WATER TRANSFER APPARATUS CAPABLE OF HIGH-PRESSURE DISCHARGE
20180179740 ยท 2018-06-28
Inventors
Cpc classification
E03B11/00
FIXED CONSTRUCTIONS
E03F5/22
FIXED CONSTRUCTIONS
F04B1/0538
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a water transfer apparatus capable of high-pressure discharge, which allows for effectively transferring water to high-rise buildings or remote places which are difficult to supply water, or factories requiring a large amount of water, etc. by discharging water from a water tank at high pressure by means of a plurality of pressurized exhaust apparatuses. That is, the present invention comprises: a water tank in which water is stored; a plurality of pressurized exhaust apparatuses installed inside the water tank; a plurality of exhaust pipes connected to the outlets of the pressurized exhaust apparatuses; a water collection part, connected to the plurality of exhaust pipes, in which joined water is collected at high pressure and which has a shape tapering toward a discharge direction; and a discharge part, installed at the tapered end of the water collection part, through which high-pressure water is discharged, wherein the pressurized exhaust apparatuses comprise: storage parts in which the water in the water tank is held through an inlet port; pressurizing members which exhaust the water in the storage parts toward the outlets; and hydraulic operation parts configured to elevate the pressurizing members.
Claims
1. A water transfer apparatus capable of high-pressure discharge, the water transfer apparatus comprising: a water tub 100 which stores water; multiple pressure discharge devices 200 which are installed in the water tub 100, wherein each of the pressure discharge devices 200 includes a storage unit 210 which accommodates the water introduced from the water tub 100 through an inlet port 211, a pressurizing member 220 which discharges the water accommodated in the storage unit 210 in a direction toward a discharge port 212, and a hydraulic operating unit 230 which moves the pressurizing member 220 upward and downward, the storage unit 210 is fixedly installed to be spaced apart from a bottom of the water tub 100 so as to be submerged in the water in the water tub 100, and the hydraulic operating unit 230 is fixedly installed outside the water in the water tub 100; multiple discharge pipes 300 which are connected to the discharge ports 212 of the pressure discharge devices 200; a water collecting unit 400 which is connected to the multiple discharge pipes 300 to collect the merged water at high pressure and has a shape that is gradually narrowed in a discharge direction; and a discharge unit 500 which is installed at a narrowed end portion of the water collecting unit 400 and discharges high-pressure water, wherein the pressure discharge devices 200 are configured as a single set S in which the multiple pressure discharge devices 200 are connected to the single discharge pipe 300, the sets S of the pressure discharge devices 200 are provided in parallel such that the pressure discharge devices 200 are installed to be arranged in front, rear, left, and right directions, and the multiple pressure discharge devices 200 included in the single set S sequentially perform pressurization operations to continuously discharge the water in the storage units 210 to the discharge pipe 300.
2. The water transfer apparatus of claim 1, wherein the number of multiple pressure discharge devices 200 included in the single set S is at least three.
3. The water transfer apparatus of claim 1, further comprising: a recovery flow path 600 which is connected to the water tub 100 and allows the water to be introduced into the water tub 100 from the outside.
Description
DESCRIPTION OF DRAWINGS
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] Hereinafter, an exemplary embodiment of the present invention will be described in detail with reference to the accompanying drawings. In the description of the present invention, the specific descriptions of publicly known related functions or configurations will be omitted when it is determined that the specific descriptions may unnecessarily obscure the subject matter of the present invention.
[0023] As illustrated in
[0024] The water tub 100 is installed in a place such as a water intake pool having a large amount of water and has a comparatively large size to store a large amount of water, and the multiple pressure discharge devices 200 are installed in the water tub 100 so as to discharge a large amount of water stored in the water tub 100 to the outside at high pressure. Further, a recovery flow path 600 may be connected to the water tub 100 so as to introduce water from the outside and supplement the water.
[0025] The pressure discharge device 200 is a cylinder type device which broadly includes the storage unit 210, the pressurizing member 220, and the hydraulic operating unit 230 and introduces and discharges the water. The hydraulic operating unit 230 reciprocates by hydraulic pressure supplied from a hydraulic motor which is fixed to an upper portion of the water tub 100 and separately installed. The pressurizing member 220 moves upward and downward in a state in which the pressurizing member 220 is in close contact with an inner wall of the storage unit 210 in order to introduce the water into the storage unit 210 and discharge the water to the discharge pipe 300. The storage unit 210 is fixedly installed to be spaced apart from a bottom of the water tub 100 so as to be submerged in the water in the water tub 100. The inlet port 211 is formed at a lower side of the storage unit 210 so that the water is introduced directly into the storage unit 210, temporarily stored in the storage unit 210, and then discharged to the discharge port 212.
[0026] The storage unit 210 of the present invention is directly installed in the water tub 100 instead of being connected to the water tub 100 through a separate pipeline, and as a result, the water may quickly flow into and fill the water tub 100 when introducing the water by using the pressurizing member 220, and the installation structure may be simplified. In addition, the storage unit 210 is installed to be submerged in the water so that the water in the water tub 100 may be introduced directly into the storage unit 210, but a problem of a breakdown caused by water does not occur because the hydraulic operating unit 230, which substantially performs the pressurization operation by means of hydraulic pressure, is fixed outside the water in the water tub 100.
[0027] In addition, check valves 240 are installed in the inlet port 211 and the discharge port 212 of the storage unit 210, respectively, such that the discharge port 212 is closed when the inlet port 211 is opened, and the discharge port 212 is opened when the inlet port 211 is closed. The check valves 240 are configured to be closed reversely with respect to each other, thereby enabling the introduction process and the discharge process to be smoothly and alternately performed.
[0028]
[0029] As illustrated in
[0030] Further, the number of multiple pressure discharge devices 200 included in the single set S may be at least three. Two pressure discharge devices 200 may be provided to continuously discharge the water by alternately moving the pressurizing members upward and downward. However, in this case, delay time occurs between a point in time at which the introduction process ends and a point in time at which the discharge process ends, and as a result, at least three pressure discharge devices 200 are installed to minimize the delay time.
[0031] The water collecting unit 400 of the present invention is connected to the multiple discharge pipes 300 to collect the water at high pressure, and has a shape that is gradually narrowed in the discharge direction, such that the water is discharged at high pressure through the discharge unit 500, and as a result, a large amount of water may be easily transferred to remote places.
[0032] An operation of the water transfer apparatus capable of high-pressure discharge according to the present exemplary embodiment, which is configured as described above, will be described below.
[0033] As illustrated in
[0034] When the water in the storage unit 210 is completely discharged as the pressurizing member 220 reaches the bottom of the storage unit 210 as described above, the pressurizing member 220, which is in close contact with the inner wall of the storage unit 210, moves upward again, such that the storage unit 210 is filled with the water introduced from the water tub 100 through the inlet port 211. In this case, the check valve 240 in the inlet port 211 is opened, and the check valve 240 in the discharge port is closed. As described above, the pressurizing member 220 reciprocates to enable the water in the water tub 100 to be collected in the water collecting unit 400 through the discharge pipe 300. The multiple pressure discharge devices 200, in which the reciprocating motions are performed, are installed in the water tub 100, thereby transferring a large amount of water.
[0035] Further, as illustrated in
[0036] Further, as illustrated in
[0037] In addition, the water in the water tub 100 may be supplemented from the outside through the recovery flow path 600. Water level sensors are installed at predetermined heights in order to prevent the water from overflowing the water tub 100 or from being insufficient, thereby controlling the water being supplemented through the recovery flow path 600.
[0038] The present invention configured as described above may provide a technology that may transfer a large amount of water at high pressure, which cannot be implemented by an impeller type pump in the related art, and may improve water transfer efficiency with respect to electric power.
[0039] While the present invention has been described with reference to the exemplary embodiment, various modifications may be made within the technical spirit and the scope of the present invention.