IP Library › Granted Patent US 10,886,746
Granted Patent B1
US 10,886,746 · App. 17/036,630 · Granted Jan 5, 2021

Alternating conversion solar power system

Inventors: Anatoli Ledenev (Fort Collins, CO); Robert M. Porter (Fort Collins, CO)
Assignee: AMPT, LLC
H02J3/38H02J3/00H02M2001/0077Y02E10/56Y02E40/70Y02P80/20Y04S10/123Y10S136/293
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Quick Facts
Patent No.
US 10,886,746
App. No.
17/036,630
Granted
Jan 5, 2021
Kind
B1
Abstract

Different systems to achieve solar power conversion are provided in at least three different general aspects, with circuitry that can be used to harvest maximum power from a solar source ( 1 ) or strings of panels ( 11 ) for DC or AC use, perhaps for transfer to a power grid ( 10 ) three aspects can exist perhaps independently and relate to: 1) electrical power conversion in a multimodal manner, 2) alternating between differing processes such as by an alternative mode photovoltaic power converter functionality control ( 27 ), and 3) systems that can achieve efficiencies in conversion that are extraordinarily high compared to traditional through substantially power isomorphic photovoltaic DC-DC power conversion capability that can achieve 99.2% efficiency or even only wire transmission losses. Switchmode impedance conversion circuits may have pairs of photovoltaic power series switch elements ( 24 ) and pairs of photovoltaic power shunt switch elements ( 25 ).

Claims (76)

1. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking,

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than said maximum power point; and

an inverter responsive to said converted photovoltaic DC outputs.

2. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking,

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than said maximum power point.

3. A solar power system comprising:

a photovoltaic DC-DC power converter, wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking,

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than said maximum power point; and

an inverter responsive to said converted photovoltaic DC output.

4. A solar power system comprising:

a photovoltaic DC-DC power converter, wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking,

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than said maximum power point.

5. The solar power system of claim 1 , 2 , 3 , or 4 wherein said switch circuit comprises a duty cycle switch circuit configured and arranged to achieve synchronous duty cycle switching.

6. The solar power system of claim 1 , 2 , 3 , or 4 wherein, during said overvoltage boundary condition control and said overcurrent boundary condition control, said switch circuit is configured and arranged so said operational power exhibits a proportionality between voltage and current.

7. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point; and

an inverter responsive to said converted photovoltaic DC outputs.

8. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point.

9. A solar power system comprising:

a photovoltaic DC-DC power converter, wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point; and

an inverter responsive to said converted photovoltaic DC output.

10. A solar power system comprising:

a photovoltaic DC-DC power converter wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overcurrent boundary condition control of said converted photovoltaic DC output at other than maximum power point.

11. The solar power system of claim 7 , 8 , 9 , or 10 wherein said switch circuit comprises a duty cycle switch circuit configured and arranged to achieve synchronous duty cycle switching.

12. The solar power system of claim 7 , 8 , 9 , or 10 wherein, during said overcurrent boundary condition control, said switch circuit is configured and arranged so said operational power exhibits a proportionality between voltage and current.

13. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than maximum power point; and

an inverter responsive to said converted photovoltaic DC outputs.

14. A solar power system comprising:

a plurality of photovoltaic DC-DC power converters, wherein each photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, and is connected in series to at least one other photovoltaic DC-DC power converter of the plurality of photovoltaic DC-DC power converters, each having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than maximum power point.

15. A solar power system comprising:

a photovoltaic DC-DC power converter, wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, having a converted photovoltaic DC output;

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than maximum power point; and

an inverter responsive to said converted photovoltaic DC output.

16. A solar power system comprising:

a photovoltaic DC-DC power converter, wherein said photovoltaic DC-DC power converter comprises a boost and buck power conversion circuit in any order, having a converted photovoltaic DC output; and

a switch circuit configured and arranged to be sufficient to power said solar power system during operation of said solar power system to produce operational power, and while producing operational power to be capable of alternating between:

maximum power point tracking, and

overvoltage boundary condition control of said converted photovoltaic DC output at other than maximum power point.

17. The solar power system of claim 13 , 14 , 15 , or 16 wherein said switch circuit comprises a duty cycle switch circuit configured and arranged to achieve synchronous duty cycle switching.

18. The solar power system of claim 13 , 14 , 15 , or 16 wherein, during said overvoltage boundary condition control, said switch circuit is configured and arranged so said operational power exhibits a proportionality between voltage and current.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2020
From: LEDENEV, ANATOLI; PORTER, ROBERT M.
To: AMPT, LLC
Reel/Frame 054422/0649 →
Continuity (12)
Continuation 16834639 · Mar 30, 2020
Continuation 15679745 · Aug 17, 2017
Continuation 15612692 · Jun 2, 2017
Continuation 15219149 · Jul 25, 2016
Continuation 13934102 · Jul 2, 2013
Continuation 13275147 · Oct 17, 2011
Continuation 13192329 · Jul 27, 2011
Continuation 12955704 · Nov 29, 2010
Continuation 12682889
Provisional Application 60980157 · Oct 15, 2007
Provisional Application 60982053 · Oct 23, 2007
Provisional Application 60986979 · Nov 9, 2007
Cited By (4)
US 12,538,608 US 12,573,838 US 12,573,856 US 12,727,283