IP Library Granted Patent US 10,641,094
Granted Patent B2
US 10,641,094 · App. 15/565,321 · Granted May 5, 2020

Pressure differential engine

Inventor: Raymond Howard Baker (Lake Forest Park, WA)
Assignee: The Centripetal Energy Company II
F01B15/002F01B13/067F01B15/005F02B57/06F02B75/32
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Quick Facts
Patent No.
US 10,641,094
App. No.
15/565,321
Granted
May 5, 2020
Kind
B2
Abstract

Highly efficient pressure differential rotary engines can include rotatable cylinders arranged radially around a central stationary shaft. Each of the cylinders can house one or more pistons, and the cylinders and pistons can rotate together about the central stationary shaft. Pressure differentials within the cylinders can be used to power the rotation of the cylinders about the central stationary shaft.

Claims (25)

1. A pressure differential engine comprising:

a cylinder rotatable about a central stationary shaft;

a piston positioned to reciprocate within the cylinder;

a rod coupled to the piston that extends through an end portion of the cylinder;

a first cam engaged with the rod so that reciprocation of the piston within the cylinder causes rotation of the first cam;

a second cam engaged with the rod so that reciprocation of the piston within the cylinder causes rotation of second cam;

a first chain that rotationally locks the first cam to the second cam; and

a second chain that rotationally locks the first cam and the second cam to the central stationary shaft.

2. The pressure differential engine of claim 1 wherein reciprocation of the piston within the cylinder causes rotation of the first cam and the second cam with respect to the cylinder.

3. The pressure differential engine of claim 2 wherein rotation of the first cam and the second cam causes the cylinder to rotate about the central stationary shaft.

4. The pressure differential engine of claim 3 wherein reciprocation of the piston within the cylinder causes rotation of the first cam and the second cam with respect to the cylinder for 360° of the rotation of the cylinder about the central stationary shaft.

5. The pressure differential engine of claim 4 wherein rotation of the first cam and the second cam causes the cylinder to rotate about the central stationary shaft for 360° of the rotation of the cylinder about the central stationary shaft.

6. The pressure differential engine of claim 1 wherein the first cam is engaged with the rod so that a first stroke of the piston in a first direction causes rotation of the first cam in a first direction about a first axis and so that a second stroke of the piston in a second direction opposite to the first direction causes rotation of the first cam in the first direction about the first axis, and wherein the second cam is engaged with the rod so that the first stroke of the piston in the first direction causes rotation of the second cam in the first direction about a second axis and so that the second stroke of the piston in the second direction causes rotation of the second cam in the first direction about the second axis.

7. The pressure differential engine of claim 1 wherein the first cam and the second cam provide an infinite inclined plane engaged with the rod.

8. The pressure differential engine of claim 1 , further comprising a second piston slidably mounted within the cylinder, the second piston rotatable about an axis parallel to and offset from the central stationary shaft.

9. A method of operating a pressure differential engine, comprising:

reciprocating a piston within a cylinder;

rotating a first cam by engaging a rod coupled to the piston with the first cam while the piston reciprocates;

rotating a second cam by engaging the rod with the second cam while the piston reciprocates;

rotationally locking the first cam to the second cam with a first chain; and

rotating the cylinder about a central stationary shaft by rotationally locking the first cam and the second cam to the central stationary shaft with a second chain.

10. The method of operating a pressure differential engine of claim 9 wherein rotating the first cam includes rotating the first cam with respect to the cylinder and rotating the second cam includes rotating the second cam with respect to the cylinder.

11. The method of operating a pressure differential engine of claim 10 wherein rotating the first cam and rotating the second cam includes engaging the rod with the first cam and with the second cam for 360° of the rotation of the cylinder about the central stationary shaft.

12. The method of operating a pressure differential engine of claim 9 , wherein rotating the first cam includes engaging the rod with the first cam so that a first stroke of the piston in a first direction causes rotation of the first cam in a first direction about a first axis and so that a second stroke of the piston in a second direction opposite to the first direction causes rotation of the first cam in the first direction about the first axis, and wherein rotating the second cam includes engaging the rod with the second cam so that the first stroke of the piston in the first direction causes rotation of the second cam in the first direction about a second axis and so that the second stroke of the piston in the second direction causes rotation of the second cam in the first direction about the second axis.

13. The method of operating a pressure differential engine of claim 9 wherein engaging the rod with the first cam and with the second cam includes engaging the rod with an infinite inclined plane formed by the first cam and the second cam.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2024
From: BAKER, RAYMOND HOWARD
To: THE CENTRIPETAL ENERGY COMPANY II
Reel/Frame 066421/0093 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2024
From: THE CENTRIPETAL ENERGY COMPANY II
To: CENTRIPETAL ENERGY, INC.
Reel/Frame 066421/0318 →
Continuity (2)
Provisional Application 62146081 · Apr 10, 2015
Related Publication 20180073363A1 · Mar 15, 2018