Production and processing device for high-temperature-resistant wax emulsion
By designing a high-temperature resistant wax emulsion production and processing device, including circulation pipeline components, slow cooling components and cooling speed adjustment components, the problem of temperature instability and difficulty in adjusting the cooling speed during the cooling process of traditional wax emulsion is solved, and the temperature stability and cooling speed flexibility of wax emulsion are achieved, ensuring product quality and production efficiency.
Patent Information
- Application Number
- CN202510254136.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-06-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The temperature of traditional wax emulsions is unstable during the cooling process, which may lead to the emulsion layering or precipitation, affecting product quality. At the same time, the cooling speed of wax emulsions of different specifications is different, and they need to be adjusted according to specific needs, but there is a lack of effective adjustment methods.
A high-temperature resistant wax emulsion production and processing device is designed, including a circulation pipe assembly, a slow cooling assembly and a cooling rate regulation assembly. The circulation pipeline assembly maintains the temperature stability during the emulsification process by circulating heating and cooling of thermal oil; the slow cooling component realizes slow cooling of the wax emulsion by cooling the cooling oil; the cooling rate regulation assembly adjusts the cooling rate by adjusting the discharge and suction volume of cold oil and hot oil.
The temperature stability of the wax emulsion during the cooling process is achieved, layering or precipitation is avoided, the uniformity and stability of the product are ensured, and the cooling speed is adjusted to adapt to the cooling needs of different specifications of wax emulsions, improving the flexibility of the device.
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Figure CN120094486A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of wax emulsion production, in particular to a production and processing device for high temperature resistant wax emulsion. Background Art
[0002] High temperature resistant wax emulsion is a special emulsion, usually composed of wax, emulsifier, water phase and other auxiliary materials, with high thermal stability and good emulsification performance. It is mainly used in coatings, plastics, electronics, papermaking and other industries. During the production process of high temperature resistant wax emulsion, the water phase and oil phase wax need to be mixed and homogenized by a high shear emulsifier to form a stable emulsion. During the emulsification process, a certain temperature needs to be maintained to ensure the stability of the emulsion. Traditional wax emulsions do not use cooling devices after emulsification, and the static cooling time is too long. The internal temperature of the emulsion is unstable during the cooling process. Due to the lack of controlled cooling methods, the emulsion may have different cooling speeds in different areas, resulting in high local temperatures and affecting the stability of the entire emulsion. If the external temperature is too low, rapid cooling may cause the emulsifier to fail, and the oil and water phases in the emulsion are separated, causing stratification or precipitation, affecting the quality of the wax emulsion product. Secondly, the cooling speed required during the cooling process of wax emulsions of different specifications is different, and it is necessary to make certain adjustments according to the specific cooling needs. In view of the above problems, the inventor proposes a production and processing device for high temperature resistant wax emulsion to solve the above problems. Summary of the invention
[0003] In order to solve the problem of uniformly cooling the wax emulsion after emulsification and adjusting the cooling speed, the purpose of the present invention is to provide a production and processing device for high temperature resistant wax emulsion.
[0004] In order to solve the above technical problems, the present invention adopts the following technical scheme: a production and processing device for a high-temperature resistant wax emulsion, comprising a base plate, a heating and stirring pool is provided on one side of the top of the base plate, a shell is provided on the other side of the top of the base plate, a workbench is provided in the middle of the top of the shell, a high-shear emulsification and stirring device used in conjunction with the heating and stirring pool is provided on the workbench, a circulation pipeline assembly is provided in the heating and stirring pool, a slow cooling assembly and a cooling assembly are respectively provided on the top of the base plate located on one side of the shell, a cooling speed adjustment assembly is provided on the slow cooling assembly, an inner wall of the shell close to the cooling assembly is fixedly provided with a built-in fixing frame, and a pipeline heater and a high-pressure water pump are respectively provided on the built-in fixing frame.
[0005] Preferably, the circulation pipeline assembly includes an annular heating pipe, which is fixedly installed in the heating and stirring tank, the top of the annular heating pipe is connected to an oil inlet pipe, and the other end of the oil inlet pipe is connected to the oil inlet end of the pipeline heater, the oil outlet end of the pipeline heater is connected to a connecting pipe, and the other end of the connecting pipe is connected to the oil inlet end of the high-pressure water pump, the oil outlet end of the high-pressure water pump is connected to an oil outlet pipe, and the oil outlet pipe is connected to the bottom end of the annular heating pipe, the oil inlet pipe is connected to a hot oil suction pipe, and the oil outlet pipe is connected to a cold oil discharge pipe.
[0006] Preferably, the slow cooling component includes a No. 1 fixed bracket, the No. 1 fixed bracket is fixedly installed on the top of the bottom plate, and a cold oil barrel and a hot oil barrel are respectively fixedly provided on the top of the No. 1 fixed bracket, and an oil outlet frame is fixedly provided on the end of the cold oil barrel and the hot oil barrel near the heating and stirring tank, and an oil inlet frame is fixedly provided on the top of the cold oil barrel and the hot oil barrel near the oil outlet frame. A No. 1 one-way baffle is rotatably provided on the oil outlet frame, and a No. 2 one-way baffle is rotatably provided on the oil inlet frame, and a piston is slidably provided on the inner wall of the cold oil barrel and the hot oil barrel, and two symmetrically distributed guide rails are fixedly provided on the top of the No. 1 fixed bracket away from the cold oil barrel and the hot oil barrel, and slides are slidably provided on the two guide rails, and the two piston ends are respectively fixedly connected to the corresponding slides, a fixed shaft is fixedly provided on the middle part of the top of the No. 1 fixed bracket, and a rotating rod used in conjunction with the slide is rotatably provided on the outer wall of the fixed shaft, and a No. 1 motor is fixedly provided on the inner side of the top frame, and the driving end of the No. 1 motor is transmission connected to the driving shaft through a pulley transmission group.
[0007] Preferably, the cooling component includes a No. 2 fixed bracket, which is fixedly installed on the top of the base plate close to the side of the built-in fixed bracket, a cooling fixed bracket is fixedly provided on the top of the No. 2 fixed bracket, a rotating shaft is rotatably provided on the side of the cooling fixed bracket close to the No. 1 fixed bracket, a fan blade is fixedly provided on the end of the rotating shaft, a No. 2 motor is fixedly provided on the No. 2 fixed bracket, and the driving end of the No. 2 motor is connected to the rotating shaft through a synchronous wheel transmission group, and a heat dissipation frame and an air inlet used in conjunction with the fan blades are provided on the outer wall of the outer shell.
[0008] The top end of the driving mechanism is fixedly provided with a toothed wheel, and the toothed wheel is meshed with toothed wheels.
[0009] Preferably, a cold oil tank is fixedly provided on the top of the top frame, the cold oil discharge pipe is connected to the oil outlet frame located on one side of the cold oil barrel, the oil inlet frame located on one side of the cold oil barrel is connected with a cold oil suction pipe, and the other end of the cold oil suction pipe is connected to the bottom end of the cold oil tank, the hot oil suction pipe is connected to the oil inlet frame located on one side of the hot oil barrel, the oil outlet frame located on one side of the hot oil barrel is connected with a hot oil discharge pipe, the other end of the hot oil discharge pipe is connected to a surrounding cooling pipe, and the surrounding cooling pipe is fixedly installed on the cooling fixing frame, and the top end of the surrounding cooling pipe is connected to the top end of the cold oil tank.
[0010] Compared with the prior art, the present invention has the following beneficial effects:
[0011] 1. The present invention provides a circulation pipeline component and a slow cooling component, and the heat transfer oil in the circulation pipeline component is heated and circulated to maintain the temperature stability during the emulsification process after the wax and the water phase are mixed. During the cooling process of the emulsified wax, a certain amount of cold oil is discharged into the circulation pipeline component through the slow cooling component to mix with the circulating hot oil, and the same volume of hot oil is discharged from the circulating hot oil, thereby achieving the effect of stable cooling of the hot oil in the circulation pipeline component, avoiding separation or crystallization caused by rapid cooling, and ensuring the uniformity and stability of the wax emulsion product;
[0012] 2. The present invention sets a cooling speed adjustment component, and adjusts the position of the eccentric shaft through the cooling speed adjustment component. By changing the position of the eccentric shaft, the swing amplitude of the swing rod is adjusted. The swing amplitude adjustment of the swing rod drives the movement distance of the two slides and the piston to change, thereby adjusting the cold oil and hot oil discharge and suction volumes in the cold oil barrel and the hot oil barrel. The cooling speed is adjusted according to the needs of different wax emulsions, thereby improving the flexibility of the device.
[0013] 3. The present invention sets a slow cooling component and a cooling component, so that the slow cooling component can transport the sucked hot oil to the surrounding cooling pipe, and the cooling component generates wind to bring out the heat of the hot oil in the surrounding cooling pipe to cool the hot oil in the surrounding cooling pipe. The cooled hot oil is returned to the cold oil tank in turn under the action of the slow cooling component to realize the cooling cycle. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0015] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0016] Figure 2 It is a schematic diagram of the overall dissected structure of the present invention;
[0017] Figure 3 It is a schematic diagram of the overall side section structure of the present invention;
[0018] Figure 4 This is a schematic diagram of the internal overall circulation structure of the present invention;
[0019] Figure 5 This is a schematic diagram of the exploded structure of the pipeline circulation component in the present invention;
[0020] Figure 6 It is a structural schematic diagram of the slow cooling component in the present invention;
[0021] Figure 7 It is a structural schematic diagram of the cooling speed regulating component in the present invention;
[0022] Figure 8 It is a schematic diagram of the structure of the cooling assembly in the present invention;
[0023] Fig. 9 for Figure 1 A schematic diagram of the structure enlargement at the center A;
[0024] Fig.10 for Figure 4 A schematic diagram of the structure enlarged at B in the middle;
[0025] Fig.11 for Figure 5 A schematic diagram of the structure enlarged at C in the middle;
[0026] Fig.12 for Figure 6 Enlarged schematic diagram of the structure at D in the middle.
[0027] In the figure: 1, bottom plate; 2, heating and stirring tank; 3, shell; 4, workbench; 5, high shear emulsification stirring device; 6, circulation pipeline assembly; 601, annular heating pipe; 602, oil inlet pipe; 603, connecting pipe; 604, oil outlet pipe; 605, cold oil discharge pipe; 606, cold oil suction pipe; 607, hot oil discharge pipe; 608, hot oil suction pipe; 609, surrounding cooling pipe; 7, slow cooling assembly; 701, No. 1 fixed bracket; 702, cold oil drum; 703, hot oil drum; 704, oil outlet frame; 705, oil inlet frame; 706, No. 1 one-way baffle; 707, No. 2 one-way baffle; 708, piston; 709, guide rail; 710, slide plate; 711, fixed shaft; 712, cold oil drum; 713, hot oil drum; 714, oil outlet frame; 715, oil inlet frame; 716, No. 1 one-way baffle; 717, No. 2 one-way baffle; 718, piston; 719, guide rail; 720, slide plate; 721, fixed shaft; 722, cold oil drum; 723, hot oil drum; 724, oil outlet frame; 725, oil inlet frame; 726, No. 1 one-way baffle; 727, No. 2 one-way baffle; 728, piston; 729, guide rail; 730, slide plate; 731, fixed shaft; 732, cold oil drum; 733, hot oil drum; 734, oil outlet frame; 735, oil inlet frame; 736, No. 1 one-way baffle; 737, No. 2 2. Rotating rod; 713. Cold oil tank; 714. No. 1 motor; 8. Cooling assembly; 801. No. 2 fixing bracket; 802. Cooling fixing bracket; 803. Rotating shaft; 804. Fan blade; 805. No. 2 motor; 806. Heat dissipation frame; 807. Air inlet; 9. Cooling speed adjustment assembly; 901. Top frame; 902. Drive shaft; 903. Slide rail; 904. Sliding frame; 905. Swinging rod; 906. Drive shaft; 907. Eccentric shaft; 908. No. 1 guide groove; 909. No. 2 guide groove; 910. Fixing rod; 911. No. 1 bevel gear; 912. No. 2 bevel gear; 913. Electric cylinder; 10. Built-in fixing bracket; 11. Pipe heater; 12. High-pressure water pump. DETAILED DESCRIPTION
[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0029] Example: Figure 1-12 As shown, the present invention provides a technical solution: a production and processing device for a high-temperature resistant wax emulsion, comprising a base plate 1, a heating and stirring pool 2 is provided on one side of the top of the base plate 1, a shell 3 is provided on the other side of the top of the base plate 1, a workbench 4 is provided in the middle of the top of the shell 3, a high-shear emulsifying and stirring device 5 used in conjunction with the heating and stirring pool 2 is provided on the workbench 4, a circulating pipeline component 6 is provided in the heating and stirring pool 2, a slow cooling component 7 and a cooling component 8 are respectively provided on the top of the base plate 1 on one side of the shell 3, a cooling speed regulating component 9 is provided on the slow cooling component 7, a built-in fixing frame 10 is fixedly provided on the inner wall of the shell 3 close to the cooling component 8, and a pipeline heater 11 and a high-pressure water pump 12 are respectively provided on the built-in fixing frame 10.
[0030] The circulation pipeline assembly 6 includes an annular heating pipe 601, which is fixedly installed in the heating and stirring tank 2. The top of the annular heating pipe 601 is connected to an oil inlet pipe 602, and the other end of the oil inlet pipe 602 is connected to the oil inlet end of the pipeline heater 11. The oil outlet end of the pipeline heater 11 is connected to a connecting pipe 603, and the other end of the connecting pipe 603 is connected to the oil inlet end of the high-pressure water pump 12. The oil outlet end of the high-pressure water pump 12 is connected to an oil outlet pipe 604, and the oil outlet pipe 604 is connected to the bottom end of the annular heating pipe 601. The oil inlet pipe 602 is connected to a hot oil suction pipe 608, and the oil outlet pipe 604 is connected to a cold oil discharge pipe 605.
[0031] By adopting the above technical solution, the annular heating pipe 601, the oil inlet pipe 602, the connecting pipe 603, the oil outlet pipe 604, the pipeline heater 11 and the high-pressure water pump 12 are connected, so that the heat transfer oil is heated by the pipeline heater 11 and then circulates in the annular heating pipe 601, the oil inlet pipe 602, the connecting pipe 603 and the oil outlet pipe 604 under the action of the high-pressure water pump 12.
[0032] The slow cooling component 7 includes a No. 1 fixed bracket 701, which is fixedly mounted on the top of the bottom plate 1. A cold oil barrel 702 and a hot oil barrel 703 are fixedly mounted on the top of the No. 1 fixed bracket 701. The cold oil barrel 702 and the hot oil barrel 703 are both fixedly mounted with an oil outlet frame 704 at their ends near the heating stirring pool 2. The cold oil barrel 702 and the hot oil barrel 703 are both fixedly mounted with an oil inlet frame 705 at their tops near the oil outlet frame 704. A No. 1 one-way baffle 706 is rotatably mounted in the oil outlet frame 704. A No. 2 one-way baffle 706 is rotatably mounted in the oil inlet frame 705. A one-way baffle 707, pistons 708 are slidably provided on the inner walls of the cold oil drum 702 and the hot oil drum 703, two symmetrically distributed guide rails 709 are fixedly provided on the top of the No. 1 fixed bracket 701 away from the cold oil drum 702 and the hot oil drum 703, slide plates 710 are slidably provided on the two guide rails 709, the ends of the two pistons 708 are fixedly connected to the corresponding slide plates 710 respectively, a fixed shaft 711 is fixedly provided in the middle of the top of the No. 1 fixed bracket 701, and a rotating rod 712 used in conjunction with the slide plate 710 is rotatably provided on the outer wall of the fixed shaft 711.
[0033] By adopting the above technical solution, the two pistons 708 are synchronously moved in opposite directions under the action of the guide rail 709, the slide plate 710 and the rotating rod 712, so that the same amount of hot oil can be discharged while the cold oil is injected.
[0034] The cooling assembly 8 includes a No. 2 fixed bracket 801, which is fixedly installed on the top of the base plate 1 close to the built-in fixed bracket 10. A cooling fixed bracket 802 is fixedly arranged on the top of the No. 2 fixed bracket 801. A rotating shaft 803 is rotatably arranged on the cooling fixed bracket 802 close to the No. 1 fixed bracket 701. A fan blade 804 is fixedly arranged at the end of the rotating shaft 803. A No. 2 motor 805 is fixedly arranged on the No. 2 fixed bracket 801, and the driving end of the No. 2 motor 805 is connected to the rotating shaft 803 through a synchronous wheel transmission group. A heat dissipation frame 806 and an air inlet 807 used in conjunction with the fan blade 804 are arranged on the outer wall of the outer shell 3.
[0035] By adopting the above technical solution, the second motor 805 drives the fan blades 804 to rotate through the rotating shaft 803, and the hot air is discharged from the heat dissipation frame 806.
[0036] The cooling speed adjustment component 9 includes a top frame 901, which is fixedly mounted on the top of a No. 1 fixed bracket 701. A driving shaft 902 is rotatably provided on the top frame 901. Two symmetrically distributed slide rails 903 are fixedly provided on the top of the top frame 901. A sliding frame 904 is slidably provided on the slide rail 903. A transmission shaft 906 is rotatably provided on the sliding frame 904. An eccentric shaft 907 is fixedly provided at the bottom end of the transmission shaft 906. A swing rod 905 is rotatably provided at the bottom end of the top frame 901. A No. 1 guide groove 908 for use with the eccentric shaft 907 is provided on the swing rod 905, and the eccentric shaft 907 slides in the No. 1 guide groove 908. A fixed rod 910 is fixedly provided on the top of a slide plate 710 on one side of the cold oil barrel 702. A No. 2 guide groove 909 for use with the swing rod 905 is provided on the swing rod 905, and the fixed rod 910 slides in the No. 2 guide groove 909.
[0037] By adopting the above technical solution, the movement of the sliding frame 904 drives the eccentric shaft 907 to move synchronously, and the swing amplitude of the swing rod 905 is changed by changing the position of the eccentric shaft 907, thereby realizing the adjustment of the volume of cold oil and hot oil discharged and sucked each time.
[0038] A cold oil tank 713 is fixedly provided on the top of the top frame 901, and the cold oil discharge pipe 605 is connected to the oil outlet frame 704 located on one side of the cold oil barrel 702. A cold oil suction pipe 606 is connected to the oil inlet frame 705 located on one side of the cold oil barrel 702, and the other end of the cold oil suction pipe 606 is connected to the bottom end of the cold oil tank 713.
[0039] By adopting the above technical solution, the cold oil in the cold oil tank 713 is discharged into the cold oil barrel 702 through the cold oil suction pipe 606 and then discharged through the cold oil discharge pipe 605.
[0040] The hot oil suction pipe 608 is connected to the oil inlet frame 705 located on one side of the hot oil barrel 703, and a hot oil discharge pipe 607 is connected to the oil outlet frame 704 located on one side of the hot oil barrel 703. The other end of the hot oil discharge pipe 607 is connected to a surrounding cooling pipe 609, and the surrounding cooling pipe 609 is fixedly installed on the cooling fixing frame 802, and the top end of the surrounding cooling pipe 609 is connected to the top end of the cold oil tank 713.
[0041] By adopting the above technical solution, the hot oil in the hot oil discharge pipe 607 is cooled by the surrounding cooling pipe 609 and then discharged into the cold oil tank 713.
[0042] A first bevel gear 911 is fixedly provided on the top of the transmission shaft 906 , a second bevel gear 912 is slidably sleeved on the outer wall of the driving shaft 902 , and the first bevel gear 911 is meshedly connected with the second bevel gear 912 .
[0043] By adopting the above technical solution, the driving shaft 902 drives the transmission shaft 906 to rotate.
[0044] A No. 1 motor 714 is fixedly provided inside the top frame 901 , and a driving end of the No. 1 motor 714 is connected to the driving shaft 902 via a pulley transmission group.
[0045] By adopting the above technical solution, the No. 1 motor 714 drives the driving shaft 902 to rotate through the pulley transmission group.
[0046] An electric cylinder 913 is fixedly provided on one side of the top frame 901 close to the second fixed bracket 801 , and a driving end of the electric cylinder 913 is fixedly connected to the sliding frame 904 .
[0047] By adopting the above technical solution, the electric cylinder 913 pushes the sliding frame 904 to move.
[0048] Working principle: First, slowly pour the heated wax into the heating stirring tank 2 and mix it with the prepared water phase. At the same time, control the high shear emulsification stirring device 5 to stir the wax and water phase until a stable emulsion is formed. Before the wax is added, Figure 4 , Figure 5 As shown, the pipe heater 11 and the high-pressure water pump 12 are controlled to be turned on. Under the action of the high-pressure water pump 12, the heat transfer oil in the annular heating pipe 601 enters the pipe heater 11 through the oil inlet pipe 602. After being heated by the pipe heater 11, the heat transfer oil flows back to the annular heating pipe 601 through the high-pressure water pump 12 and the oil outlet pipe 604 in turn. The heat is transferred to the heating stirring tank 2 through the annular heating pipe 601 to ensure that a certain temperature is maintained during the emulsification process. When the emulsification is completed and cooling is required, as shown in FIG. Figure 7 , Fig.10As shown, the pipeline heater 11 is turned off and the No. 1 motor 714 is controlled to be turned on at the same time. The driving end of the No. 1 motor 714 drives the driving shaft 902 to rotate through the pulley transmission group. The driving shaft 902 drives the transmission shaft 906 to rotate through the No. 1 bevel gear 911 and the No. 2 bevel gear 912. The transmission shaft 906 slides in the No. 1 guide groove 908 through the eccentric shaft 907 to drive the swing rod 905 to swing back and forth. The swing rod 905 drives the slide plate 710 on one side of the cold oil drum 702 to reciprocate under the guidance of the guide rail 709 through the fixed rod 910. During the movement, the slide plate 710 on one side of the cold oil drum 702 drives the slide plate 710 on the one side of the hot oil drum 703 to reciprocate synchronously in the opposite direction through the fixed shaft 711 and the rotating rod 712. During the movement of the two slide plates 710, the corresponding pistons 708 are driven to move synchronously. In this process, as shown in FIG. Figure 6 , Fig.12 As shown, when the piston 708 in the cold oil barrel 702 moves forward, under the action of pressure, the second one-way baffle 707 is always in contact with the oil inlet frame 705, and the first one-way baffle 706 is flipped to the left and opened, and the cold oil in the cold oil barrel 702 is discharged into the oil outlet pipe 604 through the oil outlet frame 704 and the cold oil discharge pipe 605. When the piston 708 in the cold oil barrel 702 moves backward, under the action of pressure, the first one-way baffle 706 is in contact with the oil outlet frame 704, and the second one-way baffle 707 is flipped downward to allow the cold oil in the cold oil tank 713 to be transported to the cold oil barrel 702 through the cold oil suction pipe 606. Similarly, when the cold oil barrel 702 When the piston 708 of the hot oil barrel 703 moves forward, the piston 708 in the hot oil barrel 703 moves backward. At this time, the hot oil circulating in the oil inlet pipe 602 enters the hot oil barrel 703. When the piston 708 of the hot oil barrel 703 moves forward, the hot oil in the hot oil barrel 703 is transported to the surrounding cooling pipe 609 through the hot oil discharge pipe 607. Because the cold oil barrel 702 and the hot oil barrel 703 have the same specifications, when the cold oil barrel 702 discharges a certain amount of cold oil into the oil outlet pipe 604 to mix with the circulating hot oil to steadily reduce the temperature of the hot oil, the hot oil barrel 703 discharges the same volume of hot oil from the oil inlet pipe 602 into the cooling cycle. When the hot oil enters the surrounding cooling pipe 609, as shown in FIG. Figure 8As shown, the second motor 805 is controlled to be turned on. The second motor 805 drives the rotating shaft 803 and the fan blade 804 to rotate through the synchronous wheel transmission group to generate wind that passes through the surrounding cooling pipe 609 and is discharged from the heat dissipation frame 806, so as to cool the hot oil entering the surrounding cooling pipe 609. As the hot oil enters the surrounding cooling pipe 609, the cooled heat transfer oil in the surrounding cooling pipe 609 flows back from the top of the cold oil tank 713 to the cold oil tank 713 to realize the cooling cycle. When it is necessary to control the cold oil injection amount and the hot oil discharge amount When making adjustments, the electric cylinder 913 is controlled to be turned on. The driving end of the electric cylinder 913 extends to push the sliding frame 904 to move under the guidance of the driving shaft 902. When the sliding frame 904 moves, it drives the No. 1 bevel gear 911, the No. 2 bevel gear 912, the transmission shaft 906 and the eccentric shaft 907 to move and adjust synchronously. The swing amplitude of the swing rod 905 is adjusted by adjusting the position of the eccentric shaft 907. The moving distance of the slide plate 710 and the piston 708 is adjusted by adjusting the swing amplitude of the swing rod 905.
[0049] Obviously, those skilled in the art can make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if these modifications and variations of the present invention fall within the scope of the claims of the present invention and their equivalents, the present invention is also intended to include these modifications and variations.
Claims
1. A production and processing device for high temperature resistant wax emulsion, comprising a bottom plate 1, characterized in that: A heating and stirring pool 2 is provided on one side of the top of the bottom plate 1, a shell 3 is provided on the other side of the top of the bottom plate 1, a workbench 4 is provided in the middle of the top of the shell 3, a high-shear emulsifying and stirring device 5 used in conjunction with the heating and stirring pool 2 is provided on the workbench 4, a circulating pipe component 6 is provided in the heating and stirring pool 2, a slow cooling component 7 and a cooling component 8 are respectively provided on the top of the bottom plate 1 on one side of the shell 3, a cooling speed regulating component 9 is provided on the slow cooling component 7, a built-in fixing frame 10 is fixedly provided on the inner wall of the shell 3 close to the cooling component 8, and a pipeline heater 11 and a high-pressure water pump 12 are respectively provided on the built-in fixing frame 10.
2. The production and processing device of a high temperature resistant wax emulsion according to claim 1, characterized in that: The circulation pipe assembly 6 includes an annular heating pipe 601, which is fixedly installed in the heating stirring tank 2. The top of the annular heating pipe 601 is connected to an oil inlet pipe 602, and the other end of the oil inlet pipe 602 is connected to the oil inlet end of the pipe heater 11. The oil outlet end of the pipe heater 11 is connected to a connecting pipe 603, and the other end of the connecting pipe 603 is connected to the oil inlet end of the high-pressure water pump 12. The oil outlet end of the high-pressure water pump 12 is connected to an oil outlet pipe 604, and the oil outlet pipe 604 is connected to the bottom end of the annular heating pipe 601. The oil inlet pipe 602 is connected to a hot oil suction pipe 608, and the oil outlet pipe 604 is connected to a cold oil discharge pipe 605.
3. The production and processing device of a high temperature resistant wax emulsion according to claim 2, characterized in that: The slow cooling component 7 includes a No. 1 fixed bracket 701, which is fixedly mounted on the top of the bottom plate 1. A cold oil barrel 702 and a hot oil barrel 703 are fixedly provided on the top of the No. 1 fixed bracket 701. The cold oil barrel 702 and the hot oil barrel 703 are both fixedly provided with an oil outlet frame 704 at their ends close to the heating stirring pool 2. An oil inlet frame 705 is fixedly provided on the top of the cold oil barrel 702 and the hot oil barrel 703 close to the oil outlet frame 704. A No. 1 one-way baffle 706 is rotatably provided in the oil outlet frame 704. Two One-way baffle 707, pistons 708 are slidably provided on the inner walls of the cold oil drum 702 and the hot oil drum 703, two symmetrically distributed guide rails 709 are fixedly provided on the top of the No. 1 fixed bracket 701 away from the cold oil drum 702 and the hot oil drum 703, slide plates 710 are slidably provided on the two guide rails 709, and the two ends of the pistons 708 are fixedly connected to the corresponding slide plates 710 respectively, a fixed shaft 711 is fixedly provided in the middle of the top of the No. 1 fixed bracket 701, and a rotating rod 712 used in conjunction with the slide plate 710 is rotatably provided on the outer wall of the fixed shaft 711.
4. The production and processing device of a high temperature resistant wax emulsion according to claim 1, characterized in that: The cooling assembly 8 includes a No. 2 fixed bracket 801, which is fixedly installed on the top of the base plate 1 close to the built-in fixed bracket 10. A cooling fixed bracket 802 is fixedly arranged on the top of the No. 2 fixed bracket 801. A rotating shaft 803 is rotatably arranged on the cooling fixed bracket 802 close to the No. 1 fixed bracket 701. A fan blade 804 is fixedly arranged at the end of the rotating shaft 803. A No. 2 motor 805 is fixedly arranged on the No. 2 fixed bracket 801, and the driving end of the No. 2 motor 805 is connected to the rotating shaft 803 through a synchronous wheel transmission group. A heat dissipation frame 806 and an air inlet 807 used in conjunction with the fan blade 804 are provided on the outer wall of the shell 3.
5. The production and processing device of a high temperature resistant wax emulsion according to claim 3, characterized in that: The cooling speed regulating assembly 9 comprises a top frame 901, which is fixedly mounted on the top of a No. 1 fixed bracket 701, a driving shaft 902 is rotatably provided on the top frame 901, two symmetrically distributed slide rails 903 are fixedly provided on the top of the top frame 901, a sliding frame 904 is slidably provided on the slide rail 903, a transmission shaft 906 is rotatably provided on the sliding frame 904, an eccentric shaft 907 is fixedly provided at the bottom end of the transmission shaft 906, a swing rod 905 is rotatably provided at the bottom end of the top frame 901, a No. 1 guide groove 908 for use with the eccentric shaft 907 is provided on the swing rod 905, and the eccentric shaft 907 slides in the No. 1 guide groove 908, a fixed rod 910 is fixedly provided on the top of the slide plate 710 located on one side of the cold oil barrel 702, a No. 2 guide groove 909 for use with the swing rod 905 is provided on the swing rod 905, and the fixed rod 910 slides in the No. 2 guide groove 909.
6. The production and processing device of a high temperature resistant wax emulsion according to claim 5, characterized in that: A cold oil tank 713 is fixedly provided at the top of the top frame 901, and the cold oil discharge pipe 605 is connected to the oil outlet frame 704 located on one side of the cold oil barrel 702. A cold oil suction pipe 606 is connected to the oil inlet frame 705 located on one side of the cold oil barrel 702, and the other end of the cold oil suction pipe 606 is connected to the bottom end of the cold oil tank 713.
7. The production and processing device of a high temperature resistant wax emulsion according to claim 3, characterized in that: The hot oil suction pipe 608 is connected to the oil inlet frame 705 located on one side of the hot oil barrel 703, and the oil outlet frame 704 located on one side of the hot oil barrel 703 is connected to a hot oil discharge pipe 607. The other end of the hot oil discharge pipe 607 is connected to a surrounding cooling pipe 609, and the surrounding cooling pipe 609 is fixedly installed on the cooling fixing frame 802. The top end of the surrounding cooling pipe 609 is connected to the top end of the cold oil tank 713.
8. The production and processing device of a high temperature resistant wax emulsion according to claim 5, characterized in that: A first bevel gear 911 is fixedly provided at the top of the transmission shaft 906 , a second bevel gear 912 is slidably sleeved on the outer wall of the driving shaft 902 , and the first bevel gear 911 is meshedly connected with the second bevel gear 912 .
9. The production and processing device of a high temperature resistant wax emulsion according to claim 8, characterized in that: A No. 1 motor 714 is fixedly provided inside the top frame 901 , and a driving end of the No. 1 motor 714 is transmission-connected to the driving shaft 902 via a pulley transmission group.
10. The production and processing device of a high temperature resistant wax emulsion according to claim 9, characterized in that: An electric cylinder 913 is fixedly provided on one side of the top frame 901 close to the second fixed bracket 801 , and a driving end of the electric cylinder 913 is fixedly connected to the sliding frame 904 .