High-temperature lubricating device thickened soap powder production line and production process thereof
By using a piston-type suction assembly and a cleaning brush head design, the problems of soap residue and cleaning are solved, achieving efficient cleaning, extending equipment life, and reducing power consumption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- TIANJIN JINHAILI GREASE CO LTD
- Filing Date
- 2023-04-21
- Publication Date
- 2026-05-01
AI Technical Summary
In the existing soap powder production process, soap residue easily solidifies inside the pump body and pipelines, making it difficult to clean, and the equipment is not thoroughly disassembled and cleaned.
It adopts a piston-type suction assembly and cleaning brush head design, combined with wear-resistant lining and spiral airflow, to achieve uninterrupted and uniform suction and dual cleaning, reducing wear and improving cleaning efficiency.
It effectively solves the problems of soap residue and cleaning, extends equipment life, reduces power consumption, and ensures thorough cleaning of the inner wall of the pipe.
Smart Images

Figure CN116196845B_ABST
Abstract
Description
A high-temperature lubrication device thickened soap powder production line and its production process Technical Field
[0001] This invention relates to the field of soap powder production technology, specifically to a high-temperature lubrication device thickening soap powder production line and its production process. Background Technology
[0002] In the production process of existing soap powder, the soap liquid is usually drawn by a pump and discharged into a spray drying tower for drying into powder. However, soap liquid can easily remain in the pump and pipes, which will solidify when the equipment is not in use. Even if it is used again, it is difficult to wash off, and it is difficult to disassemble and clean. Simple rinsing is not enough to clean it thoroughly. Summary of the Invention
[0003] To address the shortcomings of existing technologies, this invention provides a high-temperature lubrication device thickened soap powder production line and its production process, which solves the problem that when using a pump to pump out soap liquid, soap liquid easily remains attached to the pump body and pipes, solidifies when the device is not in use, and is difficult to wash off even when used again. Furthermore, it is difficult to disassemble and clean, and simple rinsing is not enough to thoroughly clean it.
[0004] To achieve the above objectives, the present invention is implemented through the following technical solution: a high-temperature lubrication device thickened soap powder production line, including a reaction vessel and a spray drying tower. The reaction vessel and the spray drying tower are fixed to the ground by a base. A pumping component is provided on the top of the base. The pumping component pumps the thickened soap powder solution from the reaction vessel and discharges it to the spray drying tower. A pressurized exhaust pipe equipped with a solenoid valve is connected between the top of the spray drying tower and the top of the reaction vessel.
[0005] The extraction assembly includes a piston chamber and a drive motor installed on one side. One-way feeding check valves are installed on the upper layers at both ends of the piston chamber, and one-way feeding discharge check valves are installed on the lower layers at both ends of the piston chamber. A hollow piston is slidably connected inside the piston chamber, and an eccentric wheel is rotatably installed inside the hollow piston. The output shaft of the drive motor is eccentrically fixedly connected to the eccentric wheel.
[0006] One end of each of the two feed check valves is connected to the discharge valve at the bottom of the reactor through a feed diversion pipe, and one end of each of the two discharge check valves is connected to an insulated conveying pipe through a discharge diversion pipe, with one end of the insulated conveying pipe connected to the top of the spray drying tower.
[0007] Preferably, the feed check valve and the discharge check valve have the same structure but are installed in opposite directions. Both the feed check valve and the discharge check valve include valve tubes with internal threads at both ends. An inwardly narrowed section is provided in the middle of the valve tube, and a float ball with a diameter larger than the minimum inner diameter of the inwardly narrowed section is provided on one side inside the valve tube. A baffle that restricts the float ball from sliding out is fixedly connected to one end of the valve tube on the side of the float ball away from the inwardly narrowed section.
[0008] Preferably, the hollow piston includes a wear-resistant inner liner and an outer rubber sleeve, and the outer surface of the eccentric wheel is fitted with a wear-resistant sleeve.
[0009] Preferably, both ends of the insulated conveying pipe are threaded with end caps, and a flushing connector is provided on the end cap near the discharge diversion pipe. Inlet and outlet pipes are provided on the sides of both ends of the insulated conveying pipe, and a cleaning brush head is provided inside the end of the insulated conveying pipe near the flushing connector.
[0010] Preferably, the cleaning brush head includes a cylindrical body with one open end, the open end of the cylindrical body extending outward, and the other end of the cylindrical body being configured as a frustum. Several water outlets are circumferentially inclined on the side of the frustum of the cylindrical body, and a turbine is fixedly connected to the inner side of the frustum of the cylindrical body. The direction of rotation of the turbine caused by the water flow impacting it is consistent with the direction of the reaction force of the water flow spraying from the water outlet.
[0011] Preferably, an elastic sleeve is provided on the outer side of the middle section of the cylinder through an annular groove, and the two ends of the elastic sleeve are pressed into the annular groove by a clamping ring. A brush strip is provided circumferentially on the outer side of the middle part of the elastic sleeve.
[0012] The clamping ring is broken on one side, and both ends of the broken part are provided with protrusions. The ring groove is provided with slots corresponding to the protrusions on both sides. The inner side of the clamping ring is provided with positioning protrusions, and the surface of the ring groove is provided with grooves corresponding to the positioning protrusions.
[0013] Preferably, the spray drying tower includes a tower body and a top cover fixedly connected to its top by bolts. An atomizer connected to an insulated conveying pipe is provided at the center of the top cover. A gas collection hood connected to a pressurized exhaust pipe is provided on one side of the top of the top cover. The bottom of the tower body is cone-shaped and has a discharge pipe connected to its center.
[0014] Preferably, the interior of the tower body is connected to a liner by several evenly distributed support columns. The inner part of the liner has several jet holes that spray air obliquely upwards. The side of the liner has several through slots, and the inner side of the through slots is rotatably connected to a wind baffle. The side of the wind baffle away from the rotating end is fixedly connected to a magnetic strip that adsorbs the liner. The bottom of the outer side of the tower body is fixedly fitted with a diversion sleeve, and the side of the tower body and inside the diversion sleeve have several diversion holes.
[0015] Preferably, the top of the base is also provided with an inflation component, which includes a fan and a heater, and the air inlet and outlet of the heater are connected to the fan and the distribution sleeve through air ducts, respectively.
[0016] This invention also discloses a production process for a soap powder thickening production line based on a high-temperature lubrication device, specifically including the following steps:
[0017] Step 1: Add the thickened soap powder raw material from the high-temperature lubrication device into the reaction vessel for heating and stirring reaction;
[0018] Step 2: After the reaction is complete, start the pumping unit to pump the solution into the spray drying tower;
[0019] Step 3: After the solution enters the spray drying tower, it is pressurized and atomized and sprayed out. Spiral drying hot air is sprayed into the spray drying tower using the air-inflating component to dry the droplets. After drying, the soap powder is discharged from the bottom.
[0020] Step 4: The dried, hot, humid air is vented into the reactor to pressurize the solution inside and promote discharge.
[0021] Beneficial effects
[0022] This invention provides a high-temperature lubrication device thickened soap powder production line and its production process. Compared with the prior art, it has the following advantages:
[0023] (1) The high-temperature lubrication device thickened soap powder production line and its production process convey soap liquid by setting up a pumping component. The internal bidirectional piston mechanism allows the drive motor to drive the hollow piston to move in both directions for pumping and pumping, thereby achieving the effect of continuous and uniform pumping and spraying. At the same time, the piston-type pumping structure and the simple tubular one-way valve are easier to clean than high-pressure pumps. Wear-resistant lining is set inside the hollow piston, and wear-resistant sleeve is rotated outside the eccentric wheel. This minimizes wear when the eccentric wheel rotates to drive the hollow piston to move, resulting in a long service life. The hot gas discharged from the spray drying tower is discharged into the reaction vessel, which can achieve a pressurization effect to promote liquid discharge, thereby helping the drive motor to reduce its power consumption.
[0024] (2) The high-temperature lubrication device thickened soap powder production line and its production process, by setting a cleaning brush head in the heat-insulated conveying pipe, can push the cleaning brush head along the pipe by injecting water into the heat-insulated conveying pipe after processing. During the movement, the water sprayed from the outlet can be used to rinse the inner wall of the pipe, and the brush strip can be used to scrub. The dual cleaning method effectively ensures the cleaning effect. At the same time, the impact force of the water flow, combined with the outlet and turbine, can also make the cleaning brush head rotate during the movement. The water pressure can make the elastic sleeve expand outward, and the brush strip can be made to fit tightly against the inner wall of the pipe, making the brush strip scrub more thoroughly and cleanly. The cleaning brush head itself is also easy to remove and clean.
[0025] (3) The high-temperature lubrication device thickened soap powder production line and its production process, by setting a clamping ring to install the elastic sleeve, can easily and quickly install and remove the elastic sleeve, making it convenient to replace the elastic sleeve regularly. Simply close the clamping ring and slide it so that the protrusion can be inserted into the slot. The operation is simple and convenient.
[0026] (4) The high-temperature lubrication device thickened soap powder production line and its production process, by setting an inner lining in the tower body, when dry hot air is filled into the tower body, some hot air can be blown from the bottom to the top, which slows down the speed of the droplets falling, so that they have enough time to dry. At the same time, some hot air blows open the wind deflector and blows from the side, which can form a spiral airflow in the tower body, thereby preventing the droplets from being directly dispersed and sprayed out and adhering to the inner wall of the tower body. Attached Figure Description
[0027] Figure 1 is a front view of the overall structure of the present invention;
[0028] Figure 2 is a cross-sectional view of the piston cavity of the present invention;
[0029] Figure 3 is a cross-sectional view of the one-way valve of the present invention;
[0030] Figure 4 is a cross-sectional view of a partial structure of the heat-insulated conveying pipe of the present invention;
[0031] Figure 5 is a cross-sectional view of the cleaning brush head of the present invention;
[0032] Figure 6 is a partial enlarged view of point A in Figure 4 of this invention;
[0033] Figure 7 is a perspective view of the clamping ring of the present invention;
[0034] Figure 8 is a cross-sectional view of the spray drying tower of the present invention;
[0035] Figure 9 is a top sectional view of the spray drying tower of the present invention;
[0036] Figure 10 is a partial enlarged view of point B in Figure 8 of the present invention;
[0037] Figure 11 is a partial enlarged view of point C in Figure 9 of this invention.
[0038] In the diagram: 1-Reaction vessel, 2-Spray drying tower, 21-Tower body, 22-Top cover, 23-Atomizer, 24-Gas collection hood, 25-Inner lining, 26-Gun nozzle, 27-Passage channel, 28-Wind baffle, 29-Diverter sleeve, 3-Base, 4-Extraction assembly, 41-Piston chamber, 42-Drive motor, 43-Infeed check valve, 44-Outfeed check valve, 45-Hollow piston, 45-Hollow piston, 451-Wear-resistant lining, 452-Rubber sleeve, 46-Eccentric wheel, 47-Infeed diverter pipe 48-Discharge diversion pipe, 49-Wear-resistant sleeve, 401-Valve pipe, 402-Inner retraction section, 403-Float ball, 404-Baffle, 5-Pressurized exhaust pipe, 6-Insulated conveying pipe, 61-End cap, 62-Cleaning brush head, 621-Cylinder body, 622-Water outlet, 623-Turbine, 624-Through hole, 625-Elastic sleeve, 626-Pressure ring, 627-Brush strip, 628-Protrusion, 629-Slot, 7-Inflation assembly, 71-Fan, 72-Heater, 73-Air duct. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] This invention provides four technical solutions:
[0041] Figure 1-3 shows the first embodiment: a high-temperature lubrication device thickened soap powder production line, including a reaction vessel 1 and a spray drying tower 2. The reaction vessel 1 and the spray drying tower 2 are fixed to the ground by a base 3. A suction and discharge assembly 4 is provided on the top of the base 3. The suction and discharge assembly 4 draws thickened soap powder solution from the reaction vessel 1 and discharges it to the spray drying tower 2. A pressurized exhaust pipe 5 equipped with a solenoid valve is connected between the top of the spray drying tower 2 and the top of the reaction vessel 1.
[0042] The extraction assembly 4 includes a piston chamber 41 and a drive motor 42 installed on one side. One-way feeding check valves 43 are installed on the upper layers of both ends of the piston chamber 41, and one-way feeding discharge check valves 44 are installed on the lower layers of both ends of the piston chamber 41. A hollow piston 45 is slidably connected inside the piston chamber 41, and an eccentric wheel 46 is rotatably arranged inside the hollow piston 45. The output shaft of the drive motor 42 is eccentrically fixedly connected to the eccentric wheel 46.
[0043] Two feed check valves 43 are connected at one end to the discharge valve at the bottom of the reactor 1 through feed diversion pipe 47, and two discharge check valves 44 are connected at one end to the heat-insulating conveying pipe 6 through discharge diversion pipe 48, and one end of the heat-insulating conveying pipe 6 is connected to the top of the spray drying tower 2.
[0044] The feed check valve 43 and the discharge check valve 44 have the same structure but are installed in opposite directions. Both the feed check valve 43 and the discharge check valve 44 include a valve tube 401 with internal threads at both ends. The valve tube 401 has an inwardly narrowed section 402 in the middle, and a float 403 with a diameter larger than the minimum inner diameter of the inwardly narrowed section 402 is provided on one side inside the valve tube 401. A baffle 404 that restricts the float 403 from sliding out is fixedly connected to one end inside the valve tube 401 on the side of the float 403 away from the inwardly narrowed section 402.
[0045] The hollow piston 45 includes a wear-resistant inner liner 451 and an outer rubber sleeve 452, and the outer surface of the eccentric wheel 46 is rotatably fitted with a wear-resistant sleeve 49.
[0046] The soap solution is conveyed by the extraction assembly 4, which utilizes a bidirectional piston mechanism to allow extraction when the drive motor 42 drives the hollow piston 45 to move in both directions. This achieves a continuous and uniform extraction spray effect. At the same time, the piston extraction structure and the simple tubular one-way valve make it easier to clean internally compared to high-pressure pump extraction. The hollow piston 45 is equipped with a wear-resistant liner 451, and a wear-resistant sleeve 49 is rotated around the eccentric wheel 46. This minimizes wear when the eccentric wheel 46 drives the hollow piston 45 to move, resulting in a longer service life. Furthermore, the hot gas discharged from the spray drying tower 2 is discharged into the reaction vessel 1, which can achieve a pressurization effect to promote liquid discharge, thereby helping the drive motor 42 reduce its power consumption.
[0047] Figures 1 and 4-5 show the second embodiment, the main difference from the first embodiment is that: both ends of the heat-insulating conveying pipe 6 are threaded with end caps 61, and a flushing joint is provided on the end cap 61 near the discharge diversion pipe 48; inlet and outlet pipes are provided on the sides of both ends of the heat-insulating conveying pipe 6; and a cleaning brush head 62 is provided inside the heat-insulating conveying pipe 6 near the flushing joint.
[0048] The cleaning brush head 62 includes a cylindrical body 621 with one open end, and the open end of the cylindrical body 621 extends outward. The other end of the cylindrical body 621 is set as a frustum. Several water outlets 622 are opened circumferentially on the side of the frustum of the cylindrical body 621. A turbine 623 is fixedly connected to the inner side of the frustum of the cylindrical body 621. The direction of rotation of the turbine 623 caused by the water flow impacting it is consistent with the direction of the reaction force of the water flow spraying out from the water outlets 622.
[0049] An elastic sleeve 625 is fitted on the outer side of the middle section of the cylinder 621 through an annular groove, and the two ends of the elastic sleeve 625 are pressed into the annular groove by a clamping ring 626. Several through holes 624 communicating with the inner cavity of the cylinder 621 are opened in the middle of the annular groove, and a brush strip 627 is arranged circumferentially on the outer side of the middle part of the elastic sleeve 625.
[0050] By installing a cleaning brush head 62 inside the insulated conveying pipe 6, water can be injected into the insulated conveying pipe 6 after processing to push the cleaning brush head 62 along the pipe. During the movement, water sprayed from the outlet 622 can be used to rinse the inner wall of the pipe, and the brush strip 627 can be used for brushing. The dual cleaning method effectively ensures the cleaning effect. At the same time, the impact force of the water flow, in conjunction with the outlet 622 and the turbine 623, can also make the cleaning brush head 62 rotate during the movement. The water pressure causes the elastic sleeve 625 to expand outward, which can make the brush strip 627 fit tightly against the inner wall of the pipe, so that the brush strip 627 can brush more thoroughly and cleanly. The cleaning brush head 62 itself is also easy to remove and clean.
[0051] Figure 6-7 shows the third embodiment, which differs from the second embodiment in that: the clamping ring 626 is broken on one side, and both ends of the broken part are provided with protrusions 628. The two sides of the ring groove are provided with slots 629 corresponding to the protrusions 628. The inner side of the clamping ring 626 is provided with positioning protrusions, and the surface of the ring groove is provided with grooves corresponding to the positioning protrusions.
[0052] The elastic sleeve 625 can be installed and removed quickly and easily by setting the clamping ring 626, making it convenient to replace the elastic sleeve 625 regularly. Simply close the clamping ring 626 and slide it to insert the protrusion 628 into the slot 629. The operation is simple and convenient.
[0053] Figures 1 and 8-11 show the fourth embodiment, which differs from the third embodiment in that: the spray drying tower 2 includes a tower body 21 and a top cover 22 fixedly connected to its top by bolts. An atomizer 23 connected to the heat-insulating conveying pipe 6 is provided at the center of the top cover 22. A gas collecting hood 24 connected to the pressurized exhaust pipe 5 is provided on one side of the top of the top cover 22. The bottom of the tower body 21 is set as a cone and the center is connected to the discharge pipe.
[0054] The tower body 21 is connected to a liner 25 by several evenly distributed support columns. The bottom of the liner 25 has several jet holes 26 that spray air obliquely upwards. The sides of the liner 25 have several through slots 27, and the inner side of the through slots 27 is rotatably connected to a wind baffle 28. The side of the wind baffle 28 away from the rotating end is fixedly connected to a magnetic strip that attracts the liner 25. The bottom of the outer side of the tower body 21 is fixedly fitted with a diversion sleeve 29, and the sides of the tower body 21 and inside the diversion sleeve 29 have several diversion holes.
[0055] The top of the base 3 is also provided with an inflation component 7, which includes a fan 71 and a heater 72. The air inlet and outlet of the heater 72 are connected to the fan 71 and the diverter sleeve 29 through the air pipe 73, respectively.
[0056] By installing an inner lining 25 inside the tower body 21, when dry hot air is introduced into the tower body 21, some of the hot air can be blown upwards from the bottom, slowing down the speed of the droplets falling and allowing them sufficient time to dry. At the same time, some of the hot air blows open the wind deflector 28 and blows air from the side, which can form a spiral airflow inside the tower body 21, thereby preventing the droplets from being directly dispersed and sprayed out and adhering to the inner wall of the tower body 21.
[0057] This invention also discloses a production process for a soap powder thickening production line based on a high-temperature lubrication device, specifically including the following steps:
[0058] Step 1: Add the thickened soap powder raw material from the high-temperature lubrication device into reactor 1 for heating and stirring reaction;
[0059] Step 2: After the reaction is complete, open the bottom discharge valve, then start the drive motor 42 to drive the eccentric wheel 46 to rotate, and use the wear-resistant sleeve 49 to indirectly push the hollow piston 45 to move back and forth. Then, use the feed diversion pipe 47 and the feed one-way valve 43 to draw out the soap solution, and use the discharge one-way valve 44 and the discharge diversion pipe 48 to discharge the solution into the heat-insulated conveying pipe 6.
[0060] Step 3: The solution enters the atomizer 23 of the spray drying tower 2 through the insulated conveying pipe 6 and is atomized and sprayed out. Then, the fan 71 and heater 72 are started to draw out and heat the air. The hot air is exhausted into the spray drying tower 2 through the air duct 73. Some of the hot air is blown from the bottom to the top, and some blows out from the side by opening the wind deflector 28, so that a spiral airflow is formed in the tower body 21 to dry the droplets. After drying, the soap powder is discharged from the bottom.
[0061] Step 4: The dried, hot and humid air is discharged into the reaction vessel 1 through the pressurized exhaust pipe 5 to pressurize the solution inside and promote discharge.
[0062] Furthermore, all content not described in detail in this specification is existing technology known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited; conventional equipment can be used.
[0063] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0064] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-temperature lubrication device thickened soap powder production line, comprising a reaction vessel and a spray drying tower, wherein the reaction vessel and the spray drying tower are fixed to the ground by a base, characterized in that: The top of the base is equipped with a suction assembly, which draws the thickened soap powder solution from the reactor and discharges it to the spray drying tower. A pressurized exhaust pipe equipped with a solenoid valve connects the top of the spray drying tower and the reactor. The suction assembly includes a piston chamber and a drive motor mounted on one side. One-way feed check valves are installed on the upper layers of both ends of the piston chamber, and one-way discharge check valves are installed on the lower layers of both ends. A hollow piston is slidably connected inside the piston chamber, and an eccentric wheel is rotatably mounted inside the hollow piston. The output shaft of the drive motor is eccentrically fixedly connected to the eccentric wheel. One end of each of the two feed check valves is connected to the bottom of the reactor via a feed diversion pipe. The material valves are connected, and one end of each of the two discharge check valves is connected to the insulated conveying pipe through the discharge diversion pipe. One end of the insulated conveying pipe is connected to the top of the spray drying tower. The inlet check valve and the outlet check valve have the same structure but are installed in opposite directions. Both the inlet check valve and the outlet check valve include valve tubes with internal threads at both ends. An inward section is provided in the middle of the valve tube, biased to one side. A float ball with a diameter larger than the minimum inner diameter of the inward section is provided on one side inside the valve tube. A baffle that restricts the float ball from sliding out is fixedly connected to one end of the valve tube on the side of the float ball away from the inward section. The hollow piston includes a wear-resistant inner liner and an outer rubber sleeve. A wear-resistant sleeve is rotated on the outer surface of the eccentric wheel.
2. A high-temperature lubrication device for thickening soap powder production line according to claim 1, characterized in that: Both ends of the insulated conveying pipe are threaded with end caps, and a flushing connector is provided on the end cap near the discharge diversion pipe. Inlet and outlet pipes are provided on the sides of both ends of the insulated conveying pipe, and a cleaning brush head is provided inside the end of the insulated conveying pipe near the flushing connector.
3. A high-temperature lubrication device for thickening soap powder production line according to claim 2, characterized in that: The cleaning brush head includes a cylindrical body with one open end that extends outwards. The other end of the cylindrical body is a frustum. Several water outlets are circumferentially inclined on the side of the frustum. A turbine is fixedly connected to the inner side of the frustum. The water flow impacts the turbine, causing it to rotate in the same direction as the reaction force of the water flow spraying from the outlet.
4. A high-temperature lubrication device for thickening soap powder production line according to claim 1, characterized in that: An elastic sleeve is fitted on the outer side of the middle section of the cylinder through an annular groove, and the two ends of the elastic sleeve are pressed into the annular groove by a clamping ring. A brush strip is arranged circumferentially on the outer side of the middle part of the elastic sleeve. One side of the clamping ring is broken, and both ends of the broken part are provided with protrusions. Slots corresponding to the protrusions are opened on both sides of the annular groove. A positioning protrusion is provided on the inner side of the clamping ring, and a groove corresponding to the positioning protrusion is provided on the surface of the annular groove.
5. A high-temperature lubrication device for thickening soap powder production line according to claim 1, characterized in that: The spray drying tower includes a tower body and a top cover that is fixed to the top by bolts. An atomizer connected to an insulated conveying pipe is set in the center of the top cover. A gas collection hood connected to a pressurized exhaust pipe is set on one side of the top of the top cover. The bottom of the tower body is set as a cone and the center is connected to a discharge pipe.
6. A high-temperature lubrication device for thickening soap powder production line according to claim 5, characterized in that: The tower body is connected to an inner lining by several evenly distributed support columns. The inner lining has several jet holes that spray air obliquely upwards at the bottom. The inner lining has several through slots on its side, and wind baffles are rotatably connected to the inner side of the through slots. A magnetic strip that adsorbs the inner lining is fixedly connected to the side of the wind baffle away from the rotating end. A diversion sleeve is fixedly fitted on the bottom of the outer side of the tower body, and several diversion holes are opened on the side of the tower body inside the diversion sleeve.
7. A high-temperature lubrication device for thickening soap powder production line according to claim 6, characterized in that: The top of the base is also equipped with an inflation assembly, which includes a fan and a heater. The inlet and outlet of the heater are connected to the fan and the distribution sleeve through air ducts, respectively.
8. A production process for a high-temperature lubrication device thickened soap powder production line according to any one of claims 1-7, characterized in that: Specifically, the following steps are included: Step 1: Add the thickened soap powder raw material from the high-temperature lubrication device into the reactor for heating and stirring reaction; Step 2: After the reaction is completed, start the pumping component to pump the solution into the spray drying tower; Step 3: After the solution enters the spray drying tower, it is pressurized and atomized, and the air-filling component sprays spiral drying hot air into the spray drying tower to dry the droplets. After drying, the soap powder is discharged from the bottom; Step 4: The dried hot and humid air is discharged into the reactor to pressurize the solution inside and promote discharge.
Citation Information
Patent Citations
Powder dye spray drying tower
CN211676345U