottom shell, a servo motor is fixedly installed on the bottom end of the heat dissipation shell, a round rod is passed through the middle of the bottom surface of the heat dissipation shell and rotatably installed, and the bottom surface of the round rod is fixedly connected to the top surface of the rotating shaft of the servo motor, The round rod passes through and is rotatably installed in the middle of the bottom surface of the lower orifice plate, the top of the round rod is rotatably connected to the bottom surface of the upper orifice plate, two ring blocks are fixed to the outer wall of the round rod, three strip plates are respectively embedded in the outer walls of the two ring blocks, the three strip plates are located in the middle of a plurality of heat pipes, a concave tube is fixed to the bottom surface of the orifice plate below, a T-shaped tube is fixed to the bottom of the outer wall of the round rod, the outer wall of the T-shaped tube is rotatably connected to the bottom end of the inner part of the concave tube, the round rod drives the T-shaped tube to rotate forward, the T-shaped tube rotates forward in the concave tube, the T-shaped tube blocks the leakage of hot air from the orifice plate, and the strip plates fan the hot air during the rotation process, and the hot air flows evenly in the heat pipe, so that the heat pipe heats the chemical solution evenly.

[0007] According to the above technical solution, two double-hole rings are fixed to the outer wall of the I-shaped shell, two U-shaped rods are fixed to the inner walls of the two double-hole rings respectively, an H-shaped frame is fixed to the back of the two U-shaped rods, and a plurality of bolt holes are opened on the front of the H-shaped frame.

[0008] According to the above technical solution, a heat inlet is opened at the top left side of the I-shaped shell, a heat outlet is opened at the bottom right side of the I-shaped shell, an air outlet is opened in the middle of the top surface of the top shell, a liquid inlet is opened on the left side of the top surface of the top shell, and a liquid outlet is opened at the bottom left side of the bottom shell.

[0009] According to the above technical solution, a liquid sweeping device is provided on the outer wall of the T-shaped tube, and the liquid sweeping device is used to scrape off the chemical solution on the perforated plate. An anti-adhesion device is provided on the bottom surface of the liquid sweeping device, and the anti-adhesion device is used to shovel off the chemical solution on the wall surface of the bottom shell.

[0010] According to the above technical solution, a ring block is fixed to the outer wall of the T-shaped tube, and two L-shaped rods are fixed to the outer wall of the ring block. The outer walls of the two L-shaped rods are respectively opened with circular openings, and two triangular bars are respectively embedded in the ends away from the two L-shaped rods. Two inclined plates are respectively embedded in the top surfaces of the two triangular bars. The outer walls of the two inclined plates are in sliding contact with the bottom surface of the hole plate below, and two short columns are respectively fixed to the bottom surfaces of the two triangular bars. The outer walls of the two short columns are fixedly connected to the inner walls of the circular openings of the two L-shaped rods. When the inclined plates rotate, they scrape off the purified chemical solution below the hole plate.

[0011] According to the above technical scheme, two concave straight plates are fixed to the bottom surfaces of the two short columns, and two connecting rings are fixed to the top surfaces of the two concave straight plates. The inner walls of the two connecting rings are fixedly connected to the outer walls of the two L-shaped rods. The inner walls of the two concave straight plates are rotatably installed with two shaft plates. An inner convex ring is fixed to the top of the inner wall of the bottom shell, and the inner wall of the inner convex ring is provided with a number of protrusions. Two arc-shaped spring sheets are fixed to the outer walls of the two shaft plates, and one end of the two arc-shaped spring sheets away from the two shaft plates is fixedly connected to the inner walls of the two concave straight plates. The outer walls of the several protrusions of the inner convex ring are on the motion trajectory of the outer walls of the two shaft plates. When the inclined plate scrapes off the dripping liquid from the orifice plate, the inclined plate transmits vibration to the heat pipe, allowing the chemical solution on the wall of the heat pipe to drip downward.

[0012] According to the above technical solution, two support rods are respectively embedded in the bottom surfaces of the two concave straight plates, and two vertical plates are respectively fixed on one end of the two support rods away from the two concave straight plates, and a three-ring frame is fixed on the top of the outer wall of the two support rods, and the three-ring frame is sleeved on the bottom of the outer wall of the round rod, and two vertical three-plates are respectively fixed on the side of the two vertical plates away from each other, and the outer walls of the two vertical three-plates are in sliding contact with the inner wall of the bottom shell, and the vertical three-plates scrape off the chemical solution attached to the wall surface of the bottom shell during the rotation process.

[0013] According to the above technical solution, two oblique rods are fixed to the bottom of one side where the two vertical three plates are close to each other, and two bottom rods are fixed to the bottom surfaces of the two oblique rods. Two bent plates are embedded in the middle of the bottom surfaces of the two bottom rods, and the outer walls of the two bent plates are in sliding contact with the inner bottom end of the bottom shell. During the rotation of the plates, the bent plates sweep the chemical solution at the bottom of the bottom shell into the liquid outlet, allowing the bottom shell to quickly discharge the purified chemical solution.

[0014] A method for using a chemical raw material fine production device comprises the following steps:

[0015] S1. Install the H-shaped frame in the factory building, the H-shaped frame supports the U-shaped rod, the U-shaped rod supports the double hole ring, and the double hole ring supports the I-shaped shell;

[0016] S2. The operator introduces hot air at the heat inlet of the I-shaped shell. The hot air enters the I-shaped shell and heats the heat pipe. The heated hot air is discharged from the air outlet of the I-shaped shell.

[0017] S3, the chemical solution is transported to the I-shaped shell through the liquid inlet of the top shell, and the chemical solution enters the heat pipe of the perforated plate;

[0018] S4. During the rotation of the strip plate, the strip plate fans the hot air, and the hot air flows evenly in the heat pipe;

[0019] S5. During the rotation of the inclined plate, the inclined plate scrapes the purified chemical solution below the orifice plate;

[0020] S6. When the inclined plate scrapes off the dripping liquid from the orifice plate, the inclined plate transmits vibration to the heat pipe, causing the chemical solution on the wall of the heat pipe to drip downward;

[0021] S7, during the rotation of the three vertical plates, the three vertical plates scrape off the chemical solution attached to the wall surface of the bottom shell;

[0022] S8, the bent plate sweeps the chemical solution at the bottom of the bottom shell into the liquid outlet, allowing the bottom shell to quickly discharge the purified chemical solution.

[0023] The present invention provides a device for fine production of chemical raw materials. It has the following beneficial effects:

[0024] (1) The present invention comprises an I-shaped shell, a top shell, a bottom shell, a perforated plate, a heat pipe, a heat dissipation shell, a servo motor, a round rod, a ring block, a strip plate and a concave tube in combination with a T-tube. The round rod drives the ring block to rotate forward, the ring block drives the strip plate to rotate forward, the round rod drives the T-tube to rotate forward, the T-tube rotates forward in the concave tube, the T-tube blocks the hot air from leaking from the perforated plate, the strip plate fans the hot air during the rotation process, and the hot air flows evenly in the heat pipe, so that the heat pipe heats the chemical solution evenly, thereby preventing the chemical solution in the heat pipe from being difficult to be evenly heated to a boiling state, resulting in poor purification effect of the chemical raw materials.

[0025] (2) The present invention arranges the liquid sweeping device so that the ring block, L-shaped rod, triangular bar and inclined plate cooperate with the short column. The triangular bar drives the inclined plate to rotate forward. During the rotation of the inclined plate, the inclined plate scrapes off the purified chemical solution under the orifice plate, thereby preventing the purified chemical solution from accumulating under the orifice plate and causing waste of chemical purification.

[0026] (3) The present invention arranges the liquid sweeping device so that the concave straight plate, the connecting ring, the shaft plate and the inner convex ring cooperate with the arc spring sheet, the shaft plate hits the convex block of the inner convex ring, the concave straight plate generates vibration, and the concave straight plate transmits the vibration to the inclined plate. When the inclined plate scrapes the dripping liquid from the hole plate, the inclined plate transmits the vibration to the heat pipe, so that the chemical solution on the wall of the heat pipe drips downward, thereby preventing a large amount of chemical solution from being attached to the wall of the heat pipe, causing the chemical solution in the production device to purify slowly.

[0027] (4) The present invention sets an anti-adhesion device so that the support rod, the vertical plate and the three-ring frame cooperate with the vertical three plates. The support rod drives the three-ring frame to rotate forward, so that the support rod remains stable during the rotation process. During the rotation process, the vertical three plates scrape off the chemical solution attached to the wall surface of the bottom shell, thereby preventing a large amount of chemical solution from adhering to the wall surface of the bottom shell, which may cause the bottom shell to be easily damaged by aging.

[0028] (5) The present invention sets an anti-adhesion device so that the oblique rod and the bottom rod cooperate with the bent plate, and the bent plate sweeps the chemical solution at the bottom of the bottom shell into the liquid outlet, allowing the bottom shell to quickly discharge the purified chemical solution, thereby preventing the purified chemical solution from being discharged slowly in the equipment, resulting in poor discharge effect of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 A schematic diagram of the present invention as a whole;

[0030] Figure 2 It is a schematic diagram of the back side of the present invention as a whole;

[0031] Figure 3 is a schematic diagram of the internal components of the present invention;

[0032] Figure 4 It is a cross-sectional schematic diagram of the I-shaped shell of the present invention;

[0033] Figure 5 For the present invention Figure 4 A local enlarged schematic diagram of the middle A;

[0034] Figure 6 It is a schematic diagram of the liquid sweeping device of the present invention;

[0035] Figure 7 is a schematic diagram of the anti-adhesion device of the present invention;

[0036] Figure 8 For the present invention Figure 7 A local enlarged schematic diagram of point B in the middle.

[0037] In the figure: 1, I-shaped shell; 2, top shell; 3, bottom shell; 4, perforated plate; 5, heat pipe; 6, heat dissipation shell; 7, servo motor; 8, round rod; 9, ring block; 10, strip plate; 11, concave tube; 12, T-shaped tube; 13, liquid sweeping device; 131, ring block; 132, L-shaped rod; 133, triangular strip; 134, inclined plate; 135, short column; 136, concave straight plate; 137, connecting ring; 138, shaft plate; 139, inner convex ring; 1310, arc spring sheet; 14, anti-adhesion device; 141, support rod; 142, vertical plate; 143, three-ring frame; 144, vertical three plates; 145, oblique square rod; 146, bottom rod; 147, bent plate; 15, double hole ring; 16, U-shaped rod; 17, H-shaped frame. DETAILED DESCRIPTION

[0038] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0039] See also Figure 1-Figure 8, one embodiment of the present invention is: a chemical raw material fine production device, including an I-shaped shell 1, a top shell 2 is fixedly installed on the top surface of the I-shaped shell 1, a leak-proof ring is provided at the bottom of the inner wall of the top shell 2, a bottom shell 3 is fixedly installed on the bottom surface of the I-shaped shell 1, a hole plate 4 is fixed on the top and bottom of the inner wall of the I-shaped shell 1, a plurality of circular holes are opened on the top surfaces of the two hole plates 4, and a plurality of heat pipes 5 are respectively fixed on the inner walls of the plurality of circular holes of the two hole plates 4, a heat dissipation shell 6 is fixed on the bottom surface of the bottom shell 3, a servo motor 7 is fixedly installed on the bottom end of the heat dissipation shell 6, a round rod 8 is penetrated and rotatably installed in the middle of the bottom surface of the heat dissipation shell 6, the bottom surface of the round rod 8 is fixedly connected to the top surface of the rotating shaft of the servo motor 7, the round rod 8 penetrates and is rotatably installed in the middle of the bottom surface of the lower hole plate 4, the top of the round rod 8 is rotatably connected to the bottom surface of the upper hole plate 4, and two ring blocks 9 are fixed on the outer wall of the round rod 8, and three strip plates 10 are respectively embedded in the outer walls of the two ring blocks 9, and the three strip plates 10 are located at the plurality of heat pipes 5 The bottom surface of the hole plate 4 is fixed with a concave tube 11, and the bottom of the outer wall of the round rod 8 is fixed with a T-shaped tube 12. The outer wall of the T-shaped tube 12 is rotatably connected with the bottom end of the inner part of the concave tube 11. A heat inlet is provided at the top left side of the I-shaped shell 1, and a heat outlet is provided at the bottom right side of the I-shaped shell 1. An air outlet is provided in the middle of the top surface of the top shell 2, a liquid inlet is provided on the left side of the top surface of the top shell 2, and a liquid outlet is provided at the bottom left side of the bottom shell 3. The round rod 8 drives the ring block 9 to rotate forward, and the ring block 9 drives the strip plate 10 to rotate forward. The round rod 8 drives the T-shaped tube 12 to rotate forward. The T-shaped tube 12 rotates forward in the concave tube 11. The T-shaped tube 12 blocks the hot air from leaking from the hole plate 4. During the rotation of the strip plate 10, the strip plate 10 fans the hot air, and the hot air flows evenly in the heat pipe 5, so that the heat pipe 5 evenly heats the chemical solution, thereby avoiding that the chemical solution in the heat pipe 5 is difficult to be evenly heated to a boiling state during the purification process of the fine production device, resulting in poor purification effect of the chemical raw materials.

[0040] Two double hole rings 15 are fixed to the outer wall of the I-shaped shell 1, and two U-shaped rods 16 are fixed to the inner walls of the two double hole rings 15 respectively. An H-shaped frame 17 is fixed to the back of the two U-shaped rods 16, and a plurality of bolt holes are opened on the front of the H-shaped frame 17. A liquid sweeping device 13 is provided on the outer wall of the T-shaped tube 12. The liquid sweeping device 13 is used to scrape off the chemical solution on the hole plate 4. The bottom surface of the liquid sweeping device 13 is provided with an anti-adhesion device 14, and the anti-adhesion device 14 is used to shovel off the chemical solution on the wall surface of the bottom shell 3.

[0041] Since it is difficult for the heat pipe 5 to evenly heat the chemical solution during the fine production of chemical raw materials, when using the equipment, the H-shaped frame 17 is installed in the factory building, the H-shaped frame 17 supports the U-shaped rod 16, the U-shaped rod 16 supports the double-hole ring 15, the double-hole ring 15 supports the I-shaped shell 1, the operator introduces hot air at the heat inlet of the I-shaped shell 1, the hot air enters the I-shaped shell 1, the hot air heats the heat pipe 5, and the heated hot air is discharged from the air outlet of the I-shaped shell 1. At the same time, the I-shaped shell 1 supports the bottom shell 3, the bottom shell 3 supports the heat dissipation shell 6, the operator starts the servo motor 7 in the heat dissipation shell 6, the shaft of the servo motor 7 starts to rotate forward, the shaft of the servo motor 7 drives the round rod 8 to rotate forward, the round rod 8 rotates forward in the bottom shell 3, and the round rod 8 rotates forward in the hole plate 4, the operator The operator transports the chemical solution to the I-shaped shell 1 through the liquid inlet of the top shell 2, and the chemical solution enters the heat pipe 5 of the orifice plate 4. The round rod 8 drives the ring block 9 to rotate forward, and the ring block 9 drives the strip plate 10 to rotate forward. The round rod 8 drives the T-tube 12 to rotate forward, and the T-tube 12 rotates forward in the concave tube 11. The T-tube 12 blocks the hot air from leaking from the orifice plate 4. During the rotation of the strip plate 10, the strip plate 10 fans the hot air, and the hot air flows evenly in the heat pipe 5, so that the heat pipe 5 heats the chemical solution evenly, preventing the chemical solution in the heat pipe 5 from being difficult to be heated and boiled evenly when the equipment is in use, thereby avoiding the problem that the chemical solution in the heat pipe 5 is difficult to be heated to a boiling state evenly during the purification process of the fine production device, resulting in poor purification effect of chemical raw materials.

[0042] See also Figure 1-Figure 8 On the basis of the above embodiment, in another embodiment of the present invention, a ring block 131 is fixed to the outer wall of the T-shaped tube 12, and two L-shaped rods 132 are fixed to the outer wall of the ring block 131. The outer walls of the two L-shaped rods 132 are respectively provided with circular openings, and two triangular bars 133 are respectively embedded in the ends away from the two L-shaped rods 132, and two inclined plates 134 are respectively embedded in the top surfaces of the two triangular bars 133. The outer walls of the two inclined plates 134 are in sliding contact with the bottom surface of the hole plate 4 below, and two short columns 135 are respectively fixed to the bottom surfaces of the two triangular bars 133. The outer walls of the two short columns 135 are fixedly connected to the inner walls of the circular openings of the two L-shaped rods 132. The L-shaped rod 132 drives the triangular bar 133 to rotate forward, and the triangular bar 133 drives the inclined plate 134 to rotate forward. During the rotation of the inclined plate 134, the inclined plate 134 scrapes off the purified chemical solution below the hole plate 4, so as to avoid the accumulation of the purified chemical solution under the hole plate 4 during the purification process of the fine production device, resulting in waste of chemical purification.

[0043] Two concave straight plates 136 are fixed to the bottom surfaces of the two short columns 135, and two connecting rings 137 are fixed to the top surfaces of the two concave straight plates 136. The inner walls of the two connecting rings 137 are fixedly connected to the outer walls of the two L-shaped rods 132. Two shaft plates 138 are rotatably mounted on the inner walls of the two concave straight plates 136. An inner convex ring 139 is fixed to the top of the inner wall of the bottom shell 3. A plurality of convex blocks are provided on the inner wall of the inner convex ring 139. Two arc-shaped spring sheets 1310 are fixed to the outer walls of the two shaft plates 138. One end of the two arc-shaped spring sheets 1310 away from the two shaft plates 138 is connected to the two concave straight plates 13 6 is fixedly connected, and the outer walls of the several protrusions of the inner convex ring 139 are on the movement trajectory of the outer walls of the two shaft plates 138. During the rotation of the shaft plate 138, the shaft plate 138 hits the protrusions of the inner convex ring 139, and the concave straight plate 136 vibrates. The concave straight plate 136 transmits the vibration to the inclined plate 134. When the inclined plate 134 scrapes off the dripping liquid of the hole plate 4, the inclined plate 134 transmits the vibration to the heat pipe 5, so that the chemical solution on the wall of the heat pipe 5 drips downward, so as to avoid a large amount of chemical solution attached to the wall of the heat pipe 5 during the purification process of the fine production device, resulting in a slow purification speed of the chemical solution in the production device.

[0044] Two support rods 141 are respectively embedded in the bottom surfaces of the two concave straight plates 136, and two vertical plates 142 are respectively fixed on one end of the two support rods 141 away from the two concave straight plates 136, and a three-ring frame 143 is fixed on the top of the outer wall of the two support rods 141, and the three-ring frame 143 is sleeved on the bottom of the outer wall of the round rod 8, and two vertical three-plates 144 are respectively fixed on the side of the two vertical plates 142 away from each other, and the outer walls of the two vertical three-plates 144 are in sliding contact with the inner wall of the bottom shell 3, and the support rod 141 drives the three-ring frame 143 to rotate forward, so that the support rod 141 remains stable during the rotation process, and the vertical plate 142 drives the vertical three-plate 144 to rotate forward. During the rotation process, the vertical three-plate 144 shovels off the chemical solution attached to the wall surface of the bottom shell 3, so as to avoid a large amount of chemical solution attached to the wall surface of the bottom shell 3 during the purification process of the fine production device, which causes the bottom shell 3 to be easily aged and damaged.

[0045] Two oblique rods 145 are fixed to the bottom of one side of the two vertical three-plates 144 that are close to each other, and two bottom rods 146 are fixed to the bottom surfaces of the two oblique rods 145, and two bent plates 147 are embedded in the middle of the bottom surfaces of the two bottom rods 146. The outer walls of the two bent plates 147 are in sliding contact with the inner bottom end of the bottom shell 3. During the rotation of the bent plates 147, the bent plates 147 sweep the chemical solution at the bottom of the bottom shell 3 into the liquid outlet, so that the bottom shell 3 can quickly discharge the purified chemical solution, thereby avoiding the situation in which the purified chemical solution is slowly discharged from the equipment during the purification process of the fine production device, resulting in poor equipment discharge effect.

[0046] A method for using a chemical raw material fine production device comprises the following steps:

[0047] S1. Install the H-shaped frame 17 in the factory building, the H-shaped frame 17 supports the U-shaped rod 16, the U-shaped rod 16 supports the double hole ring 15, and the double hole ring 15 supports the I-shaped shell 1;

[0048] S2, the operator introduces hot air at the heat inlet of the I-shaped shell 1, the hot air enters the I-shaped shell 1, the hot air heats the heat pipe 5, and the heated hot air is discharged from the air outlet of the I-shaped shell 1;

[0049] S3, the chemical solution is transported to the I-shaped shell 1 through the liquid inlet of the top shell 2, and the chemical solution enters the heat pipe 5 of the perforated plate 4;

[0050] S4, during the rotation of the strip plate 10, the strip plate 10 fans the hot air, and the hot air flows evenly in the heat pipe 5;

[0051] S5. During the rotation of the inclined plate 134, the inclined plate 134 scrapes the purified chemical solution below the orifice plate 4;

[0052] S6, when the inclined plate 134 scrapes off the dripping liquid from the orifice plate 4, the inclined plate 134 transmits the vibration to the heat pipe 5, so that the chemical solution on the wall of the heat pipe 5 drips downward;

[0053] S7, during the rotation of the three vertical plates 144, the three vertical plates 144 scrape off the chemical solution attached to the wall surface of the bottom shell 3;

[0054] S8, the bent plate 147 sweeps the chemical solution at the bottom of the bottom shell 3 into the liquid outlet, allowing the bottom shell 3 to quickly discharge the purified chemical solution.

[0055] While the round rod 8 drives the T-tube 12 to rotate forward, the T-tube 12 drives the ring block 131 to rotate forward, the ring block 131 drives the L-shaped rod 132 to rotate forward, the L-shaped rod 132 drives the short column 135 to rotate forward, the short column 135 drives the triangular bar 133 to rotate forward, the L-shaped rod 132 drives the triangular bar 133 to rotate forward, the triangular bar 133 drives the inclined plate 134 to rotate forward, and the inclined plate 134 scrapes the purified chemical solution under the orifice plate 4 during the rotation process to prevent the purified chemical solution from accumulating under the orifice plate 4 when the equipment is in use, thereby avoiding the problem of waste of chemical purification caused by the purified chemical solution accumulating under the orifice plate 4 during the purification process of the fine production device.

[0056] When the L-shaped rod 132 drives the short column 135 to rotate forward, the L-shaped rod 132 drives the connecting ring 137 to rotate forward, the short column 135 drives the concave straight plate 136 to rotate forward, the connecting ring 137 drives the concave straight plate 136 to rotate forward, the concave straight plate 136 drives the shaft plate 138 to rotate forward, and the shaft plate 138 drives the arc spring piece 1310 to rotate forward. During the rotation of the shaft plate 138, the shaft plate 138 hits the convex block of the inner convex ring 139, and the shaft plate 138 rotates in the concave straight plate 136. When the shaft plate 138 leaves the convex block of the inner convex ring 139, the shaft plate 138 is reset in the concave straight plate 136 under the elastic force of the arc spring piece 1310. At the same time, the concave straight plate 136 produces The concave straight plate 136 transmits the vibration to the short column 135, the short column 135 transmits the vibration to the L-shaped rod 132, the L-shaped rod 132 transmits the vibration to the triangular bar 133, the triangular bar 133 transmits the vibration to the inclined plate 134, when the inclined plate 134 scrapes the dripping liquid of the hole plate 4, the hole plate 4 transmits the vibration to the heat pipe 5, so that the chemical solution on the wall of the heat pipe 5 drips downward, preventing a large amount of chemical solution from being attached to the wall of the heat pipe 5 when the equipment is in use, thereby avoiding a large amount of chemical solution attached to the wall of the heat pipe 5 during the purification process of the fine production device, resulting in a slow purification speed of the chemical solution in the production device.

[0057] While the short column 135 drives the concave straight plate 136 to rotate forward, the concave straight plate 136 drives the support rod 141 to rotate forward, the support rod 141 drives the vertical plate 142 to rotate forward, and the support rod 141 drives the three-ring frame 143 to rotate forward, so that the support rod 141 remains stable during the rotation process, and the vertical plate 142 drives the vertical three-plate 144 to rotate forward. During the rotation of the vertical three-plate 144, the vertical three-plate 144 shovels off the chemical solution attached to the wall surface of the bottom shell 3, preventing a large amount of chemical solution from being attached to the wall surface of the bottom shell 3 when the equipment is in use, thereby avoiding the problem of a large amount of chemical solution attached to the wall surface of the bottom shell 3 during the purification process of the fine production equipment, causing the bottom shell 3 to be easily aged and damaged.

[0058] While the vertical plate 142 drives the vertical three plates 144 to rotate forward, the vertical three plates 144 drives the oblique rod 145 to rotate forward, the oblique rod 145 drives the bottom rod 146 to rotate forward, and the bottom rod 146 drives the curved plate 147 to rotate forward. During the rotation of the curved plate 147, the curved plate 147 sweeps the chemical solution at the bottom of the bottom shell 3 into the liquid outlet, allowing the bottom shell 3 to quickly discharge the purified chemical solution, thereby preventing the purified chemical solution from being discharged slowly in the equipment when the equipment is in use, thereby avoiding the problem of poor equipment discharge effect caused by the purified chemical solution being discharged slowly in the equipment during the purification process of the fine production device.

[0059] The above description is only a preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical scheme and inventive concept of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A chemical raw material fine production device, comprising an I-shaped shell (1), a top shell (2) being fixedly mounted on the top surface of the I-shaped shell (1), characterized in that: A leak-proof ring is provided at the bottom of the inner wall of the top shell (2); a bottom shell (3) is fixedly mounted on the bottom surface of the I-shaped shell (1); a hole plate (4) is fixedly mounted on the top and bottom of the inner wall of the I-shaped shell (1); a plurality of circular holes are opened on the top surfaces of the two hole plates (4); a plurality of heat pipes (5) are respectively fixedly mounted on the inner walls of the circular holes of the two hole plates (4); a heat dissipation shell (6) is fixedly mounted on the bottom surface of the bottom shell (3); a servo motor (7) is fixedly mounted on the bottom end of the heat dissipation shell (6); a round rod (8) is rotatably mounted through the middle of the bottom surface of the heat dissipation shell (6); the bottom surface of the round rod (8) is rotatably connected to the rotating shaft of the servo motor (7). The top surface of the shaft is fixedly connected, the round rod (8) passes through and is rotatably installed in the middle of the bottom surface of the hole plate (4) below, the top of the round rod (8) is rotatably connected to the bottom surface of the hole plate (4) above, two ring blocks (9) are fixed to the outer wall of the round rod (8), and three strip plates (10) are respectively embedded in the outer walls of the two ring blocks (9), and the three strip plates (10) are located in the middle of a plurality of heat pipes (5), a concave tube (11) is fixed to the bottom surface of the hole plate (4) below, and a T-shaped tube (12) is fixed to the bottom of the outer wall of the round rod (8), and the outer wall of the T-shaped tube (12) is rotatably connected to the inner bottom end of the concave tube (11); The outer wall of the T-shaped tube (12) is provided with a liquid sweeping device (13), the liquid sweeping device (13) is used to scrape off the chemical solution on the perforated plate (4), and the bottom surface of the liquid sweeping device (13) is provided with an anti-adhesion device (14), the anti-adhesion device (14) is used to scrape off the chemical solution on the wall surface of the bottom shell (3); A ring block (131) is fixed to the outer wall of the T-shaped tube (12), two L-shaped rods (132) are fixed to the outer wall of the ring block (131), the outer walls of the two L-shaped rods (132) are respectively provided with circular openings, two triangular bars (133) are respectively embedded at the ends away from each other of the two L-shaped rods (132), two inclined plates (134) are respectively embedded on the top surfaces of the two triangular bars (133), the outer walls of the two inclined plates (134) are in sliding contact with the bottom surface of the hole plate (4) below, the bottom surfaces of the two triangular bars (133) are respectively fixed with two short columns (135), and the outer walls of the two short columns (135) are fixedly connected to the inner walls of the circular openings of the two L-shaped rods (132); Two concave straight plates (136) are fixed to the bottom surfaces of the two short columns (135), two connecting rings (137) are fixed to the top surfaces of the two concave straight plates (136), the inner walls of the two connecting rings (137) are fixedly connected to the outer walls of the two L-shaped rods (132), two shaft plates (138) are rotatably mounted on the inner walls of the two concave straight plates (136), an inner convex ring (139) is fixed to the top of the inner wall of the bottom shell (3), a plurality of protrusions are provided on the inner wall of the inner convex ring (139), two arc-shaped spring sheets (1310) are fixed to the outer walls of the two shaft plates (138), one end of the two arc-shaped spring sheets (1310) away from the two shaft plates (138) is fixedly connected to the inner walls of the two concave straight plates (136), and the outer walls of the plurality of protrusions of the inner convex ring (139) are located on the movement trajectory of the outer walls of the two shaft plates (138).

2. The chemical raw material fine production device according to claim 1, characterized in that: Two double hole rings (15) are fixed to the outer wall of the I-shaped shell (1), two U-shaped rods (16) are fixed to the inner walls of the two double hole rings (15), an H-shaped frame (17) is fixed to the back of the two U-shaped rods (16), and a plurality of bolt holes are opened on the front of the H-shaped frame (17).

3. A chemical raw material fine production device according to claim 2, characterized in that: The top left side of the I-shaped shell (1) is provided with a heat inlet, the bottom right side of the I-shaped shell (1) is provided with a heat outlet, the middle of the top surface of the top shell (2) is provided with an air outlet, the left side of the top surface of the top shell (2) is provided with a liquid inlet, and the bottom left side of the bottom shell (3) is provided with a liquid outlet.

4. The chemical raw material fine production device according to claim 3, characterized in that: Two support rods (141) are respectively embedded in the bottom surfaces of the two concave straight plates (136); two vertical plates (142) are respectively fixed to one end of the two support rods (141) away from the two concave straight plates (136); a three-ring frame (143) is fixed to the top of the outer wall of the two support rods (141); the three-ring frame (143) is sleeved on the bottom of the outer wall of the round rod (8); two vertical three-plates (144) are respectively fixed to one side of the two vertical plates (142) away from each other; and the outer walls of the two vertical three-plates (144) are in sliding contact with the inner wall of the bottom shell (3).

5. The chemical raw material fine production device according to claim 4, characterized in that: Two oblique bars (145) are fixed to the bottom of the two vertical three plates (144) on the side close to each other, two bottom bars (146) are fixed to the bottom surfaces of the two oblique bars (145), two bent plates (147) are embedded in the middle of the bottom surfaces of the two bottom bars (146), and the outer walls of the two bent plates (147) are in sliding contact with the inner bottom end of the bottom shell (3).

6. A method for using a chemical raw material fine production device, using the chemical raw material fine production device according to claim 5, characterized in that: The following steps are involved: S1. Install an H-shaped frame (17) in a factory building, wherein the H-shaped frame (17) supports a U-shaped rod (16), the U-shaped rod (16) supports a double-hole ring (15), and the double-hole ring (15) supports the I-shaped shell (1); S2, the operator introduces hot air at the heat inlet of the I-shaped shell (1), the hot air enters the I-shaped shell (1), the hot air heats the heat pipe (5), and the heated hot air is discharged from the air outlet of the I-shaped shell (1); S3, transporting the chemical solution into the I-shaped shell (1) through the liquid inlet of the top shell (2), and the chemical solution enters the heat pipe (5) of the perforated plate (4); S4, during the rotation of the strip plate (10), the strip plate (10) fans the hot air, so that the hot air flows evenly in the heat pipe (5); S5. During the rotation of the inclined plate (134), the inclined plate (134) scrapes the purified chemical solution below the perforated plate (4); S6, when the inclined plate (134) scrapes off the dripping liquid on the perforated plate (4), the inclined plate (134) transmits vibration to the heat pipe (5), causing the chemical solution on the wall of the heat pipe (5) to drip downward; S7, during the rotation of the three vertical plates (144), the three vertical plates (144) scrape off the chemical solution attached to the wall surface of the bottom shell (3); S8, the bent plate (147) sweeps the chemical solution at the bottom of the bottom shell (3) into the liquid outlet, allowing the bottom shell (3) to quickly discharge the purified chemical solution.

Citation Information

Patent Citations

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