SUCTION MANIFOLD FOR HYDRAULIC FRACTURING PUMP
20190219051 ยท 2019-07-18
Assignee
Inventors
- David R. Kraige (State College, PA, US)
- Jeremy E. Frank (Pine Grove Mills, PA, US)
- Gary H. Koopmann (Alexandria, VA, US)
- Blake T. Bonfanti (Argyle, TX, US)
Cpc classification
F04B11/0091
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B43/2607
FIXED CONSTRUCTIONS
F04B15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B41/00
FIXED CONSTRUCTIONS
F16L41/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A suction manifold for providing fluid flow to a pump for hydraulic fracturing includes an input port configured to receive a flow of fluid from a source, a plurality of output ports configured to direct the flow of fluid to a plurality of corresponding cylinders of the pump, and a chamber configured to direct the flow of fluid from the input port to the output ports. The input port is configured to direct the flow of fluid in a direction parallel to a direction in which the output ports direct the flow of fluid.
Claims
1. A suction manifold for providing fluid flow to a pump for hydraulic fracturing, the suction manifold comprising: an input port configured to receive a flow of fluid from a source; a plurality of output ports configured to direct the flow of fluid to a plurality of corresponding cylinders of the pump; and a chamber configured to direct the flow of fluid from the input port to the output ports, wherein the input port is configured to direct the flow of fluid in a direction parallel to a direction in which the output ports direct the flow of fluid.
2. The suction manifold of claim 1, wherein the input port is on a first lateral side of the chamber and the output ports are on a second lateral side of the chamber opposite to the first lateral side.
3. The suction manifold of claim 1, wherein the output ports are spaced apart from one another in a second direction perpendicular to a flow direction through the input port.
4. The suction manifold of claim 1, wherein the chamber has a symmetrical configuration relative to a center of the input port in a second direction perpendicular to a flow direction through the input port.
5. The suction manifold of claim 1, wherein the output ports are arranged symmetrical relative to the center of the input port in a second direction perpendicular to the direction in which the output ports direct the flow of fluid.
6. A suction manifold for providing fluid flow to a pump for hydraulic fracturing, the suction manifold comprising: an input port configured to receive a flow of fluid; a chamber configured to receive the flow of fluid via the input port; and a plurality of output ports configured to direct the flow of fluid from the chamber to a plurality of corresponding cylinders of the pump, wherein the input port is on a first lateral side of the chamber and the output ports are on a second lateral side of the chamber opposite to the first lateral side, wherein the output ports are spaced apart from one another in a first direction perpendicular to a flow direction through the input port, and wherein the chamber has a symmetrical configuration in the first direction relative to a center of the input port.
7. The suction manifold of claim 6, wherein the output ports are arranged symmetrical relative to the center of the input port
8. The suction manifold of claim 6, wherein the input port is configured to direct the flow of fluid in a direction parallel to a direction in which the output ports direct the flow of fluid.
9. A pump for hydraulic fracturing comprising: a high pressure pump power end supported on a mobile trailer having a width; a pump fluid end operatively attached to the power end so as to provide a source of high pressure fluid for injection into an oil or gas well during a standard hydraulic fracking operation; a suction manifold mounted to the fluid end, the suction manifold including an inlet port configured to receive a flow of fluid and a plurality of output ports configured to direct the flow of fluid to a plurality of corresponding cylinders of the pump power end, wherein the input port and the output ports open in a direction of the width of the mobile trailer.
10. The pump of claim 9, wherein the suction manifold further comprises a chamber configured to direct the flow of fluid from the input port to the output ports.
11. The pump of claim 9, wherein the input port is configured to direct the flow of fluid in a direction parallel to a direction in which the output ports direct the flow of fluid.
12. The pump of claim 9, wherein the input port is on a first lateral side of the chamber and the output ports are on a second lateral side of the chamber opposite to the first lateral side.
13. The pump of claim 9, wherein the output ports are spaced apart from one another in a second direction perpendicular to a flow direction through the input port.
14. The pump of claim 9, wherein the chamber has a symmetrical configuration relative to a center of the input port in a second direction perpendicular to a flow direction through the input port.
15. The pump of claim 9, wherein the output ports are arranged symmetrical relative to the center of the input port in a second direction perpendicular to the direction in which the output ports direct the flow of fluid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF EMBODIMENTS
[0035] Referring to
[0036] The pump 100 further includes a conventional suction manifold 120 that directs the fluid in a first direction X from a rear of the trailer 116 toward a front of the trailer 116. The suction manifold 120 is mounted by mounting bolts (not shown) to the fluid end 118. The bolts extend through mounting holes in the mounting plate 126 of the suction manifold 120 into mounting holes in the fluid end 118 to secure the suction manifold 120 to the fluid end 118. The suction manifold 120 includes an inlet port 130. External piping 132 is connected to the inlet port 130 in order to supply fluid to the suction manifold 120. A discharge manifold which allows for the exit of the pumped high pressure fluid is usually integral to the fluid section.
[0037] The suction manifold 120 includes five suction manifold ports 141, 142, 143, 144, 145, which are inlets to the cylinders of the pump 100. Each of the suction manifold ports 141, 142, 143, 144, 145 is fluidly coupled with a corresponding suction valve 146 of the fluid end 118, which in turn is connected with a cylinder of the pump 100. The number of ports in the suction manifold 120 is equal to the number of suction valves 146 in the pump fluid end 118 and the number of cylinders of the pump 100.
[0038] As best shown in
[0039] Referring now to
[0040] The pump 300 further includes a suction manifold 320 mounted by mounting bolts 322 to the fluid end 318. The bolts 322 extend through mounting holes in the mounting plate 326 of the suction manifold 320 into mounting holes in the fluid end 318 to secure the suction manifold 320 to the fluid end 318. The suction manifold 320 includes an inlet port 330. External piping (not shown) is connected to the inlet port 330 in order to supply fluid to the suction manifold 320.
[0041] The suction manifold 320 includes five suction manifold ports 341, 342, 343, 344, 345 spaced apart from one another in a first direction X perpendicular to the width W of the trailer 116. The suction manifold 320 directs the fluid from the inlet port 330 in the first direction X to the suction manifold ports 341, 342, 343, 344, 345. Each of the suction manifold ports 341, 342, 343, 344, 345 is fluidly coupled with a corresponding suction valve 346 of the fluid end 318, which in turn is connected with a cylinder of the pump 300. The number of ports in the suction manifold 320 is equal to the number of suction valves 346 in the pump fluid end 318 and the number of cylinders of the pump 300.
[0042] As shown in
[0043] As shown in
[0044] As described above, a dimension of the suction manifold 320 in a direction of flow from the input port 330 to the suction manifold ports 341, 342, 343, 344, 345 decreases from a center (at the input port 330) toward both ends 351, 355 of the suction manifold 320. The suction manifold 320 is configured such that fluid flows into the suction manifold 320 via the input port 330 in the first direction X that is substantially parallel to the flow through the suction manifold ports 341, 342, 343, 344, 345 to the pump.
[0045] Referring now to
[0046] As would be understood by persons skilled in the art, it is desirable to maintain the fluid velocity through the manifold 320 and into the pump cylinders within a desired range that is greater than a fallout velocity where proppant material (e.g., sand) falls out of suspension with the fluid and less than an erosional velocity that overdrives the piping system and causes excess erosion and risk of cavitation. That is, when fluid flow through the manifold 320 and into the pump cylinders is too low, the sand falls out. When fluid flow is too fast, it overdrives the piping system and causes excess erosion and risk of cavitation.
[0047] Referring to
[0048] Referring to
[0049] Because of the above features, the suction manifold 320 delivers more uniform fluid velocity throughout, allowing unimpeded fluid flow to each of the pump's cylinders, thus reducing the risk of cavitation and pump damage. In accordance with the embodiment described above, the suction manifold 320 provides a smooth path for the fluid to follow, with a direct path from the inlet port 330 of the suction manifold 320 to each of the suction manifold ports 341, 342, 343, 344, 345, without discontinuities in velocity throughout the volume, or the need for the flow to reverse on itself as the different ports open and close.
[0050] Additional embodiments include any one of the embodiments described above, where one or more of its components, functionalities or structures is interchanged with, replaced by or augmented by one or more of the components, functionalities, or structures of a different embodiment described above.
[0051] It should be understood that various changes and modifications to the embodiments described herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present disclosure and without diminishing its intended advantages. It is therefore intended that such changes and modifications be covered by the appended claims.
[0052] Although several embodiments of the disclosure have been disclosed in the foregoing specification, it is understood by those skilled in the art that many modifications and other embodiments of the disclosure will come to mind to which the disclosure pertains, having the benefit of the teaching presented in the foregoing description and associated drawings. It is thus understood that the disclosure is not limited to the specific embodiments disclosed herein above, and that many modifications and other embodiments are intended to be included within the scope of the appended claims. Moreover, although specific terms are employed herein, as well as in the claims which follow, they are used only in a generic and descriptive sense, and not for the purposes of limiting the present disclosure, nor the claims which follow.