Base station cooling water supercharging device
Through the design of the cooling water booster device on the base, the cooperation of the compression sleeve and the pushing plate is used to solve the problem of uneven supply and demand of cooling water, the efficient flow of cooling water and the stability of water pressure are achieved, and the overall water pressure of the cooling system is increased.
Patent Information
- Application Number
- CN202422925832.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-11-28
AI Technical Summary
In the prior art, there is a difference between the output volume of a high-power water pump and the supply volume of cooling water, resulting in insufficient cooling water and the problem of water pressure loss inside the water pipe.
The abutment cooling water booster device is adopted, including water conduit pipes, booster tanks, auxiliary tanks and balanced water pipes. Through the cooperation of the compression sleeve and pushing plate, the secondary pressurization and boosting of the cooling water is achieved, forming a common flow path to avoid water pressure loss.
The efficient flow of cooling water is achieved, the phenomenon of water pressure loss is avoided, the overall water pressure of the cooling system is increased, and the sufficient supply of cooling water is ensured.
Smart Images

Figure CN223048891U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cooling water pressurization, in particular to a base table cooling water pressurization device. Background Technique
[0002] The supercharged intercooling technology is that when the turbocharger compresses the fresh air and cools it through the middle-section cooler, and then flows through the intake manifold and intake valve to the cylinder combustion chamber. An effective intercooling technology can reduce the supercharging temperature to below 50 °C, which helps to reduce exhaust emissions and improve fuel economy. Before the supercharger piston enters the engine cylinder, the air is first compressed by the supercharger to increase the air density, so that more air can be filled into the cylinder, thereby increasing the engine power. An engine equipped with a supercharger can not only output a larger take-off power, but also improve the altitude characteristics of the engine.
[0003] At present, in the existing technology, the method of using a larger power water pump is adopted to increase the inlet pressure of the cooling water, thereby reducing the influence of the atmospheric pressure. However, the water pump can increase the inlet pressure, but it cannot increase the overall water pressure of the cooling system. Due to the difference between the supply of the cooling water and the demand of the water pump, the output of the high-power water pump is likely to change, so that the output energy of the water pump is in excess of demand. The shortage of the cooling water will cause a certain cavity to be left between the cooling waters, resulting in the problem of pressure loss of the overall water pressure inside the water pipe.
[0004] Therefore, the utility model provides a base table cooling water pressurization device. Content of the Utility Model
[0005] Therefore, the technical problem to be solved by the utility model is to overcome the difference between the output of the high-power water pump and the supply of the cooling water in the existing technology, so that the output energy of the water pump is in excess of demand. The shortage of the cooling water will cause a certain cavity to be left between the cooling waters, resulting in the problem of pressure loss of the overall water pressure inside the water pipe.
[0006] To solve the above technical problem, the utility model provides a base table cooling water pressurization device, which includes a water guide pipe, a pressurization tank and an auxiliary tank that are threadedly and movably sleeved on the outer surface of the top of the water guide pipe, a balance water pipe that is detachably installed on the outer surface of the pressurization tank, a compression sleeve that is fixedly installed on the inner wall surface of the water guide pipe, a water collection and compression cavity is arranged inside the left cavity at the connection of the compression sleeve and the water guide pipe, and a high-pressure drainage cavity is arranged inside the right cavity at the connection of the compression sleeve and the water guide pipe;
[0007] A push plate is movably sleeved on the inner wall surface of the pressurization tank. A counterweight column is fixedly installed on the top surface of the push plate and located at the middle position. Limit rods are fixedly connected to the top surface of the push plate and located at the two side edge positions of the counterweight column. Water collection cavities are arranged at the upper and lower side edge positions of the push plate.
[0008] In an embodiment of the present utility model, overlapping strips are fixedly connected to the inner side wall surfaces of the pressurizing tank and the auxiliary tank and at the bottom edge positions, and the bottom surface of the pushing disk is movably overlapped on the top surface of the overlapping strips.
[0009] In an embodiment of the present utility model, a limiting disk is fixedly connected to the inner side wall surface of the pressurizing tank and at the middle position, the outer side surfaces of the counterweight column and the limiting rod are movably sleeved on the outer side surface of the limiting disk, a waterproof cavity is arranged between the top surface of the limiting disk and the inner side wall surface of the pressurizing tank, and docking sleeves are arranged on the outer side surfaces of the pressurizing tank and the auxiliary tank and at the bottom edge positions.
[0010] In an embodiment of the present utility model, an upper pressing disk is movably overlapped on the top surface of the overlapping strips on the inner side wall surface of the auxiliary tank, a counterweight block is fixedly connected to the top surface of the upper pressing disk, and an inner tank cylinder is fixedly connected to the inner bottom wall surface of the auxiliary tank and at the middle position.
[0011] In an embodiment of the present utility model, water permeable holes are formed on the outer side surface of the inner tank cylinder, the inner side wall surfaces of the upper pressing disk and the counterweight block are movably sleeved on the outer side surface of the inner tank cylinder, and a height limiting strip is fixedly connected to the inner side wall surface of the auxiliary tank and at the top edge position.
[0012] In an embodiment of the present utility model, limiting grooves are arranged on the outer side surface of the balance water pipe and at the two side edge positions, and a pulling sleeve is movably sleeved on the outer side surface of the limiting grooves.
[0013] In an embodiment of the present utility model, the inner side wall surface of the pulling sleeve is movably sleeved on the outer side surface of the docking sleeve, a limiting ring is fixedly connected to the inner side wall surface of the balance water pipe, and a compression sleeve is fixedly connected to the inner side wall surface of the limiting ring.
[0014] In an embodiment of the present utility model, threaded sleeves are respectively arranged on the top surface of the water guide pipe and at the two side edge positions on the top of the compression sleeve, and the bottom surfaces of the pressurizing tank and the auxiliary tank are threadedly and movably sleeved on the top surface of the threaded sleeves.
[0015] The above technical solution of the present utility model has the following advantages compared with the prior art:
[0016] The utility model discloses a base cooling water boosting device, which cooperates with a water pipe to infuse the cooling water source, cooperates with a compression sleeve to compress the water source flowing inside the water pipe, reduces the flow rate of cooling water, and concentrates a large amount of cooling water inside a water collecting compression chamber. At this time, excess cooling water will enter the inside of a boosting tank, and cooperates with the water collecting chamber to concentrate the water source. As the water source is continuously accumulated inside the water collecting chamber, the push plate inside the boosting tank is pushed upward and spread upward. At the same time, the push plate is pressed downward in cooperation with a counterweight column on the top surface of the push plate. The height difference generated by the water source height and the downward pressure of the water source are utilized to perform secondary pressurization and boosting of the water source inside the water collecting compression chamber, thereby accelerating the water source inside the water collecting compression chamber to pass through the compression sleeve and enter the inside of the high-pressure drainage chamber. The pressurized high-speed flowing water source will push the water source inside the high-pressure drainage chamber, so that the water source inside the high-pressure drainage chamber has the effect of rapid flow.
[0017] The utility model describes a base cooling water booster device. After the water source passes through the balancing water pipe and enters the auxiliary tank, the counterweight block on the top surface of the upper pressure plate is used to limit the downward pressure on the water source entering the auxiliary tank. When the push plate inside the booster tank rises to the bottom surface of the limit plate and can no longer rise, the water pressure inside the water collecting chamber will reach a threshold value. As the water source continues to flow into the auxiliary tank, the water source accumulated inside the auxiliary tank will push the upper pressure plate on the outer surface of the inner tube upward. When the upper pressure plate spreads through the water permeable hole, the water source inside the auxiliary tank will pass through the water permeable hole into the inner tube, so that the water source enters the high-pressure drainage chamber. A common flow path is formed between the booster tank, the auxiliary tank and the high-pressure drainage chamber by using the height limiting strip, thereby achieving the effect of relieving the pressure on the water source inside the water collecting chamber and the water collecting compression chamber and increasing the water source flow path. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to make the content of the utility model more clearly understood, the utility model is further described in detail below based on specific embodiments of the utility model in combination with the accompanying drawings.
[0019] Figure 1 It is a three-dimensional diagram of the utility model;
[0020] Figure 2 It is a schematic diagram of the cross-sectional three-dimensional structure of the booster tank in the utility model;
[0021] Figure 3 It is a schematic diagram of the expanded cross-sectional three-dimensional structure of the booster tank and the water conduit in the utility model;
[0022] Figure 4 It is a schematic diagram of the expanded cross-sectional three-dimensional structure of the booster tank in the utility model;
[0023] Figure 5It is a schematic perspective sectional view of the auxiliary tank in the present utility model;
[0024] Figure 6 It is a schematic perspective sectional view of the balance water pipe in the present utility model.
[0025] Explanation of the reference numerals in the specification drawings: 11, water guide pipe; 111, compression sleeve; 112, threaded sleeve; 113, water collection compression chamber; 114, high-pressure drainage chamber; 12, pressure boosting tank; 121, overlapping strip; 122, push plate; 123, limiting rod; 124, counterweight column; 125, limiting disc; 126, waterproof chamber; 127, water collection chamber; 128, auxiliary tank; a1, inner cylinder; a2, water permeable hole; a3, height limiting strip; a4, upper pressing plate; a5, counterweight block; 129, docking sleeve; 13, balance water pipe; 131, limiting groove; 132, pull-out sleeve; 133, limiting ring; 134, compression sleeve. Specific embodiments
[0026] The present utility model will be further described below in conjunction with the accompanying drawings and specific embodiments, so that those skilled in the art can better understand the present utility model and be able to implement it, but the embodiments cited do not limit the present utility model.
[0027] Referring to Figures 1 to 6 As shown, a base table cooling water pressure boosting device of the present utility model includes a water guide pipe 11, a pressure boosting tank 12 and an auxiliary tank 128 that are threadedly and movably sleeved on the outer surface of the top of the water guide pipe 11, a balance water pipe 13 that is detachably installed on the outer surface of the pressure boosting tank 12, a compression sleeve 111 fixedly installed on the inner wall surface of the water guide pipe 11, a water collection compression chamber 113 arranged inside the left cavity at the connection between the compression sleeve 111 and the water guide pipe 11, and a high-pressure drainage chamber 114 arranged inside the right cavity at the connection between the compression sleeve 111 and the water guide pipe 11;
[0028] A push plate 122 is movably sleeved on the inner wall surface of the pressure boosting tank 12. A counterweight column 124 is fixedly installed on the top surface of the push plate 122 and located at the middle position. Limiting rods 123 are fixedly connected to the top surface of the push plate 122 and located at the two side edge positions of the counterweight column 124. Water collection chambers 127 are arranged at the upper and lower side edge positions of the push plate 122.
[0029] During operation, it cooperates with the water guide pipe 11 to instill the cooling water source, and cooperates with the compression sleeve 111 to compress the water source flowing inside the water guide pipe 11, reducing the flow rate of the cooling water. A large amount of cooling water is concentrated inside the water collection and compression chamber 113. At this time, the excess cooling water will enter the inside of the booster tank 12, and the water collection chamber 127 is used to concentrate the water source. As the water source accumulates continuously inside the water collection chamber 127, it pushes the push plate 122 inside the booster tank 12 upward and spreads. At the same time, the counterweight column 124 on the top surface of the push plate 122 presses down on the push plate 122. Utilizing the drop generated by the height of the water source and the downward pressure of the water source, the water source inside the water collection and compression chamber 113 is pressurized and boosted for the second time, and then the water source inside the water collection and compression chamber 113 is accelerated to pass through the compression sleeve 111 and enter the inside of the high-pressure drainage chamber 114. The pressurized and fast-flowing water source will push the water source inside the high-pressure drainage chamber 114, making the water source inside the high-pressure drainage chamber 114 flow rapidly.
[0030] Furthermore, as Figures 1 to 6 shown, on the inner side wall surfaces of the booster tank 12 and the auxiliary tank 128 and at the bottom edge positions, there are fixedly connected overlapping strips 121. The bottom surface of the push plate 122 is movably overlapped on the top surface of the overlapping strip 121. On the inner side wall surface of the booster tank 12 and at the middle position, there is a fixedly connected limit disk 125. The outer side surfaces of the counterweight column 124 and the limit rod 123 are movably sleeved on the outer side surface of the limit disk 125. Between the top surface of the limit disk 125 and the inner side wall surface of the booster tank 12, there is a waterproof chamber 126. On the outer side surfaces of the booster tank 12 and the auxiliary tank 128 and at the bottom edge positions, there is a docking sleeve 129. On the inner side wall surface of the auxiliary tank 128 and on the top surface of the overlapping strip 121, there is a movably overlapped upper pressure plate a4. On the top surface of the upper pressure plate a4, there is a fixedly connected counterweight block a5. On the inner bottom wall surface of the auxiliary tank 128 and at the middle position, there is a fixedly connected inner tank cylinder a1. On the outer side surface of the inner tank cylinder a1, there are water permeable holes a2. The inner side wall surfaces of the upper pressure plate a4 and the counterweight block a5 are movably sleeved on the outer side surface of the inner tank cylinder a1. On the inner side wall surface of the auxiliary tank 128 and at the top edge position, there is a fixedly connected height limiting strip a3. On the outer side surface of the balance water pipe 13 and at the two side edge positions, there are limit grooves 131. On the outer side surface of the limit grooves 131, there is a movably sleeved pull sleeve 132. The inner side wall surface of the pull sleeve 132 is movably sleeved on the outer side surface of the docking sleeve 129. On the inner side wall surface of the balance water pipe 13, there is a fixedly connected limit ring 133. On the inner side wall surface of the limit ring 133, there is a fixedly connected compression sleeve 134. On the top surface of the water guide pipe 11 and at the two side edge positions on the top of the compression sleeve 111, there are respectively provided threaded sleeves 112. The bottom surfaces of the booster tank 12 and the auxiliary tank 128 are threadedly movably sleeved on the top surface of the threaded sleeve 112;
[0031] During operation, as water is continuously accumulated inside the boosting tank 12 and the water collecting compression chamber 113, a portion of the water will pass through the balancing water pipe 13 and enter the auxiliary tank 128, thereby relieving the water pressure inside the water collecting chamber 127, thereby preventing the water pressure inside the water collecting chamber 127 and the boosting tank 12 from being unable to be quickly discharged. The water accumulated inside the water collecting compression chamber 113 and the boosting tank 12 will cause a load inside the boosting tank 12 and the water conduit 11. The balancing water pipe 13 can provide a pressure relief effect for the water inside the boosting tank 12. After the water passes through the balancing water pipe 13 and enters the auxiliary tank 128, the counterweight a5 on the top surface of the upper pressure plate a4 is used to limit the downward pressure on the water entering the auxiliary tank 128. When the push plate inside the boosting tank 12 After 122 rises to the bottom surface of the limit plate 125 and can no longer rise, the water pressure inside the water collecting chamber 127 will reach a threshold value. As the water source continues to flow into the auxiliary tank 128, the water source accumulated inside the auxiliary tank 128 will push the upper pressure plate a4 on the outer surface of the inner tank tube a1 upward. When the upper pressure plate a4 spreads through the water permeable hole a2, the water source inside the auxiliary tank 128 will pass through the water permeable hole a2 into the inner tank tube a1, so that the water source enters the high-pressure drainage chamber 114. The height limiting strip a3 is used to form a common flow path between the boosting tank 12, the auxiliary tank 128 and the high-pressure drainage chamber 114, thereby achieving the effect of relieving the pressure on the water source inside the water collecting chamber 127 and the water collecting compression chamber 113 and increasing the water source flow path.
[0032] Working principle: cooperate with the water pipe 11 to infuse the cooling water source, cooperate with the compression sleeve 111 to compress the water source flowing inside the water pipe 11, reduce the flow of cooling water, and concentrate a large amount of cooling water inside the water collection compression chamber 113. At this time, the excess cooling water will enter the inside of the boosting tank 12, and cooperate with the water collection chamber 127 to concentrate the water source. As the water source continues to accumulate inside the water collection chamber 127, it will push the push plate 122 inside the boosting tank 12 upward and spread upward. At the same time, cooperate with the counterweight column 124 on the top surface of the push plate 122 to press down the push plate 122. The height difference generated by the water source height and the downward pressure of the water source are used to perform secondary pressurization and supercharging of the water source inside the water collection compression chamber 113, thereby accelerating the water source inside the water collection compression chamber 113 to pass through the compression sleeve 111 and enter the high-pressure drainage chamber 114. The pressurized high-speed flowing water source will push the water source inside the high-pressure drainage chamber 114, so that the water source inside the high-pressure drainage chamber 114 has a rapid flow effect;
[0033] As the water source continuously accumulates inside the pressure boosting tank 12 and the water collection and compression chamber 113, a part of the water source will pass through the balance water pipe 13 and enter the inside of the auxiliary tank 128, thereby relieving the water pressure inside the water collection chamber 127, and preventing the water pressure inside the water collection chamber 127 and the pressure boosting tank 12 from not being discharged quickly. The water source accumulated inside the water collection and compression chamber 113 and the pressure boosting tank 12 will cause loads on the pressure boosting tank 12 and the water guide pipe 11. The balance water pipe 13 can provide an effect of relieving the pressure of the water source inside the pressure boosting tank 12;
[0034] After the water source passes through the balance water pipe 13 and enters the inside of the auxiliary tank 128, it cooperates with the counterweight a5 on the top surface of the pressing plate a4 to press and limit the water source entering the inside of the auxiliary tank 128. When the push plate 122 inside the pressure boosting tank 12 rises to the bottom surface of the limit plate 125 and cannot rise any further, at this time, the water pressure inside the water collection chamber 127 will reach a threshold value. As the water source continuously flows into the inside of the auxiliary tank 128, the water source accumulated inside the auxiliary tank 128 will push the pressing plate a4 on the outer surface of the inner cylinder a1 upward. When the pressing plate a4 spreads over the water permeable hole a2, the water source inside the auxiliary tank 128 will pass through the water permeable hole a2 and enter the inside of the inner cylinder a1, so that the water source enters the inside of the high-pressure drainage chamber 114. The height limiting strip a3 forms a common flow path among the pressure boosting tank 12, the auxiliary tank 128, and the high-pressure drainage chamber 114, achieving the effects of relieving the pressure of the water source inside the water collection chamber 127 and the water collection and compression chamber 113 and increasing the water source flow path.
[0035] Obviously, the above embodiments are merely examples given for clear illustration and are not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to enumerate all the implementation manners here. And the obvious changes or modifications derived therefrom are still within the protection scope of the present utility model.
Claims
1. A base cooling water boosting device, comprising a water pipe (11), a boosting tank (12) and an auxiliary tank (128) threadedly sleeved on the outer surface of the top of the water pipe (11), and a balancing water pipe (13) detachably mounted on the outer surface of the boosting tank (12), characterized in that: A compression sleeve (111) is fixedly mounted on the inner wall surface of the water guide pipe (11); a water collection compression chamber (113) is provided inside the left cavity at the connection between the compression sleeve (111) and the water guide pipe (11); and a high-pressure drainage chamber (114) is provided inside the right cavity at the connection between the compression sleeve (111) and the water guide pipe (11); A push plate (122) is movably sleeved on the inner wall surface of the boost tank (12); a counterweight column (124) is fixedly mounted on the top surface of the push plate (122) and at a middle position; limiting rods (123) are fixedly connected to the top surface of the push plate (122) and at the edge positions on both sides of the counterweight column (124); and water collecting chambers (127) are provided at the upper and lower edge positions of the push plate (122).
2. The cooling water booster device for a base platform according to claim 1, characterized in that: A lap strip (121) is fixedly connected to the inner wall surface of the boost tank (12) and the auxiliary tank (128) at the bottom edge position, and the bottom surface of the push plate (122) is movably lapped on the top surface of the lap strip (121).
3. The cooling water booster device for a base platform according to claim 2, characterized in that: A limiting plate (125) is fixedly connected to the inner wall of the boosting tank (12) and located at a middle position; the outer surfaces of the counterweight column (124) and the limiting rod (123) are movably sleeved on the outer surface of the limiting plate (125); a waterproof cavity (126) is provided on the top surface of the limiting plate (125) and located between the inner wall of the boosting tank (12); and a docking sleeve (129) is provided on the outer surfaces of the boosting tank (12) and the auxiliary tank (128) and located at the bottom edge.
4. The cooling water booster device for a base platform according to claim 3, characterized in that: An upper pressure plate (a4) is movably overlapped on the inner wall of the auxiliary tank (128) and located on the top surface of the overlap strip (121); a counterweight (a5) is fixedly connected to the top surface of the upper pressure plate (a4); and an inner liner tube (a1) is fixedly connected to the inner bottom wall of the auxiliary tank (128) and located in the middle.
5. The cooling water boosting device for a base platform according to claim 4, characterized in that: A water-permeable hole (a2) is provided on the outer surface of the inner tube (a1); the inner wall surfaces of the upper pressure plate (a4) and the counterweight block (a5) are movably sleeved on the outer surface of the inner tube (a1); and the inner wall surface of the auxiliary tank (128) is fixedly connected to a limited height strip (a3) at the top edge.
6. The cooling water booster device for a base platform according to claim 1, characterized in that: Limiting grooves (131) are provided on the outer surface of the balancing water pipe (13) and at the edge positions on both sides, and a pull-out sleeve (132) is movably sleeved on the outer surface of the limiting groove (131).
7. The cooling water booster device for a base platform according to claim 6, characterized in that: The inner wall surface of the pulling sleeve (132) is movably sleeved on the outer surface of the docking sleeve (129), the inner wall surface of the balancing water pipe (13) is fixedly connected to a limiting ring (133), and the inner wall surface of the limiting ring (133) is fixedly connected to a compression sleeve (134).
8. The base cooling water booster device according to claim 1, characterized in that: Threaded sleeves (112) are respectively provided on the top surface of the water pipe (11) and at the top and side edge positions of the compression sleeve (111), and the bottom surfaces of the booster tank (12) and the auxiliary tank (128) are threadedly movably sleeved on the top surfaces of the threaded sleeves (112).