Multi-stage balanced cooling device for compound oil phase production
By using a spiral rod in a multi-stage cooling device for composite oil phase production, the problems of poor cooling effect and equipment shaking are solved, and balanced cooling and device stability are achieved.
Patent Information
- Application Number
- CN202421998045.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-19
AI Technical Summary
In the cooling process, the existing multi-stage cooling device for composite oil phase production, single agitation leads to a reduction in the cooling effect, and it is easy to cause shaking during cooling, which may cause equipment to tip over.
The rotation of the spiral rod drives the liquid to be transmitted vertically upward, and the gas transmitted through the exhaust chamber takes away the temperature in the oil phase, achieving multi-stage equalized cooling. At the same time, gas is extracted through the fan and discharged through the one-way gas valve, reducing shaking and improving heat dissipation effect.
The stable flow trajectory of the composite oil phase is achieved, the cooling effect is improved, the equipment is shaken, and the stability and safety of the device are ensured.
Smart Images

Figure CN223036969U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of composite oil phase production, in particular to a multi-stage balanced cooling device for composite oil phase production. Background Technique
[0002] The multi-stage balanced cooling device for composite oil phase production is a cooling device specifically used in the production process of composite oil phase. Through a multi-stage design, this device can gradually and evenly cool the heat generated by the oil phase during the production process to ensure that the temperature of the oil phase remains within a suitable range during the production process. The multi-stage balanced cooling design means that the heat will be removed in stages, and each stage undertakes a certain cooling task, thus avoiding the problems of sudden temperature drop or uneven cooling that may occur in a single cooling stage.
[0003] Chinese Patent with the publication number of CN106956380B discloses a multi-stage cooling device for polyethylene resin materials used in power cables, including a base, a support, a stirring device, a pre-cooling mesh tank, a feed hopper, a lifting mechanism, a discharge pipe, a first valve, a cooling mesh tank, a water-cooling tank, a second valve, and a water outlet pipe. The stirring device continuously stirs the materials in the pre-cooling mesh tank, and the strong cooling stirring rod stirs and disperses the materials in the tank again. The cooling blades generate a strong rotating air flow, which can fully cool the materials. After the cooling is completed, the lifting mechanism can move the cooling mesh tank up and down to facilitate the next working process.
[0004] During the cooling process of the multi-stage cooling device of the above patent, in the first step, only cooling is completed by stirring. Single stirring will reduce the cooling effect, which is not conducive to achieving balanced cooling. And single stirring will cause the multi-stage cooling device to shake during temperature reduction, and the shaking is likely to cause the equipment to tip over. Content of the Utility Model
[0005] The purpose of the utility model is to provide a multi-stage balanced cooling device for composite oil phase production. The rotation of the screw rod can drive the liquid inside the upper shell to longitudinally transmit upward, so as to realize a stable flow trajectory of the composite oil phase. And during the flowing process, the gas transmitted by the exhaust cavity can take away the temperature inside the composite oil phase to achieve multi-stage balanced cooling. And while realizing the cooling, it can avoid large shaking of the upper shell, thus solving the problems put forward in the above background technique.
[0006] To achieve the above object, the utility model provides the following technical solutions: A multi-stage balanced cooling device for the production of composite oil phase, including an upper housing, a lower housing is provided at the lower end of the upper housing, an inner receiving barrel is provided in the middle of the lower housing, a screw rod is provided in the middle of the upper housing, a first extension pipe is provided outside the screw rod, and a flow cavity for flowing is provided between the first extension pipe and the screw rod. A first guide disk is provided around the upper end of the first extension pipe, a second extension pipe is provided at the upper end of the screw rod, and a second guide disk is provided at the lower end of the screw rod.
[0007] Preferably, an exhaust cavity is provided through the inside of the screw rod, the exhaust cavity penetrates through the screw rod and extends to the upper end of the second extension pipe, a blower is provided on one side of the upper end of the second extension pipe, and a connecting pipe is provided between the blower and the second extension pipe.
[0008] Preferably, a one-way air valve is provided at the upper end of one side inside the upper housing.
[0009] Preferably, a second gear is provided around and welded at the upper end of the second extension pipe, a first gear is provided on one side outside the second gear, and the outside of the first gear is meshed and connected with the inside of the second gear.
[0010] Preferably, a stirring paddle is provided between the lower end of the inner receiving barrel and the lower end inside the lower housing, and the lower end of the stirring paddle penetrates through the lower housing and is provided with a motor.
[0011] Preferably, a water inlet pipe is provided at the front end of one side inside the lower housing, and a drain pipe is provided at the rear end of one side inside the lower housing.
[0012] Compared with the prior art, the beneficial effects of the utility model are as follows:
[0013] During the initial cooling process of the composite oil phase of the utility model inside the upper housing, the blower can actively drive the external gas and make it enter the upper housing. The gas will drive the heat out from inside the composite oil phase, and the heat and the gas will pass through the one-way air valve and be discharged, reducing the shaking caused by agitation and improving the heat dissipation effect. The extracted gas will be evenly distributed inside the upper housing to achieve balanced cooling. While extracting the gas and discharging the heat, the rotation of the screw rod can drive the static composite oil phase inside the upper housing to flow longitudinally upward along the flow cavity, so that the upward flowing composite oil phase flows from above the first guide disk and then flows into the upper housing again, making the composite oil phase inside the upper housing in a flowing state. The transmitted gas combined with the flowing composite oil phase can improve the balanced cooling effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a three-dimensional external structure diagram of the whole of the utility model;
[0015] Figure 2 This is the front view of the internal structure of the upper shell of the present utility model;
[0016] Figure 3 For the present utility model Figure 2 Partial enlarged view of area A;
[0017] Figure 4 This is the schematic diagram of the liquid flow trajectory inside the lower shell of the present utility model.
[0018] In the figure: 1. Upper shell; 2. Lower shell; 3. Valve; 4. First gear; 5. Second gear; 6. Fan; 7. Inner receiving barrel; 8. Drain pipe; 9. Drainage pipe; 10. Water inlet pipe; 11. Connecting frame; 12. One-way air valve; 13. First guide plate; 14. Flow cavity; 15. Screw rod; 16. Exhaust cavity; 17. First extension pipe; 18. Second guide plate; 19. Stirring paddle; 20. Second extension pipe; 21. Connecting pipe. Detailed implementation manners
[0019] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0020] In order to solve the problems that in the existing multi-stage cooling device during the cooling process, in the first step, only cooling is completed by agitation, single agitation will cause the cooling effect to decrease, which is not conducive to achieving balanced cooling, and single agitation will cause the multi-stage cooling device to shake during temperature reduction, and the shaking is likely to cause the equipment to topple, the following technical solutions are provided in this embodiment:
[0021] A multi-stage balanced cooling device for composite oil phase production, including an upper shell 1, a lower shell 2 is arranged at the lower end of the upper shell 1, and an inner receiving barrel 7 is arranged in the middle of the lower shell 2. As Figure 1 And Figure 2 shown, a valve 3 is arranged at the middle position between the upper end of the outside of the inner receiving barrel 7 and the lower end of the inside of the upper shell 1. After the valve 3 is opened, the composite oil phase inside the upper shell 1 can be discharged into the inner receiving barrel 7 for further balanced cooling. A drain pipe 8 is arranged on one side of the outside of the inner receiving barrel 7, and one end of the drain pipe 8 is hermetically connected to the inside of the inner receiving barrel 7. The drain pipe 8 surrounds the lower shell 2 and extends to the outside of the multi-stage balanced cooling device. The pump connected through the drain pipe 8 can extract and discharge the composite oil phase inside the inner receiving barrel 7;
[0022] In this embodiment, a screw rod 15 is disposed in the middle inside the upper housing 1. A first extension pipe 17 is disposed outside the screw rod 15. A flow chamber 14 for flow is provided between the first extension pipe 17 and the screw rod 15. As Figure 2 shown, the rotation of the screw rod 15 can actively drive the composite oil phase inside the upper housing 1 to flow longitudinally upward, so that the composite oil phase can flow along the flow chamber 14 and flow longitudinally. The upper end of the first extension pipe 17 is surrounded by a first guide disk 13. The composite oil phase flowing through the flow chamber 14 can flow along the upper end of the first guide disk 13. After flowing through the upper end of the first guide disk 13, it can fall inside the upper housing 1 again. The flowing composite oil phase can achieve uniform cooling;
[0023] In this embodiment, a second extension pipe 20 is disposed at the upper end of the screw rod 15, and a second guide disk 18 is disposed at the lower end of the screw rod 15. As Figure 2 shown, an exhaust chamber 16 is disposed through the inside of the screw rod 15. The exhaust chamber 16 penetrates the screw rod 15 and extends to the upper end of the second extension pipe 20. A blower 6 is disposed on one side of the upper end of the second extension pipe 20. A connecting pipe 21 is provided between the blower 6 and the second extension pipe 20. The gas extracted by the blower 6 is transmitted through the connecting pipe 21, the second extension pipe 20, the screw rod 15, and the second guide disk 18 and sent into the composite oil phase inside the upper housing 1, so that the gas can be embedded in the composite oil phase and take out the heat inside the composite oil phase to achieve uniform cooling;
[0024] In this embodiment, a second gear 5 is disposed around and welded at the upper end of the second extension pipe 20. A first gear 4 is disposed on one side outside the second gear 5, and the outside of the first gear 4 is meshed and connected with the inside of the second gear 5. As Figure 1 and Figure 3 shown, a motor for output is disposed at the upper end of the first gear 4. The output of the motor can drive the first gear 4 to rotate. The rotation of the first gear 4 can drive the second extension pipe 20 and the screw rod 15 at the lower end to rotate through the second gear 5;
[0025] In this embodiment, a stirring paddle 19 is provided between the lower end of the inner receiving barrel 7 and the lower end inside the lower housing 2. The lower end of the stirring paddle 19 penetrates the lower housing 2 and is provided with a motor. The output of the motor can drive the stirring paddle 19 to rotate. As Figure 2 and Figure 4 shown, the rotation of the stirring paddle 19 can stir the liquid inside the lower housing 2, so that the liquid can rotate and cool the inner receiving barrel 7;
[0026] In this embodiment, a water inlet pipe 10 is disposed at the front end of one side inside the lower housing 2, and a drain pipe 9 is disposed at the rear end of one side inside the lower housing 2. As Figure 1 and Figure 4As shown, the liquid for cooling is drawn through the water inlet pipe 10 and transported into the inner part of the lower housing 2. The liquid inside the lower housing 2 can be discharged from the drain pipe 9 after being drawn, so that the liquid inside the lower housing 2 can always be in a low-temperature state;
[0027] In this test, as Figure 1 and Figure 2 shown, a one-way air valve 12 is provided at the upper end on one side inside the upper housing 1. After the gas transported by the fan 6 enters the inner part of the upper housing 1, the gas will drive the heat to be discharged from the position of the one-way air valve 12;
[0028] In this embodiment, the inner receiving barrel 7 is fixedly welded to the lower end inside the upper housing 1 through a connecting frame 11. Through the connection and support of the connecting frame 11, the stability of the multi-stage balanced cooling device during transportation can be improved.
[0029] Working principle: When using the device to perform multi-stage balanced cooling on the composite oil phase, the composite oil phase is transported into the inner part of the upper housing 1. The fan 6 is started. The fan 6 extracts the external gas and transmits it through the connecting pipe 21 into the second extension pipe 20. The gas in the second extension pipe 20 will be transmitted through the exhaust cavity 16 in the screw rod 15. The gas transmitted in the exhaust cavity 16 will be split by the second guide plate 18 and then contact the composite oil phase accumulated inside the upper housing 1. The gas flows from the lower end to the upper end inside the upper housing 1. During the flowing process, it will drive the heat in the composite oil phase. The heat and the gas will pass through the one-way air valve 12 and be discharged. While discharging the gas, the motor corresponding to the first gear 4 is started. After the first gear 4 rotates through the output of the motor, the rotation of the first gear 4 will drive the second gear 5 to rotate. The rotation of the second gear 5 can drive the screw rod 15 connected to the lower end to rotate through the second extension pipe 20. The rotation of the screw rod 15 can drive the composite oil phase to flow from the flow cavity 14. The composite oil phase flows longitudinally upward from the flow cavity 14, flows from the upper end of the first guide plate 13 and then drips again inside the upper housing 1. By flowing instead of stirring, the shaking generated during the heat dissipation process is reduced. The composite oil phase that has dissipated heat inside the upper housing 1 flows into the inner receiving barrel 7 through the valve 3. Liquid is transported into the lower housing 2 through the water inlet pipe 10, so that the liquid wraps the outside of the inner receiving barrel 7. While the liquid is wrapping, the motor corresponding to the stirring paddle 19 is started. The output of the motor can drive the stirring paddle 19 to rotate clockwise. The rotation of the stirring paddle 19 can drive the liquid inside the lower housing 2 to be stirred. During the stirring process, the high-temperature liquid can be directly drawn and discharged at the position of the drain pipe 9, and while the drain pipe 9 discharges the gas, the water inlet pipe 10 will supplement the liquid into the lower housing 2, so as to achieve the balanced cooling of the inner receiving barrel 7 and the composite oil phase inside the inner receiving barrel 7.
[0030] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.
[0031] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention.
Claims
1. A multi-stage balanced cooling device for composite oil phase production, comprising an upper shell (1), a lower shell (2) is arranged at the lower end of the upper shell (1), an inner receiving barrel (7) is arranged in the middle of the lower shell (2), characterized in that: A spiral rod (15) is arranged in the middle of the interior of the upper shell (1), a first extension tube (17) is arranged outside the spiral rod (15), a flow cavity (14) for flow is arranged between the first extension tube (17) and the spiral rod (15), a first guide plate (13) is arranged around the upper end of the first extension tube (17), a second extension tube (20) is arranged at the upper end of the spiral rod (15), and a second guide plate (18) is arranged at the lower end of the spiral rod (15).
2. A multi-stage balanced cooling device for composite oil phase production according to claim 1, characterized in that: An exhaust chamber (16) is provided inside the spiral rod (15), and the exhaust chamber (16) passes through the spiral rod (15) and extends to the upper end of the second extension tube (20). A fan (6) is provided on one side of the upper end of the second extension tube (20), and a connecting tube (21) is provided between the fan (6) and the second extension tube (20).
3. The multi-stage balanced cooling device for composite oil phase production according to claim 1, characterized in that: A one-way air valve (12) is provided at the upper end of one side of the interior of the upper shell (1).
4. The multi-stage balanced cooling device for composite oil phase production according to claim 2, characterized in that: A second gear (5) is welded around the upper end of the second extension tube (20), a first gear (4) is provided on one side of the outside of the second gear (5), and the outside of the first gear (4) is meshedly connected with the inside of the second gear (5).
5. The multi-stage balanced cooling device for composite oil phase production according to claim 1, characterized in that: A stirring paddle (19) is provided between the lower end of the inner containing barrel (7) and the lower end of the lower outer shell (2); the lower end of the stirring paddle (19) penetrates the lower outer shell (2) and is provided with a motor.
6. A multi-stage balanced cooling device for composite oil phase production according to claim 5, characterized in that: A water inlet pipe (10) is provided at the front end of one side of the interior of the lower shell (2), and a drain pipe (9) is provided at the rear end of one side of the interior of the lower shell (2).
Citation Information
Patent Citations
A multi-stage cooling device for polyethylene resin material in power cables
CN106956380B