IP Library Granted Patent US 9,966,776
Granted Patent B2
US 9,966,776 · App. 15/264,141 · Granted May 8, 2018

Discharge of back-up capacitor by constant current

Inventors: Wilhelm Berg (Nürnberg, DE); Tobias Pröll (Eckental, DE)
Assignee: SIEMENS AKTIENGESELLSCHAFT
H02J7/0063H02J7/345H02J2007/0067
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Quick Facts
Patent No.
US 9,966,776
App. No.
15/264,141
Granted
May 8, 2018
Kind
B2
Abstract

An electrical arrangement includes a high-voltage battery and a number of electrical utility arrangements connected to the battery via a main switch and a downstream back-up capacitor. A discharge circuit is connected to the capacitor and has a discharge path with an ohmic discharge resistor. In normal mode no current flows in the discharge resistor. Opening the main switch effects a transition from normal mode to special mode, while the discharge path is energized and electrical energy stored in the capacitor is converted into thermal energy by the discharge resistor. The discharge circuit has a voltage converter between the high-voltage side of the capacitor and the discharge path. The voltage converter has a first semiconductor switch for discharging the capacitor clock-controlled such that an electrical output voltage at the discharge path constantly has a rated value so long as a capacitor voltage at the capacitor is above the rated value.

Claims (12)

1. An electrical arrangement, comprising:

a high-voltage battery;

a main switch which is closed during normal mode of the electrical arrangement and when opened effects a transition from the normal mode to a special mode;

a back-up capacitor disposed downstream of the main switch;

a number of electrical utility arrangements connected to the high-voltage battery via the main switch and the back-up capacitor and supplied with electrical energy from the high-voltage battery, when the main switch is closed; and

a discharge circuit connected to the back-up capacitor and including an ohmic discharge resistor disposed in a discharge path of the discharge circuit and configured so that in the normal mode no current flows in the discharge resistor, wherein during transition to the special mode the discharge path is energized, so that the electrical energy stored in the back-up capacitor is converted into thermal energy by the discharge resistor, said discharge circuit including a voltage converter having an input side, connected to a high-voltage side of the back-up capacitor, and an output side connected to the discharge path, said voltage converter including a first semiconductor switch configured to discharge the back-up capacitor clock-controlled such that an electrical output voltage at the discharge path constantly has a rated value so long as a capacitor voltage at the backup capacitor is above the rated value.

2. The electrical arrangement of claim 1 , wherein the voltage converter is designed as a galvanically non-isolating voltage converter, said discharge resistor being galvanically connected to the high-voltage side of the back-up capacitor via the voltage converter.

3. The electrical arrangement of claim 1 , wherein the voltage converter is embodied as a galvanically isolating voltage converter and includes an inductor which is embodied as a transformer, said discharge resistor being galvanically isolated from the high-voltage side of the back-up capacitor via the transformer.

4. The electrical arrangement of claim 1 , wherein the discharge path has a second semiconductor switch which is connected in series to the discharge resistor and has a control input to receive a control signal in both the normal mode and the special mode, with the control signal causing in the normal mode a blocking of the second semiconductor switch, and with the control signal causing in the special mode a current, flowing via the discharge resistor, to have a value which is determined by the control signal.

5. The electrical arrangement of claim 1 , wherein at least one of the utility arrangements is supplied with the electrical energy via the voltage converter in the normal mode.

6. The electrical arrangement of claim 4 , wherein during opening of the main switch the capacitor voltage at the back-up capacitor is captured, and wherein the control signal is determined for the special mode as a function of the capacitor voltage at the back-up capacitor during opening of the main switch.

7. The electrical arrangement of claim 1 , wherein the utility arrangements are isolated from the back-up capacitor during transition from the normal mode to the special mode.

Assignments (3)
CHANGE OF NAME Recorded Jul 22, 2026
From: VALEO EAUTOMOTIVE GERMANY GMBH; VALEO SIEMENS EAUTOMOTIVE GERMANY GMBH; SIEMENS AUTOMOTIVE EPOWERTRAIN SYSTEMS GMBH; BLITZ E16-802 GMBH
To: VALEO ELECTRIFICATION
Reel/Frame 076028/0968 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2022
From: SIEMENS AKTIENGESELLSCHAFT
To: VALEO SIEMENS EAUTOMOTIVE GERMANY GMBH
Reel/Frame 060221/0594 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2016
From: BERG, WILHELM; PRÖLL, TOBIAS
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 039803/0967 →
Priority Claims (1)
DE 10 2015 217 533 · Sep 14, 2015 · national
Continuity (1)
Related Publication 20170077730A1 · Mar 16, 2017