IP Library Granted Patent US 10,250,184
Granted Patent B2
US 10,250,184 · App. 15/275,251 · Granted Apr 2, 2019

Enhanced solar panels, liquid delivery systems and associated processes for solar energy systems

Inventors: Ronald M. Newdoll (Woodside, CA); Argil E. Shaver, II (Menlo Park, CA)
Assignee: Accurate Solar Power, LLC
H02S40/10B08B3/024B08B3/04F24S40/20H01L31/02021H01L31/0481H01L31/0521H02S40/32H02S40/425H02S50/00H02S50/10Y02E10/40Y02E10/50
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,250,184
App. No.
15/275,251
Granted
Apr 2, 2019
Kind
B2
Abstract

Fluid delivery systems and related structures and processes are provided, such as for use with water, treated water, and/or a cleaning solution, for any of cleaning, cooling or any combination thereof, for one or more solar panels in a power generation environment. Enhanced coatings are provided for the incident surface of solar panels, such as to avoid build up of dirt, scale, or other contaminants, and/or to improve cleaning performance. Reclamation, filtration, and reuse structures are preferably provided for the delivered fluid, and seal structures may preferably be implemented between adjoining panels, to minimize loss of the delivered water or cleaning solution.

Claims (50)

1. A power generation system, comprising:

a server;

a plurality of solar power panels, each comprising:

a plurality of DC power cells, and

a control module comprising input connections connected to the plurality of DC power cells, output connections, a signal processing circuit connected to the input connections and to the output connections, and a controller connected to the signal processing circuit, wherein the control module is configured to track one or more operating parameters for a corresponding solar power panel, and to send a data signal to the server, wherein the data signal corresponds to the one or more tracked operating parameters;

at least one inverter having input DC terminals, output AC terminals, and an inverter circuit connected to the input DC terminals and output AC terminals; and

a fluid delivery mechanism configured to distribute a liquid over an outer surface of at least a portion of the plurality of solar power panels;

wherein the server is configured to monitor an efficiency and a temperature of one or more of the plurality of solar power panels based upon the received data signals, and to send a respective control signal to the fluid delivery mechanism when each of:

the monitored efficiency is less than or equal to an efficiency setpoint, or

the monitored temperature exceeds a temperature setpoint; and

wherein the fluid delivery mechanism is controllably activated upon receipt of the control signal sent when the monitored efficiency is less than or equal to the efficiency setpoint or the monitored temperature exceeds the temperature setpoint.

2. The power generation system of claim 1 , wherein the fluid delivery mechanism is activated for any of cleaning or cooling of the plurality of solar power panels.

3. The power generation system of claim 1 , wherein the liquid comprises water.

4. The power generation system of claim 3 , wherein the liquid further comprises a cleaning solution.

5. The power generation system of claim 1 , wherein the plurality of solar power panels has an upper incident surface for receiving incoming light, and wherein any of a hydrophilic layer or a hydrophobic layer is applied to the upper incident surface of one or more of the plurality of solar power panels.

6. The power generation system of claim 5 , wherein the hydrophilic layer comprises titanium oxide.

7. The power generation system of claim 5 , wherein the hydrophobic layer comprises any of silicon oxide or a fluoropolymer.

8. The power generation system of claim 1 , wherein the plurality of solar power panels has an upper incident surface for receiving incoming light, and wherein an interference layer is applied to the upper incident surface of one or more of the plurality of solar power panels to promote light penetration through the upper incident surface.

9. The power generation system of claim 1 , wherein the tracked operating parameters comprise any of temperature, voltage, or power.

10. The power generation system of claim 1 , further comprising:

a recovery system for collecting and storing at least a portion of the distributed liquid.

11. The power generation system of claim 10 , wherein the recovery system further comprises a filter for filtering the collected distributed liquid.

12. The power generation system of claim 1 , further comprising:

a seal located between at least two of the plurality of solar power panels.

13. A power generation system, comprising:

a server;

a plurality of solar power panels, each comprising:

a plurality of DC power cells, and

a control module comprising input connections connected to the plurality of DC power cells, output connections, a signal processing circuit connected to the input connections and to the output connections, and a controller connected to the signal processing circuit, wherein the control module is configured to track one or more operating parameters for a corresponding solar power panel, and to send a data signal to the server, wherein the data signal corresponds to the one or more tracked operating parameters;

at least one inverter having input DC terminals, output AC terminals, and an inverter circuit connected to the input DC terminals and output AC terminals; and

a fluid delivery mechanism configured to distribute a liquid over an outer surface of at least a portion of the plurality of solar power panels;

wherein the server is configured to monitor a temperature of one or more of the plurality of solar power panels based upon the received data signals, and to send a control signal to the fluid delivery mechanism when the monitored temperature exceeds a temperature setpoint; and

wherein the fluid delivery mechanism is controllably activated upon receipt of the control signal sent when the monitored temperature exceeds the temperature setpoint.

14. The power generation system of claim 13 , wherein the fluid delivery mechanism is activated for cooling of the plurality of solar power panels.

15. The power generation system of claim 13 , wherein the liquid comprises water.

16. The power generation system of claim 13 , wherein the plurality of solar power panels has an upper incident surface for receiving incoming light, and wherein any of a hydrophilic layer or a hydrophobic layer is applied to the upper incident surface of one or more of the plurality of solar power panels.

17. The power generation system of claim 16 , wherein the hydrophilic layer comprises titanium oxide.

18. The power generation system of claim 16 , wherein the hydrophobic layer comprises any of silicon oxide or a fluoropolymer.

19. The power generation system of claim 13 , wherein the plurality of solar power panels has an upper incident surface for receiving incoming light, and wherein an interference layer is applied to the upper incident surface of one or more of the plurality of solar power panels to promote light penetration through the upper incident surface.

20. A power generation system, comprising:

a server;

a plurality of solar power panels, each comprising:

a plurality of DC power cells, and

a control module comprising input connections connected to the plurality of DC power cells, output connections, a signal processing circuit connected to the input connections and to the output connections, and a controller connected to the signal processing circuit, wherein the control module is configured to track one or more operating parameters for a corresponding solar power panel, and to send a data signal to the server, wherein the data signal corresponds to the one or more tracked operating parameters;

at least one inverter having input DC terminals, output AC terminals, and an inverter circuit connected to the input DC terminals and output AC terminals; and

a fluid delivery mechanism configured to distribute a liquid over an outer surface of at least a portion of the plurality of solar power panels;

wherein the server is configured to monitor an efficiency and a temperature of one or more of the plurality of solar power panels based upon the received data signals, and to send a control signal to the fluid delivery mechanism when:

the monitored efficiency is less than or equal to an efficiency setpoint, or

the monitored temperature exceeds a temperature setpoint; and

wherein the fluid delivery mechanism is controllably activated upon receipt of the control signal to clean the plurality of solar power panels when the monitored efficiency is less than or equal to the efficiency setpoint and to cool the plurality of solar power panels when the monitored temperature exceeds the temperature setpoint.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2017
From: NEWDOLL, RONALD M.; SHAVER, ARGIL E.
To: ACCURATE SOLAR POWER LLC
Reel/Frame 043706/0373 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2017
From: NEWDOLL, RONALD M.; SHAVER, ARGIL E., II
To: NEWDOLL ENTERPRISES LLC
Reel/Frame 043706/0459 →
CHANGE OF NAME Recorded Sep 26, 2017
From: NEWDOLL ENTERPRISES LLC
To: ACCURATE SOLAR POWER, LLC
Reel/Frame 044018/0296 →
Continuity (5)
Continuation 14938801 · Nov 11, 2015
Division 13389951
Continuation In Part 12842864 · Jul 23, 2010
Provisional Application 61234181 · Aug 14, 2009
Related Publication 20170012575A1 · Jan 12, 2017
Cited By (2)
US 12,283,916 US 12,447,509