IP Library Granted Patent US 9,722,531
Granted Patent B2
US 9,722,531 · App. 15/248,255 · Granted Aug 1, 2017

Electronic inverter assembly with an integral snubber capacitor

Inventors: Brij N. Singh (West Fargo, ND); Christopher J. Schmit (Fargo, ND)
Assignee: DEERE & COMPANY
H02P29/02B60L11/18H01R24/48H02P27/06H02M7/003H02M2001/348
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Quick Facts
Patent No.
US 9,722,531
App. No.
15/248,255
Granted
Aug 1, 2017
Kind
B2
Abstract

A coaxial bus connector has a first end and a second end opposite the first end. The first end has a first positive terminal and a first negative terminal coupled to a primary direct current bus of a primary inverter. The second end has a second positive terminal and a second negative terminal coupled to the secondary direct current bus of a secondary inverter, wherein the coaxial bus connector comprises a dielectric material between a center conductor and a coaxial sleeve to form a snubber capacitor to absorb electrical energy or to absorb voltage spikes.

Claims (16)

1. An electronic inverter assembly, the assembly comprising:

a primary direct current bus having a positive terminal and a negative terminal;

a primary inverter power module comprising one or more pairs of semiconductor switches mounted on a primary substrate, each pair of semiconductors comprising a low-side semiconductor switch and a high-side semiconductor switch coupled together between the primary direct current bus, each of the semiconductor switches comprising a control terminal and switched terminals;

a secondary direct current bus having a positive terminal and a negative terminal;

a secondary inverter power module comprising one or more pairs of semiconductor switches mounted on a secondary substrate, each pair of semiconductors comprising a low-side semiconductor switch and a high-side semiconductor switch coupled together between the secondary direct current bus, each of the semiconductor switches comprising a control terminal and switched terminals; and

a coaxial bus connector having a first end and a second end opposite the first end, the first end having a first positive terminal and a first negative terminal coupled the primary direct current bus, the second end having a second positive terminal and a second negative terminal coupled to the secondary direct current bus, wherein the coaxial bus connector comprises a dielectric material between a center conductor and a coaxial sleeve to form a snubber capacitor to absorb electrical energy or to absorb voltage spikes.

2. The electronic inverter assembly according to claim 1 wherein the snubber capacitor can be modeled electrically as capacitor that is in series with or in parallel with a resistor.

3. The electronic inverter assembly according to claim 1 wherein the snubber capacitor is arranged to absorb electrical energy associated with a parasitic inductance of a capacitor connected between the terminals of the primary direct current bus, the secondary direct current bus, or both.

4. The electronic inverter assembly according to claim 1 wherein the snubber capacitor attenuates alternating current signals that would otherwise flow through a capacitor connected between terminals of the primary direct current bus, the secondary direct current bus, or both.

5. The electronic inverter assembly according to claim 1 wherein the snubber capacitor is arranged to absorb electrical energy associated with a parasitic inductance of the conductors or bus-bar between switched terminals of a semiconductor switch or switch module and terminals of a bulk direct current bus capacitor comprising a set or bank of capacitors.

6. The electronic inverter assembly according to claim 1 wherein the snubber capacitor is capable of absorbing a high-frequency component of current ripple produced in the inverter in a motoring mode of the electric machine coupled to the inverter.

7. The electronic inverter assembly according to claim 1 wherein the snubber capacitor is integral with the coaxial bus connector and eliminates the need for a separate or discrete snubber capacitor.

8. The electronic inverter assembly according to claim 1 wherein the coaxial bus connector provides a capacitance of approximately 1 uF or higher with a voltage rating commensurate with the direct current bus of the inverter and a change in voltage with respect to time (dv/dt) rating comparable to a discrete snubber capacitor that is not integral with the direct bus connector.

9. The electronic inverter assembly according to claim 1 wherein the coaxial bus connector provides over-voltage protection for the semiconductor switches.

10. The electronic inverter assembly according to claim 1 wherein the coaxial bus connector is arranged to suppress over-voltage across one or more semiconductor switches to facilitate an increase in the peak value of the direct current bus voltage.

11. The electronic inverter assembly according to claim 1 wherein the coaxial bus connector is arranged to suppress over-voltage across one or more semiconductor switches to facilitate an increase in the peak current loading of an inverter.

Assignments (3)
CONFIRMATORY LICENSE Recorded May 24, 2021
From: DEERE & COMPANY
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 056338/0060 →
CONFIRMATORY LICENSE Recorded Sep 14, 2020
From: DEERE & COMPANY ON BEHALF OF SUBRECIPIENT, JOHN DEERE ELECTRONIC SOLUTIONS, INC.
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 053772/0213 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2016
From: SINGH, BRIJ N.; SCHMIT, CHRISTOPHER J.
To: DEERE & COMPANY
Reel/Frame 040591/0232 →
Continuity (2)
Continuation In Part 14720035 · May 22, 2015
Related Publication 20160365788A1 · Dec 15, 2016