IP Library Granted Patent US 11,346,340
Granted Patent B2
US 11,346,340 · App. 16/943,864 · Granted May 31, 2022

Fluid end crossbore

Inventor: Johnny Eric DeLeon, II (Fort Worth, TX)
Assignee: SPM OIL & GAS INC.
F04B53/16F04B15/04F04B53/1032F04B53/1087F05B2220/20F05B2230/10F05B2250/314F05B2260/406F05B2260/95
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Quick Facts
Patent No.
US 11,346,340
App. No.
16/943,864
Granted
May 31, 2022
Kind
B2
Abstract

A fluid cylinder for a reciprocating pump includes a body having inlet, outlet, and plunger bores. The inlet and outlet bores extend coaxially along a fluid passage axis. The plunger bore extends along a plunger bore axis that extends at an angle relative to the fluid passage axis. The body includes a crossbore at the intersection of the fluid passage axis and the plunger bore axis. The crossbore intersects the inlet, outlet, and plunger bores at respective inlet, outlet, and plunger bore ends. The inlet bore end and outlet bore ends are connected to the plunger bore end at respective first and second corners of the crossbore. The first corner includes a first linear bridge segment connected to the inlet and plunger bore ends by corresponding curved segments. The second corner includes a second linear bridge segment connected to the outlet and plunger bore ends by corresponding curved segments.

Claims (32)

1. A fluid cylinder for a reciprocating pump, said fluid cylinder comprising:

a body comprising an inlet bore, an outlet bore, a plunger bore, and a crossbore extending through the body,

the crossbore fluidly connecting the inlet bore, the outlet bore, and the plunger bore and intersecting the inlet bore, the outlet bore, and the plunger bore at an inlet bore end, an outlet bore end, and a plunger bore end, respectively; and

wherein the inlet bore end is connected to the plunger bore end at a first corner of the crossbore, the first corner comprising a first linear bridge segment that is connected to the inlet bore end and the plunger bore end by corresponding curved segments.

2. The fluid cylinder of claim 1 , wherein the outlet bore end is connected to the plunger bore end at a second corner of the crossbore, the second corner comprising a second linear bridge segment that is connected to the outlet bore end and the plunger bore end by corresponding curved segments.

3. The fluid cylinder of claim 2 , wherein the first corner and the second corner have substantially the same geometry as each other.

4. The fluid cylinder of claim 2 , wherein the body further comprises a face extending over the crossbore, the face comprising a plunger side that extends from the first corner to the second corner, an inlet side that extends from the first corner along the inlet bore end, and an outlet side that extends from the second corner along the outlet bore end, wherein a midpoint of the face is approximately equidistant from the first corner and the second corner.

5. The fluid cylinder of claim 2 , wherein the body further comprises an access bore extending through the body, the crossbore intersecting the access bore at an access bore end,

wherein the access bore end is connected to one of the inlet bore end and the outlet bore end at a third corner of the crossbore, the third corner comprising a third linear bridge segment that is connected to the access bore end and the one of the inlet bore end and the outlet bore end by corresponding curved segments.

6. The fluid cylinder of claim 5 , wherein the access bore end is connected to the other of the inlet bore end and the outlet bore end at a fourth corner of the crossbore, the fourth corner comprising a fourth linear bridge segment that is connected to the access bore end and the other of the inlet bore end and the outlet bore end by corresponding curved segments.

7. The fluid cylinder of claim 6 , wherein the third corner and the fourth corner have substantially the same geometry as each other.

8. The fluid cylinder of claim 6 , wherein the inlet bore and the outlet bore extend through the body approximately coaxial along a fluid passage axis, wherein the plunger bore and the access bore extend through the body approximately coaxial along a plunger bore axis that extends at an angle relative to the fluid passage axis,

wherein the third linear bridge segment extends at corresponding angles relative to the plunger bore axis and the fluid passage axis that add up to no greater than approximately 90°, and the fourth linear bridge segment extends at corresponding angles relative to the plunger bore axis and the fluid passage axis that add up to no greater than approximately 90°.

9. The fluid cylinder of claim 1 , wherein the inlet bore and the outlet bore extend through the body approximately coaxial along a fluid passage axis, wherein the plunger bore extends through the body along a plunger bore axis that extends at an angle relative to the fluid passage axis, wherein the crossbore is positioned at an intersection of the fluid passage axis and the plunger bore axis.

10. The fluid cylinder of claim 9 , wherein the first linear bridge segment extends at corresponding angles relative to the plunger bore axis and the fluid passage axis that add up to no greater than approximately 90°.

11. The fluid cylinder of claim 9 , wherein the first linear bridge segment of the first corner extends at an angle of approximately 45° relative to the plunger bore axis and an angle of approximately 45° relative to the fluid passage axis.

12. The fluid cylinder of claim 9 , wherein the body further comprises a face extending over the crossbore, the face comprising a plunger side that extends from the first corner to the second corner, an inlet side that extends from the first corner along the inlet bore end, and an outlet side that extends from the second corner along the outlet bore end, wherein a midpoint of the face is approximately aligned with the intersection of the fluid passage axis and the plunger bore axis.

13. The fluid cylinder of claim 1 , wherein the body of the fluid cylinder is configured to be formed and assembled as a part of the reciprocating pump without undergoing a manual hand blending process.

14. A fluid cylinder for a reciprocating pump, said fluid cylinder comprising:

a body comprising an inlet bore, an outlet bore, a plunger bore, and a crossbore extending through the body,

the crossbore fluidly connecting the inlet bore, the outlet bore, and the plunger bore and intersecting the inlet bore, the outlet bore, and the plunger bore at an inlet bore end, an outlet bore end, and a plunger bore end, respectively; and

wherein the outlet bore end is connected to the plunger bore end at a corner of the crossbore, the corner comprising a linear bridge segment that is connected to the outlet bore end and the plunger bore end by corresponding curved segments.

15. The fluid cylinder of claim 14 , wherein the inlet bore and the outlet bore extend through the body approximately coaxial along a fluid passage axis, wherein the plunger bore extends through the body along a plunger bore axis that extends at an angle relative to the fluid passage axis, wherein the crossbore is positioned at an intersection of the fluid passage axis and the plunger bore axis.

16. The fluid cylinder of claim 15 , wherein the linear bridge segment extends at corresponding angles relative to the plunger bore axis and the fluid passage axis that add up to no greater than approximately 90°.

17. The fluid cylinder of claim 15 , wherein the linear bridge segment of the corner extends at an angle of approximately 45° relative to the plunger bore axis and an angle of approximately 45° relative to the fluid passage axis.

18. A method for fabricating a fluid cylinder for a reciprocating pump, said method comprising:

forming a crossbore within a body of the fluid cylinder such that an inlet bore, an outlet bore, and a plunger bore of the fluid cylinder fluidly communicate with each other; and

machining a first corner of the crossbore that connects the plunger bore to one of the inlet bore and the outlet bore, wherein machining the body of the fluid cylinder to define the first corner of the crossbore comprises:

machining a first linear bridge segment of the first corner such that the first linear bridge segment is connected to the plunger bore and the one of the inlet bore and the outlet bore by corresponding curved segments.

19. The method of claim 18 , further comprising machining a second corner of the crossbore that connects the plunger bore to the other of the inlet bore and the outlet bore, wherein machining the body of the fluid cylinder to define the second corner of the crossbore comprises:

machining a second linear bridge segment of the second corner such that the second linear bridge segment is connected to the plunger bore and the other of the inlet bore and the outlet bore by corresponding curved segments.

20. The method of claim 18 , wherein the fluid cylinder is configured such that fabricating the fluid cylinder for assembly as a part of the reciprocating pump is performed without undergoing a manual hand blending process.

Assignments (2)
CHANGE OF NAME Recorded Nov 16, 2021
From: S.P.M. FLOW CONTROL, INC.
To: SPM OIL & GAS INC.
Reel/Frame 058162/0211 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2020
From: DELEON, JOHNNY ERIC, II
To: S.P.M. FLOW CONTROL, INC.
Reel/Frame 053359/0994 →
Continuity (3)
Continuation 16144155 · Sep 27, 2018
Provisional Application 62565823 · Sep 29, 2017
Related Publication 20200355182A1 · Nov 12, 2020
Cited By (3)
US 12,590,578 US 12,710,036 US 12,710,038