IP Library Granted Patent US 9,863,396
Granted Patent B2
US 9,863,396 · App. 14/685,674 · Granted Jan 9, 2018

Systems and methods for generating energy

Inventor: Gary Joseph Oncale (Humble, TX)
F03B15/06F03B3/04F03B11/004F03B13/00F05B2220/20F05B2220/602Y02B10/50Y02E10/223Y02E10/226
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Quick Facts
Patent No.
US 9,863,396
App. No.
14/685,674
Granted
Jan 9, 2018
Kind
B2
Abstract

Examples of the present disclosure are related to systems and methods for utilizing effluent pipeline to generate energy. More particularly, embodiments disclose positioning a turbine within a bypass pipeline, wherein the bypass pipeline has a greater diameter than the effluent pipeline.

Claims (43)

1. An effluent to energy system comprising:

an effluent pipeline configured to transport fluid, the effluent pipeline having a first diameter;

a bypass pipeline having a first end and a second end, the first end being an inlet configured to receive the fluid from the effluent pipeline, the second end being an outlet configured to outlet the fluid into the effluent pipeline, the bypass pipeline having a second diameter, wherein the second diameter is greater than the first diameter;

a turbine positioned within the bypass pipeline, the turbine being configured to turn to generate energy, the turbine including a blade having a third diameter, the third diameter being greater than the first diameter and less than the second diameter; and

a control valve positioned at a divergent point between the bypass pipeline and the effluent pipeline, the control valve being configured to control a flow of fluid through the bypass pipeline to dynamically change a rate of rotation of the turbine.

2. The effluent to energy system of claim 1 , wherein when the effluent to energy system has a surplus of the fluid, the fluid is transported through both the effluent pipeline and the bypass pipeline.

3. The effluent to energy system of claim 1 , wherein when the effluent to energy system has a limited supply of fluid, the fluid is transported through only the bypass pipeline and the fluid is not transported through the effluent pipeline.

4. The effluent to energy system of claim 1 , including:

a plurality of blades coupled to the turbine; and

a waste gate coupled to at least one of the blades, the waste gate being configured to be raised to decrease a surface area of the blade or lowered to decreased the surface area of the blade.

5. The effluent to energy system of claim 4 , wherein when the waste gates are lowered the flow of fluid through the bypass pipeline increases, and when the waste gates are raised the flow of fluid through the bypass pipeline decreases and the rate of rotation of the turbine increases.

6. The effluent to energy system of claim 4 , including:

louvers configured to direct an angle of the flow of fluid contacting the plurality of blades.

7. The effluent to energy system of claim 1 , wherein the turbine is configured to be submersed in the flow of fluid through bypass pipeline.

8. The effluent to energy system of claim 1 , wherein the turbine is configured to be rotated based on a pressure differential across the bypass pipeline.

9. The effluent to energy system of claim 1 , wherein the turbine is configured to be rotated based on the flow of fluid across the bypass pipeline.

10. The effluent to energy system of claim 1 , including:

a drive shaft configured to transmit torque generated by the turbine to a generator, the drive shaft being positioned off-center from an axis of rotation of the turbine and perpendicular to the blade of the turbine.

11. A method of generating energy comprising:

transporting fluid through an effluent pipeline having a first diameter;

receiving the fluid at a first end of a bypass pipeline from the effluent pipeline;

outputting the fluid into the effluent pipeline from a second end of the bypass pipeline, the bypass pipeline having a second diameter, wherein the second diameter is greater than the first diameter;

positioning a turbine within the bypass pipeline;

generating energy by rotating the turbine, the turbine including blades having a third diameter, the third diameter being greater than the first diameter and less than the second diameter; and

controlling a flow of fluid through the bypass pipeline to dynamically change a rate of rotation of the turbine.

12. The method of claim 11 , including:

transporting the fluid through both the effluent pipeline and the bypass pipeline when there is a surplus of fluid.

13. The method of claim 11 , including:

transporting the fluid through only the bypass pipeline and not through the effluent pipeline when there is a limited supply of the fluid.

14. The method of claim 11 , including:

coupling a plurality of blades to the turbine; and

raising and lowering a waste gate coupled to at least one of the blades, the waste gate being raised to decrease a surface area of the blade or lowered to decreased the surface area of the blade.

15. The method of claim 14 , including:

lowering the waste gate to increase the flow of fluid through the bypass pipeline increases; and

raising the waste gate to decrease the flow of fluid through the bypass pipeline decreases and increase the rate of rotation of the turbine.

16. The method of claim 14 , including:

positioning louvers to direct an angle of the flow of fluid contacting the plurality of blades.

17. The method of claim 11 , including:

submersing the turbine in the flow of fluid through bypass pipeline.

18. The method of claim 11 , wherein the turbine is configured to be rotated based on a pressure differential across the bypass pipeline.

19. The method of claim 11 , wherein the turbine is configured to be rotated based on the flow of fluid across the bypass pipeline.

20. The method of claim 11 , including:

transmitting torque via a drive shaft coupled to the turbine when the turbine is rotated, the drive shaft being positioned off-center from an axis of rotation of the turbine and perpendicular to the blade of the turbine.

Continuity (3)
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