LIQUID PUMP
20200049151 ยท 2020-02-13
Inventors
- Ho Sung KANG (Daejeon, KR)
- Gwang Ok KO (Daejeon, KR)
- Hyuk Kim (Daejeon, KR)
- Ok Ryul MIN (Daejeon, KR)
- Sang Hyun Lee (Daejeon, KR)
- Jong Du LEE (Daejeon, KR)
Cpc classification
F04D15/0005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/00307
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04D29/605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Provided is a liquid pump included in a module in which a flow path is changed depending on an operation mode. The liquid pump may have a flow path change means and a liquid transfer means integrally formed with each other; may reduce a package size by forming an inner flow path which may change a flow of cooling water in the flow path change means and the liquid transfer means which are integrally formed with each other; may have a simplified assembling structure and a coupling structure preventing both cooling water leakage and assembly loosening; and may minimize the number of components, assembling tools and connected portions in the module.
Claims
1. A liquid pump comprising: a liquid transfer means including a body of the liquid transfer means including a liquid pumping means provided therein with an impeller to which a motor is connected, and a plurality of distribution paths respectively formed in a tubular shape and including a first distribution path of the liquid transfer means allowing liquid to flow into and out of the body of the liquid transfer means; and a flow path change means including a body of the flow path change means provided therein with a plurality of opening/closing means, and a plurality of distribution paths respectively formed in a tubular shape and including a first distribution path of the flow path change means allowing liquid to flow into and out of the body of the flow path change means, wherein the liquid transfer means and the flow path change means are integrally formed with each other in such a manner that the first distribution path of the liquid transfer means and the first distribution path of the flow path change means are integrally connected to each other.
2. The liquid pump of claim 1, wherein when the liquid transfer means 110 and the flow path change means 120 are formed as an integral component, the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means are formed as a single common tube; alternatively, when the liquid transfer means 110 and the flow path change means 120 are formed as separate components, the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means are directly coupled to each other.
3. The liquid pump of claim 1, wherein the first distribution path of the liquid transfer means and the first distribution path of the flow path change means have a shape in which at least one distribution path extends in one direction, or have a shape in which at least one distribution path is bent at a predetermined angle.
4. The liquid pump of claim 1, wherein an inner diameter of the first distribution path of the liquid transfer means and that of the first distribution path of the flow path change means are formed to have the same size.
5. The liquid pump of claim 1, wherein a thread portion of the liquid transfer means is formed on a portion of an outer surface of the first distribution path of the liquid transfer means, a thread portion of the flow path change means is formed on a portion of an inner surface of the first distribution path of the flow path change means, and the thread portion of the liquid transfer means and the thread portion of the flow path change means are screw coupled to each other; alternatively a catching portion of the liquid transfer means is formed protruding from or recessed into a portion of the outer surface of the first distribution path of the liquid transfer means, a catching portion of the flow path change means is formed protruding from or recessed into a portion of the inner surface of the first distribution path of the flow path change means, and the catching portion of the liquid transfer means and the catching portion of the flow path change means are hook coupled to each other, thereby directly coupling the first distribution path of the liquid transfer means and the first distribution path of the flow path change means to each other.
6. The liquid pump of claim 5, wherein a sealing groove portion of the liquid transfer means is formed on the outer surface of the first distribution path of the liquid transfer means, and a sealing groove portion of the flow path change means is formed on an inner surface of the first distribution path of the flow path change means, and when the first distribution path of the liquid transfer means and the first distribution path of the flow path change means are coupled to each other, a sealing member is provided in an empty space formed at a portion where the sealing groove portion of the liquid transfer means and the sealing groove portion of the flow path change means meet together.
7. The liquid pump of claim 6, wherein the sealing member is an O-ring formed of an elastic material.
8. The liquid pump of claim 5, further comprising a locking structure including a locking protrusion formed on an outer circumference of the liquid transfer means, and a locking elastic piece and a locking fixing piece, which are respectively formed on one sides of the flow path change means.
9. The liquid pump of claim 1, further comprising a seating member including a seating portion of the liquid transfer means in which the liquid transfer means is seated and secured, a seating portion of the flow path change means in which the flow path change means is seated and secured, and a supporting portion which connects the seating portion of the liquid transfer means and the seating portion of the flow path change means and which is coupled and fixed to an outer structure.
10. The liquid pump of claim 9, wherein the seating member includes the seating portion of the liquid transfer means, the seating portion of the flow path change means, and the supporting portion, which are integrally formed with one another.
11. The liquid pump of claim 9, wherein the seating member includes the seating portion of the liquid transfer means, the seating portion of the flow path change means, and the supporting portion, which are respectively formed in a plate shape and arranged on the same plane.
12. The liquid pump of claim 5, wherein the first distribution path of the liquid transfer means is formed in two stages to have different inner diameters, and the sealing groove portion of the liquid transfer means is formed in a stage having a smaller inner diameter and the thread portion of the liquid transfer means is formed on a stage having a greater inner diameter.
13. The liquid pump of claim 7, wherein the first distribution path of the flow path change means is formed to have different outer diameters, and the sealing groove portion of the flow path change means is formed in a stage having a smaller outer diameter and the thread portion of the flow path change means is formed on a stage having a greater outer diameter.
14. The liquid pump of claim 12, further comprising a locking structure preventing a screw coupling between the liquid transfer means and the flow path change means from being released.
15. The liquid pump of claim 14, wherein the locking structure includes a locking protrusion formed on an outer circumference of the liquid transfer means, and a locking elastic piece and a locking fixing piece, which are respectively formed on one sides of the flow path change means.
16. The liquid pump of claim 15, wherein the locking elastic piece has one end extending from one side of the flow path change means, bent at a predetermined angle and then extending in an inclined shape, and has the other end formed in a free end shape; and the locking fixing piece extends from one side of the flow path change means while being spaced apart from the free end of the locking elastic piece at a predetermined distance.
17. The liquid pump of claim 16, wherein the locking protrusion is formed by protruding from the outer circumference of the liquid transfer means, and has one end formed in an axial direction and the other end formed in a circumferential direction.
18. The liquid pump of claim 2, wherein the flow path change means further includes: a second distribution path of the flow path change means in which the liquid passed through a battery flows; a third distribution path of the flow path change means allowing the liquid from a heater core to flow into the flow path change means; and a fourth distribution path of the flow path change means branched in a T shape from the third distribution path of the flow path change means.
19. The liquid pump of claim 18, wherein a heating mode is implemented by closing the second distribution path of the flow path change means; and a battery temperature raising mode is implemented by closing the third distribution path of the flow path change means.
20. An air conditioning system comprising the liquid pump of claim 1 and a controller controlling an operation of the liquid pump.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
DETAILED DESCRIPTION OF EMBODIMENTS
[0047] Hereinafter, a liquid pump according to exemplary embodiments of the present disclosure is described in detail with reference to the accompanying drawings.
Basic Configuration of the Liquid Pump
[0048]
[0049] First, the liquid transfer means 110 may include a body 115 of the liquid transfer means including a liquid pumping means provided therein with an impeller to which a motor is connected, and a plurality of distribution paths respectively formed in a tubular shape and including a first distribution path 111 of the liquid transfer means allowing liquid to be distributed into and out of the body 115 of the liquid transfer means. The liquid transfer means 110 may be implemented as a cooling water pump. In general, the cooling water pump has two distribution paths such as a cooling water inflow path and a cooling water outflow path.
[0050] In addition, the flow path change means 120 may include a body 125 of the flow path change means provided therein with a plurality of opening/closing means, and a plurality of distribution paths respectively formed in a tubular shape and including a first distribution path 121 of the flow path change means allowing liquid to be distributed into and out of the body 125 of the flow path change means. The flow path change means 120 may be implemented as a three-way valve, for example; and in this case, the three-way valve has three distribution paths.
[0051] As such, the liquid pump 100 in the present disclosure may be configured to include the liquid transfer means 110 and the flow path change means 120. The liquid transfer means 110 and the flow path change means 120 may be integrally formed with each other in such a manner that the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means are integrally connected to each other. As described above, in the present disclosure, the liquid transfer means 110 and the flow path change means 120 may be integrally formed with each other without requiring a separate connecting member such as a clamp and a hose; whereas, referring to
[0052] However, as described above, in the present disclosure, the liquid transfer means 110 (corresponding to the cooling water pump 1 in embodiments of
[0053] In other words, the liquid pump 100 in the present disclosure is characterized in that the liquid transfer means 110 and the flow path change means 120 are integrally formed with each other. In the present disclosure, the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means may refer to the distribution paths connected to each other to integrally form the liquid transfer means and the flow path change means with each other.
[0054] Meanwhile, the liquid transfer means 110 and the flow path change means 120 may be a complete integral component in a manufacturing stage; alternatively, may be formed of separate components, and may be integrated by being coupled to each other. The liquid transfer means 110 and the flow path change means 120 may generally be formed of an injection-molded material such as plastic. Therefore, even though the liquid transfer means 110 and the flow path change means 120 have somewhat complicated shapes, these means may be easily manufactured as an integral component or separate components.
[0055] When the liquid transfer means 110 and the flow path change means 120 are formed as an integral component, the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means may be formed as a single common tube. The liquid transfer means 110 may embed a liquid pumping means (pump) therein; and the flow path change means 120 may generally be implemented as a valve. The liquid transfer means 110 and the flow path change means 120 may unavoidably be spaced apart from each other at a predetermined distance not to interfere with each other. In order for the liquid transfer means 110 and the flow path change means 120 to be separated from each other at a predetermined distance and to be integrally formed with each other, the body 115 of the liquid transfer means and the body 125 of the flow path change means may be formed as a single housing connected by a single tube. Here, the single tube connecting the body 115 of the liquid transfer means and the body 125 of the flow path change means to each other may correspond to the first distribution path 111 of the liquid transfer means included in the liquid transfer means 110 and may correspond to the first distribution path 121 of the flow path change means included in the flow path change means 120. As described above, The first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means are formed as a single common tube may refer to this configuration.
[0056] When the liquid transfer means 110 and the flow path change means 120 are formed as separate components, the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means, which are respectively formed in the two means, may be directly coupled to each other. Here, each of the distribution paths may be naturally formed as a separate component. However, the distribution paths may be directly coupled to each other and accordingly, the distribution paths may be coupled to each other without any additional need for separate connecting components. For example, in the liquid pump 100, as illustrated in
[0057] In addition,
Various Examples of the Coupled Portions of the Liquid Pump
[0058]
[0059] As illustrated in the exploded cross-sectional view of
[0060] In order to reduce the risk of liquid leakage at such a coupled portion, the liquid pump 100 in the present disclosure may further include a sealing member 130. Here, in the liquid pump 100, a sealing groove portion 111s of the liquid transfer means may be formed on the outer surface of the first distribution path 111 of the liquid transfer means, and a sealing groove portion 121s of the flow path change means may be formed on an inner surface of the first distribution path 121 of the flow path change means. When the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means are coupled to each other, an empty space may be formed at a portion where the sealing groove portion 111s of the liquid transfer means and the sealing groove portion 121s of the flow path change means meet together. The sealing member 130 may be provided in the space thus formed to significantly reduce the risk of the liquid leakage at the coupled portion. The sealing member 130 may be, for example, an 0-ring formed of an elastic material. In addition, since the sealing member 130 is formed of such an elastic material, the sealing member 130 may serve as a vibration attenuation function, that is, may serve to attenuate vibration generated in and transmitted from the liquid transfer means 110 to the flow path change means 120.
[0061]
[0062] As illustrated in the exploded cross-sectional view of
[0063] In the second example of the coupled portion of the liquid pump, the sealing member 130 may also be provided to reduce the risk of the liquid leakage.
[0064]
[0065] In the third example of the coupled portion of the liquid pump according to an embodiment in the present disclosure, both the thread portion 111a of the liquid transfer means and the sealing groove portion 111s of the liquid transfer means may be formed on the first distribution path 111 of the liquid transfer means. Here, the first distribution path 111 of the liquid transfer means may be formed in two stages to have different inner diameters. The sealing groove portion 111s of the liquid transfer means may be formed in a stage having a smaller inner diameter D1; and the thread portion 111a of the liquid transfer means may be formed on a stage having a greater inner diameter D2. Correspondingly, the first distribution path 121 of the flow path change means may be also formed to have different outer diameters. The sealing groove portion of the flow path change means may be formed in a stage having a smaller outer diameter and the thread portion 121a of the flow path change means may be formed on a stage having a greater outer diameter.
[0066] Through this configuration, the sealing member 130 may first be provided in the sealing groove portion 121s of the flow path change means; an end of the sealing groove portion 121s of the flow path change means may be positioned at the stage having the smaller inner diameter of the first distribution path 111 of the liquid transfer means. Thereafter, when the first distribution path 121 of the flow path change means rotates, the first distribution path 121 of the flow path change means rotates forward along the thread, and the sealing member 130 advances together to be seated in the sealing groove portion 111s of the liquid transfer means, thereby coupling and sealing the first distribution path 111 of the liquid transfer means and the first distribution path 121 of the flow path change means to each other.
[0067] Here, the liquid pump in the present disclosure may further include a locking structure preventing a rotational coupling between the liquid transfer means 110 and the flow path change means 120 from being released.
[0068]
[0069] Referring to the embodiments as described above, the locking structure for preventing a screw coupling of the liquid transfer means 110 and the flow path change means 120 from being released is described in detail. First, when the first distribution path 121 of the flow path change means may rotate forward along the thread, the one end of the locking protrusion 113 extending in the axial direction may contact an outer surface of the bent portion of the locking elastic piece 126. As the first distribution path 121 of the flow path change means continuously rotates, elasticity may be given to the locking elastic piece 126. After the first distribution path 121 of the flow path change means rotates at a predetermined angle and the one end of the locking protrusion 113 passes through the free end of the locking elastic piece 126, the one end of the locking protrusion 113 may be inserted into a gap between the free end of the locking elastic piece 126 and the locking fixing piece 127. Here, the locking protrusion 113 may not rotate any longer due to the locking fixing piece 127. In this manner, the liquid transfer means 110 and the flow path change means 120 may be locked to each other, thereby preventing the rotational coupling therebetween from being released.
Additional Configuration of the Liquid Pump
[0070] As described above, the liquid pump 100 according to an embodiment in the present disclosure is a device in which a pump and a valve are integrally formed with each other. In this case, the pump and the valve may be housed as an integral component itself or as separate components which are directly coupled to and integrated with each other. However, it is preferable that the liquid pump 100 further includes a seating member 140 to more securely fix a coupling between the pump the valve and to easily connect a pump-valve integral assembly to an outer structure.
[0071] As illustrated in
[0072] As illustrated in
[0073] Meanwhile, the liquid transfer means 110 may include a liquid pumping means provided therein with an impeller to which a motor is connected, and may further include additional components such as a connector supplying electric power to the motor and a motor receiving portion embedding the motor therein. In addition, the liquid transfer means 110 may further include a cooling pin to avoid an adverse effect that heat is generated due to rotation of the motor and thus unnecessary heating occurs in the liquid (for example, the cooling water) pumped by the liquid pump 100.
[0074] Here, as a spaced distance between the liquid transfer means 110 and the flow path change means 120 is minimized, a length of the flow path therebetween is shortened, such that adverse effects such as a pressure drop is minimized. Accordingly, it is preferable that the additional components such as the connector, the motor receiving portion and the cooling fin, as described above, are positioned in a region other than a region where the liquid transfer means 110 and the flow path change means 120 are connected to each other.
Another Embodiment of the Liquid Pump
[0075] According to another embodiment in the present disclosure, the flow path change means 120 may include a four-way valve including four distribution paths.
[0076]
[0077]
[0078]
[0079] As such, in the present disclosure, the inner flow path capable of changing the flow of the cooling water may be formed in the flow path change means and the liquid transfer means which are integrally formed with each other, and thereby reducing the package size.
[0080] According to the present disclosure, the liquid pump included in the module in which a flow path is changed depending on an operation mode may minimize the number of components, assembling tools and connected portions in the module by integrally forming the flow path change means and the liquid transfer means with each other.
[0081] In addition, the liquid pump may reduce the package size by forming the inner flow path capable of changing the flow of the cooling water in the flow path change means and the liquid transfer means which are integrally formed with each other.
[0082] In addition, the liquid pump may have a simplified assembling structure and may prevent both the cooling water leakage and the assembly loosening, when integrating the flow path change means and the liquid transfer means with each other.
[0083] As such, the number of components and assembling tools may be reduced, thereby saving resources such as manpower, cost and time for manufacturing and assembling the liquid pump. In addition, by minimizing the connected portions in the module, the risk of the cooling water leakage in the module may further be reduced as compared to the conventional module.
[0084] Although the present disclosure is shown and described with respect to specific embodiments, it is apparent to those having ordinary skill in the art that the present disclosure may be variously modified and altered without departing from the spirit and scope of the present disclosure as defined by the following claims.