IP Library Granted Patent US 10,840,807
Granted Patent B2
US 10,840,807 · App. 15/713,171 · Granted Nov 17, 2020

DC to DC converter sourcing variable DC link voltage

Inventors: Ryan Wayne Schumacher (Bloomington, MN); Johannes Hendricus Vissers (Boskant, NL); Cas Bakker (Eindhoven, NL)
Assignee: Thermo King Corporation
H02M3/158F25B49/025H02M3/337H02M3/33576H02P27/06F25B2600/021F25B2600/0253H02M7/48H02M2001/007H02M2001/0077
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Quick Facts
Patent No.
US 10,840,807
App. No.
15/713,171
Granted
Nov 17, 2020
Kind
B2
Abstract

An inverter-converter system includes a DC source, a DC to DC boost converter, a DC link capacitor, an inverter circuit, a variable speed electric machine, and a controller. The DC to DC boost converter receives an input DC voltage from the DC source. The inverter circuit converts the variable boosted voltage to an AC voltage to drive the variable speed electric machine. The controller senses a plurality of parameters from the variable speed electric machine, and controls the DC to DC boost converter to boost up the input DC voltage to a variable output voltage based on the plurality of parameters and/or the voltage (or load) needed by the variable speed electric machine. The design of the inverter-converter system can achieve an electrical efficiency and cost savings for the overall system.

Claims (44)

1. A DC to DC boost converter for a climate system, comprising:

a first boost circuit having a first electromagnetic coil; a second boost circuit having a second electromagnetic coil; and a switch set, the switch set operable in a first voltage state and a second voltage state, wherein the first electromagnetic coil is connected to the second electromagnetic coil in series when the switch set operates in the second voltage state,

wherein when the switch set operates in the first voltage state, the first boost circuit is configured to boost an input DC voltage to a first boosted voltage,

wherein when the switch set operates in the second voltage state, the first boost circuit and the second boost circuit are configured to boost the input DC voltage to a second boosted voltage,

wherein the first boosted voltage is different from the second boosted voltage, and

wherein the second electromagnetic coil is shorted out when the switch set operates in the first voltage state.

2. The DC to DC boost converter according to claim 1 , wherein the first boost circuit includes a first bridge circuit, the first electromagnetic coil being a first transformer, and the first bridge circuit drives primary windings of the first transformer,

wherein the second boost circuit includes a second bridge circuit and the switch set, the second electromagnetic coil being a second transformer, the second bridge circuit drives primary windings of the second transformer.

3. The DC to DC boost converter according to claim 2 , wherein the switch set includes a first switch and a second switch,

wherein when both the first switch and the second switch are ON, the switch set operates in the first voltage state, and the first bridge circuit and the first transformer are configured to boost the input DC voltage to the first boosted voltage,

wherein when one of the first switch and the second switch is ON and the other of the first switch and the second switch is OFF, secondary windings of the first transformer and secondary windings of the second transformer are configured to work in series, the switch set operates in the second voltage state, and the first bridge circuit, the first transformer, the second bridge circuit, and the second transformer are configured to boost the input DC voltage to the second boosted voltage.

4. The DC to DC boost converter according to claim 1 , wherein the switch set includes a first set of MOSFET switches.

5. The DC to DC boost converter according to claim 1 , wherein the first boosted voltage is lower than the second boosted voltage.

6. An inverter-converter system for a climate system, comprising:

a DC to DC boost converter, the DC to DC boost converter includes: a first boost circuit having a first electromagnetic coil, a second boost circuit having a second electromagnetic coil, and a switch set, the switch set operable in a first voltage state and a second voltage state,

wherein the first electromagnetic coil is connected to the second electromagnetic coil in series when the switch set operates in the second voltage state,

wherein when the switch set operates in the first voltage state, the first boost circuit is configured to boost an input DC voltage to a first boosted voltage,

wherein when the switch set operates in the second voltage state, the first boost circuit and the second boost circuit are configured to boost the input DC voltage to a second boosted voltage, and

wherein the first boosted voltage is different from the second boosted voltage; a DC source providing the input DC voltage to the DC to DC boost converter; a variable speed electric machine; and

a controller that determines a load of the variable speed electric machine and controls the switch set based on the sensed load of the variable speed electric machine,

wherein the DC to DC boost converter is configured to source one of the first boosted voltage and the second boosted voltage to the variable speed electric machine based on the sensed load of the variable speed electric machine, and

wherein the second electromagnetic coil is shorted out when the switch set operates in the first voltage state.

7. The inverter-converter system according to claim 6 , wherein the first boost circuit includes a first bridge circuit, the first electromagnetic coil being a first transformer, and the first bridge circuit drives primary windings of the first transformer,

wherein the second boost circuit includes a second bridge circuit and the switch set, the second electromagnetic coil being a second transformer, the second bridge circuit drives primary windings of the second transformer, and the switch set includes a first switch and a second switch,

wherein when both the first switch and the second switch are ON, the switch set operates in the first voltage state, and the first bridge circuit and the first transformer are configured to boost the input DC voltage to the first boosted voltage,

wherein when one of the first switch and the second switch is ON and the other of the first switch and the second switch is OFF, secondary windings of the first transformer and secondary windings of the second transformer are configured to work in series, the switch set operates in the second voltage state, and the first bridge circuit, the first transformer, the second bridge circuit, and the second transformer are configured to boost the input DC voltage to the second boosted voltage.

8. The inverter-converter system according to claim 6 , further comprising:

an inverter circuit for converting one of the first boosted voltage and the second boosted voltage to an AC voltage,

wherein the variable speed electric machine is driven by the AC voltage.

9. The inverter-converter system according to claim 6 , wherein the variable speed electric machine is a multi-speed AC-driven compressor.

10. A method for operating a DC to DC boost converter, the DC to DC boost converter including a first boost circuit having a first electromagnetic coil; a second boost circuit having a second electromagnetic coil; and a switch set, the switch set operable in a first voltage state and a second voltage state, wherein the first electromagnetic coil is connected to the second electromagnetic coil in series when the switch set operates in the second voltage state, the method comprising:

receiving an input DC voltage from a DC source; sensing a load of a variable speed electric machine;

when the load of the variable speed electric machine is sensed to require a first boosted voltage, operating the switch set in the first voltage state and the first boost circuit boosting the input DC voltage to the first boosted voltage; and

when the load of the variable speed electric machine is sensed to require a second boosted voltage, operating the switch set in the second voltage state and the first boost circuit combined with the second boost circuit boosting the input DC voltage to the second boosted voltage,

wherein the first boosted voltage is different from the second boosted voltage, and

wherein the second electromagnetic coil is shorted out when the switch set operates in the first voltage state.

11. The method according to claim 10 , wherein the first boost circuit includes a first bridge circuit, the first electromagnetic coil being a first transformer, the second boost circuit includes a second bridge circuit and the switch set, the switch set includes a first switch and a second switch, and the second electromagnetic coil being a second transformer, the method further comprising:

the first bridge circuit driving primary windings of the first transformer,

the second bridge circuit driving primary windings of the second transformer,

operating the switch set in the first voltage state when both the first switch and the second switch are ON, and the first bridge circuit and the first transformer boosting the input DC voltage to the first boosted voltage,

operating the switch set in the second voltage state when one of the first switch and the second switch is ON and the other of the first switch and the second switch is OFF, secondary windings of the first transformer and secondary windings of the second transformer working in series, and the first bridge circuit, the first transformer, the second bridge circuit, and the second transformer boosting the input DC voltage to the second boosted voltage.

12. The method according to claim 10 , further comprising:

determining a flux weakening point for the load of the variable speed electric machine; and

determining the first and second boosted voltages based on the flux weakening point.

Assignments (3)
CHANGE OF NAME Recorded Mar 21, 2023
From: THERMO KING CORPORATION
To: THERMO KING LLC
Reel/Frame 063124/0132 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 13, 2020
From: VISSERS, JOHANNES HENDRICUS; BAKKER, CAS
To: THERMO KING CORPORATION
Reel/Frame 054034/0078 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2017
From: SCHUMACHER, RYAN WAYNE; VISSERS, JOHANNES HENDRICUS
To: THERMO KING CORPORATION
Reel/Frame 043988/0554 →
Continuity (1)
Related Publication 20190097534A1 · Mar 28, 2019
Cited By (1)
US 12,328,080