HEAT EXCHANGER FOR HYDRAULIC POST-TENSIONING JACK SYSTEM
20250180011 ยท 2025-06-05
Inventors
Cpc classification
F04B2205/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/195
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2205/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to an improved hydraulic pump for maintaining acceptable operating temperatures for hydraulic fluid used in a post-tensioning jack system for post-tensioning concrete. Embodiments include a pump unit with a fan and a heat exchanger. The heat exchanger may be located directly below the motor for the pump and a fan unit; other embodiments include a heat exchanger may be located on a side of the pump with a co-located fan unit. The pump unit may be portable and battery powered. The pump unit may include a digital display for input and output of operating parameters.
Claims
1. A hydraulic pump unit, comprising: a hydraulic pump; a fan; and a cooling coil configured to allow for hydraulic fluid to flow through and heat exchange with surrounding atmosphere.
2. The hydraulic pump unit of claim 1, further comprising: an electric motor mechanically coupled via a shaft to the fan and the hydraulic pump to provide power to the fan and the hydraulic pump.
3. The hydraulic pump unit of claim 1, wherein the cooling coil is located directly beneath the fan.
4. The hydraulic pump unit of claim 3, wherein the cooling coil is located directly over the hydraulic pump.
5. The hydraulic pump unit of claim 1, further comprising: a hydraulic valve block controlled by a solenoid, the hydraulic valve block being fluidly coupled with the hydraulic pump and external hydraulic fluid connections to allow for flow of hydraulic fluid.
6. The hydraulic pump unit of claim 5, wherein the external hydraulic fluid connections are to a device configured for tensioning tendons for concrete post-tensioning operations.
7. The hydraulic pump unit of claim 2, further comprising: a detachable battery pack providing power to the electric motor.
8. The hydraulic pump unit of claim 1, wherein the hydraulic pump unit is configured to be portable.
9. The hydraulic pump unit of claim 1 further comprising: a display screen for display of pump and system operating parameters comprising at least pressure.
10. A hydraulic pump unit, comprising: a hydraulic pump; a fan; an electric motor mechanically coupled via a shaft to the fan and the hydraulic pump to provide power to the fan and the hydraulic pump; and a cooling coil located directly beneath the fan and over the hydraulic pump and that is fluidly coupled to the hydraulic pump to allow for hydraulic fluid to flow through and heat exchange with surrounding air.
11. The hydraulic pump unit of claim 10, further comprising: a hydraulic valve block controlled by a solenoid, the hydraulic valve block being fluidly coupled with the hydraulic pump and external hydraulic fluid connections to allow for flow of hydraulic fluid.
12. The hydraulic pump unit of claim 11, wherein the external hydraulic fluid connections are to a device configured for tensioning tendons for concrete post-tensioning operations.
13. The hydraulic pump unit of claim 10, further comprising: a detachable battery pack providing power to the electric motor.
14. The hydraulic pump unit of claim 13, wherein the hydraulic pump unit is configured to be portable.
15. The hydraulic pump unit of claim 10, further comprising: a display screen for display of pump and system operating parameters comprising at least pressure.
16. A hydraulic pump unit, comprising: a hydraulic pump; and a heat exchanger unit fluidly coupled to the hydraulic pump and externally mounted to the hydraulic pump unit, comprising: a fan; and a cooling coil configured to allow for hydraulic fluid to flow through and heat exchange with surrounding air.
17. The hydraulic pump unit of claim 16, wherein the heat exchanger unit external mounting location is on a side of the hydraulic pump unit.
18. The hydraulic pump unit of claim 16, further comprising: a hydraulic valve block controlled by a solenoid, the hydraulic valve block being fluidly coupled with the hydraulic pump and external hydraulic fluid connections to allow for flow of hydraulic fluid.
19. The hydraulic pump unit of claim 18, wherein the external hydraulic fluid connections are to a device configured for tensioning tendons for concrete post-tensioning operations.
20. The hydraulic pump unit of claim 16, further comprising: a detachable battery pack providing power.
21. The hydraulic pump unit of claim 16, wherein the hydraulic pump unit is configured to be portable.
22. The hydraulic pump unit of claim 16, further comprising: a display screen for display of pump and system operating parameters comprising at least pressure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Various embodiments of the present disclosure, together with further objects and advantages, may best be understood by reference to the following description taken in conjunction with the accompanying drawings.
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[0038] These and other objects, features and advantages of the exemplary embodiments of the present disclosure will become apparent upon reading the following detailed description of the exemplary embodiments of the present disclosure, when taken in conjunction with the appended paragraphs.
DETAILED DESCRIPTION
[0039] Exemplary embodiments of the invention will now be described in order to illustrate various features of the invention. The embodiments described herein are not intended to be limiting as to the scope of the invention, but rather are intended to provide examples of the components, use, and operation of the invention.
[0040] It is an object of the present invention to provide a hydraulic pump with integrated cooling that improves upon the prior art, such as depicted in
[0041] In exemplary embodiments, the pump may be used for stressing of tendons for concrete tensioning (e.g., post-tensioning) through providing hydraulic power to a stressing jack or a shear for tendon tail cutting. In such usage, up to 8000 psi of tension may be required. By providing an integrated cooling system, the need for external cooling can be reduced or eliminated. In exemplary embodiments, the integrated cooling may be provided by a coil located proximal the hydraulic pump and reservoir. In certain embodiments the coil may be located under a fan which provides air cooling; the fan may be directly coupled to the pump motor. In certain embodiments, the coil may be located external to the pump unit such as located to the side of the pump unit with a fan collocated with the coil. The pump may be battery powered and may be portable. It should be appreciated that the coil provides for heat exchange between the hydraulic fluid and the surrounding atmosphere (i.e., surrounding air).
[0042] Referring to
[0043] The pump unit 100 has a hydraulic valve block 108 with a solenoid 110 for actuation. The hydraulic valve block 108 has ports112a, 112b, 112c. Port 112a is the high pressure port (PS); 112b is the cylinder A (P) port, 112c is the cylinder B(R) port. The ports 112a, b, c each include releasable connections to allow for ease of attachment/detachment of external hoses. It should be appreciated that other port configurations are possible. Further, the various components of the pump unit may be detachable to allow for disassembly to facilitate repair and maintenance activities. In various embodiment, other types of port connections and configurations may be used based on the needs of the pump application.
[0044] In exemplary embodiments, the pump has a display 114 that is touch capable to provide for operational input, as well as display of pump status and system operating parameters (e.g., temperature, pressure, battery status, etc.). The display may be digital and may be of any suitable screen type such as LED. Memory storage may be provided to allow for data on usage and operations to be stored and later retrieved. In various embodiments, the pump unit 100 may have a wireless connection (e.g., WIFI and/or Bluetooth) to enable remote control and/or monitoring of the pump operation from a computing device such as, but not limited to, a laptop, a tablet, and/or smartphone. In various embodiments, the display 114 may be movable between different positions to allow for lowering the display for transport as well as positioning to allow for a certain viewing angle when in use. A pressure sensor 130 is mounted to the valve block 108 as best shown in
[0045] The lower section 116 contains a pump 128 (e.g., a TX 1101 pump) within its internal volume 134 (as shown in
[0046] In exemplary embodiments, the pump unit 100 includes an integrated cooling system. Below the motor 102 is a cowling 118 as can be seen in
[0047] As shown in
[0048] As can be seen in
[0049] Referring to
[0050] The pump unit 200 has a hydraulic valve block 208 with a solenoid 210 for actuation. The hydraulic valve block 208 includes a valve assembly and a sensor assembly. The sensor assembly may include a temperate and pressure sensor. The ports include releasable connections to allow for ease of attachment/detachment of external hoses. The port connections on the solenoid may be standard hydraulic connections. It should be appreciated that the port connections depicted are exemplary and other port configurations are possible. Further, the various components of the pump unit may be detachable to allow for disassembly to facilitate repair and maintenance activities. The pump unit 200 may have a flow meter assembly 212. The ports of the solenoid 210 are exemplary and can be in any configuration suitable to support the operation of the pump unit 200.
[0051] In exemplary embodiments, the pump has a display 214 that is touch capable to provide for operational input, as well as display of pump status and system operating parameters (e.g., temperature, pressure, battery status, etc.). The display may be digital and may be of any suitable screen type such as LED. Memory storage may be provided to allow for data on usage and operations to be stored and later retrieved. In various embodiments, the pump unit 200 may have a wireless connection (e.g., WIFI and/or Bluetooth) to enable remote control and/or monitoring of the pump operation from a computing device such as, but not limited to, a laptop, a tablet, and/or smartphone. In various embodiments, the display 214 is movable between different positions to allow for lowering the display for transport as well as positioning to allow for a certain viewing angle when in use. For example,
[0052] The lower section 216 has a top cover assembly 238. Mounted to the lower side of the top cover assembly 238 is a pump 220 (e.g., a TX 1101 pump). The pump 220 is contained within the internal volume 222 of the lower section 216. The pump may be any suitable pump for the application (i.e., hydraulic power). In exemplary embodiments, the pump 220 is mounted to the top cover assembly as shown. For example, the pump may be a piston pump. Other types of pumps (e.g., gear, vane) may be used. The lower section 216 may be a single cast pan. The lower section 216 can include fins 232 on its exterior surface to assist with heat exchange. The internal volume 222 serves as a hydraulic fluid reservoir.
[0053] In exemplary embodiments, the pump unit 200 includes an integrated cooling system. Below the motor 202 is a fan 224 and below the fan 224 is a coil 226 for cooling of the hydraulic fluid. The cooling may be achieved through heat exchange with the atmosphere. The coil 226 may be spiral wound. The coil may have terminations 228a and 228b, that are co-located and that are in fluid communication with the pump 220 and/or solenoid 210 to allow fluid to enter and leave the coil to be cooled. The coil may serve as a heat exchanger. The coil may also be referred to as a cooling coil or spiral cooler. The pump unit 200 may also include a proportional valve 230. As can be seen in
[0054] The fan 224 is located above and over the coil 226. The fan 224 is attached to a drive shaft 236 of the motor 202 (as can be seen in
[0055] Another exemplary embodiment may be seen in
[0056] The cooling coil unit 304 may have connections for hoses to connect it into the hydraulic fluid loop. In some embodiments, the cooling coil unit may be directly connected into the hydraulic fluid reservoir of the hydraulic pump 302.
[0057] A housing 308 is installed over the heat exchanger and fan to protect them from damage due to impacts at the worksite, in transportation, etc. The housing 308 is attached via fasteners to the pump unit. For example, four fasteners may be used positioned on the corners of the housing 308. The fasteners may be any suitable type such as rivets, screws, bolts, etc. The housing 308 has sufficient venting 310 to allow for efficient operation of the fan and thereby optimal heat transfer out of the hydraulic fluid and into the ambient air. For example, exemplary embodiments of the housing may include vents, louvers, etc. in one or more side surfaces that may allow for ingestion of ambient air when the fan is configured to push air through the heat exchanger. In this scenario, the heat exchanger may be mounted to the pump body with sufficient clearance to allow for air to easily pass through the heat exchanger. In yet other embodiments, there may be vents in the face of the housing, as illustrated. These vents may be in addition to or in place of the vents in the sides of the housing. In scenarios where the fan is configured to pull air through the heat exchanger, that air may then exhaust through the vents in the housing. In order to ensure sufficient air flow through the heat exchanger, it may be installed onto the pump body with standoffs or other means to create sufficient clearance between the pump body and heat exchanger for unrestricted air flow through the heat exchanger.
[0058] The pump unit has a hydraulic valve with a solenoid. The valve depicted is exemplary and other valves may be used. The pump unit 300 has a analog gauge for pressure 312. In some embodiments, this may be replaced with a digital display that is touch capable to provide for operational input, as well as display of pump status and system operating parameters (e.g., temperature, pressure, battery status, etc.). Memory storage may be provided to allow for data on usage and operations to be stored and later retrieved. In various embodiments, the pump unit may have a wireless connection (e.g., WIFI and/or Bluetooth) to enable remote control and/or monitoring of the pump operation from a computing device such as, but not limited to, a laptop, a tablet, and/or smartphone.
[0059] Although embodiments of the present invention have been described herein in the context of a particular implementation in a particular environment for a particular purpose, those skilled in the art will recognize that its usefulness is not limited thereto and that the embodiments of the present invention can be beneficially implemented in other related environments for similar purposes. The invention should therefore not be limited by the above described embodiments, method, and examples, but by all embodiments within the scope and spirit of the invention as claimed.
[0060] Further, it is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. The terms a or an as used herein, are defined as one or more than one.
[0061] In the invention, various embodiments have been described with references to the accompanying drawings. It may, however, be evident that various modifications and changes may be made thereto, and additional embodiments may be implemented, without departing from the broader scope of the invention as set forth in the claims that follow. The invention and drawings are accordingly to be regarded in an illustrative rather than restrictive sense.