IP Library Patent Application 14601357
Patent Application
App. No. 14/601,357

AC MOTOR DRIVE POWERED CONCURRENTLY BY AC GRID AND DC SOLAR ARRAY

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Quick Facts
Patent No.
US None
App. No.
14/601,357
Abstract

A system and method uses solar generated DC electricity to power an AC component in parallel with an AC grid via a variable frequency motor drive (VFD). During operation of the DC solar array a DC grid voltage is adjusted via a signal to a first rectifier to maintain the DC grid voltage below a DC array voltage such that power for operation of the AC component is preferentially sourced from the DC solar array. The system and method maintain the use of renewable energy to augment or largely replace expensive grid connected energy.

Claims (42)

1 . A system for powering an AC component concurrently by an AC grid and a DC solar array, comprising:

an AC grid connected to a DC bus through a first rectifier positioned in the DC bus, the first rectifier including a controlled rectifier acting to rectify an AC grid voltage from the AC grid to generate a DC grid voltage to the DC bus;

a DC solar array connected to the DC bus in parallel with the AC grid, the solar array creating a DC array voltage;

a first isolation transformer positioned between the AC grid and the first rectifier; and

an AC component connected through a variable frequency drive (VFD) to the DC bus, wherein during operation of the solar array whenever the solar DC array voltage exceeds the DC grid voltage, power for operation of the AC component is preferentially sourced from the solar array.

2 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 1 , further comprising a second rectifier positioned in the DC bus between the solar array and the first rectifier, the VFD connected to the DC bus between the first rectifier and the second rectifier.

3 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 2 , wherein the first rectifier is an un-controlled 3-phase full wave rectifier.

4 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 2 , wherein the first rectifier is a controlled 3-phase full wave rectifier having a variable threshold.

5 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 2 , wherein the second rectifier is a blocking diode.

6 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 1 , further comprising a harmonic filter positioned between the VFD and the AC component.

7 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 6 , further comprising a second isolation transformer positioned between the harmonic filter and the AC component.

8 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 2 , further comprising:

a second VFD connected to the DC bus between the first rectifier and the second rectifier; and

a second AC component connected to the second VFD, with power for operation of the second AC component also being preferentially sourced from the solar array.

9 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 8 , further comprising a controller in communication with each of the first VFD and the second VFD, wherein the DC grid voltage is set below the DC array voltage by a signal to a gate of the first rectifier from the controller.

10 . The system for powering an AC component concurrently by an AC grid and a DC solar array of claim 1 , further comprising a controller in communication with the VFD and the first rectifier, wherein the DC grid voltage is set below the DC array voltage by a signal from the controller to a gate of the first rectifier.

11 . A method for powering at least one AC component concurrently by an AC grid and a DC solar array, comprising:

connecting an AC grid to a DC bus through a controlled first rectifier positioned in the DC bus;

connecting a solar array to the DC bus in parallel with the AC grid, the solar array generating a DC array voltage;

rectifying an AC grid voltage from the AC grid to generate a DC grid voltage;

controlling a first variable frequency drive (VFD) connected to the DC bus to operate a first AC component connected to the first VFD; and

during operation of the solar array continuously adjusting the DC grid voltage via a signal to the controlled first rectifier to maintain the DC grid voltage below the DC array voltage such that power for operation of the AC component is preferentially sourced from the solar array.

12 . The method of claim 11 , further comprising isolating the AC grid from the DC bus using a first isolation transformer positioned ahead of the DC bus and between the AC grid and the first rectifier.

13 . The method of claim 11 , further comprising connecting a second VFD to the DC bus to operate a second AC component connected to the second VFD.

14 . The method of claim 11 , further comprising connecting a second AC component to the first VFD and selectively controlling operation of one of the first or the second AC components using the first VFD.

15 . The method of claim 11 , further comprising identifying a lowest voltage of the DC array voltage and performing the adjusting the DC grid voltage step by keeping the DC grid voltage below the DC array voltage by a predetermined voltage.

16 . A method for powering at least one AC component concurrently by an AC grid and a DC solar array, comprising:

connecting the AC grid to a DC bus through a first rectifier positioned in the DC bus;

isolating the AC grid from the DC bus using a first isolation transformer positioned between the AC grid and the first rectifier;

connecting the DC solar array to the DC bus in parallel with the AC grid, the DC solar array generating a DC array voltage;

rectifying an AC grid voltage generated by the AC grid to generate a DC grid voltage; and

routing current from the DC bus to a first variable frequency drive (VFD) connected to the DC bus to operate a first AC component connected to the first VFD.

17 . The method of claim 16 , further comprising during operation of the DC solar array adjusting the DC grid voltage via a signal to the first rectifier to maintain the DC grid voltage below the DC array voltage such that power for operation of the first AC component is preferentially sourced from the DC solar array.

18 . The method of claim 16 , further comprising selecting the first rectifier as a controlled rectifier having a gate receiving the signal.

19 . The method of claim 18 , further comprising monitoring at least the DC grid voltage using a controller in communication with the gate of the first rectifier and with the first VFD.

20 . The method of claim 18 , further comprising:

connecting a second VFD to the DC bus; and

controlling operation of the second VFD using the controller to power a second AC component connected to the second VFD.

21 . The method of claim 16 , further comprising:

connecting a second AC component to the first VFD;

confirming the duty cycle of each of the first AC component and the second AC component are in a range between approximately 36% and 50%; and

sequentially operating both the first AC component and the second AC component using the first VFD.

Assignments (4)
SECURITY INTEREST Recorded Mar 30, 2016
From: PRICE ENERGY SYSTEMS, LLC
To: NEXTRONEX, INC.
Reel/Frame 038141/0579 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2016
From: NEXTRONEX, INC.
To: NXTII LLC
Reel/Frame 038141/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2016
From: NEXTRONEX INC.
To: PRICE ENERGY SYSTEMS, LLC
Reel/Frame 037674/0762 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 21, 2015
From: GERHARDINGER, PETER F.; ASHTON, RICHARD L.; ASHTON, DILLON
To: NEXTRONEX, INC.
Reel/Frame 034772/0921 →