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Patent Searching and Data


Title:
MOTOR VEHICLE CIRCUITRY
Document Type and Number:
WIPO Patent Application WO/1998/031563
Kind Code:
A1
Abstract:
In the circuitry of this invention, a pre-drive controls the output voltage from the driver to the load. The drive includes a resistor and an output transistor. This circuitry lowers the heat dissipation of the transistor of the output driver. Variable voltage input may supply power to the pre-driver.

Inventors:
HONSOWETZ ERIC K
VIERGEVER SUSAN E
Application Number:
PCT/US1997/020416
Publication Date:
July 23, 1998
Filing Date:
November 03, 1997
Export Citation:
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Assignee:
UNITED TECHNOLOGIES AUTOMOTIVE (US)
International Classes:
B60Q1/14; H05B39/04; (IPC1-7): B60Q1/14; B60Q3/00; H05B39/04
Foreign References:
US4847515A1989-07-11
US3903475A1975-09-02
US4473871A1984-09-25
DE9012042U11991-04-11
Attorney, Agent or Firm:
Pacella, Patrick P. (Schaffer Schaub & Porcello Co., P.O. Box 91, Toledo OH, US)
Download PDF:
Claims:
WE CLAIM:
1. An electrical circuit for a motor vehicle comprising: a power supply; a load energized by an amount of power supplied by the power supply; a driver for supplying the amount of power supplied to the load, the driver being connected between the power supply and the load; the driver comprising a resistor and an output transistor, the resistor being connected between the power supply and the transistor, and the transistor being connected to the load; and a predriverfor controlling the amount of power supplied to the load by the driver, the predriver being connected between the power supply and the transistor.
2. An electric circuit according to claim 1 comprising a control connected between the power supply and the predriver.
3. An electrical circuit according to claim 1 comprising a variable voltage input control connected between the power supply and the pre driver.
4. An electrical circuit according to claim 1 wherein the predriver comprises a resistor and a transistor, the power supply being connected to the predriver resistor, the predriver resistor being connected to the pre driver transistor, and the predriver transistor being connected to the driver resistor for controlling the amount of power supplied to the load.
5. An electrical circuit according to claim 1 comprising an additional resistor being connected between the driver transistor and the load.
6. An electrical circuit for a motor vehicle comprising: a power supply; a load energized by an amount of power supplied by the power supply; a driver for supplying the amount of power supplied to the load, the driver being connected between the power supply and the load; the driver comprising a resistor and an output transistor, the resistor being connected between the power supply and the transistor, and the transistor being connected to the load; and a predriver for controlling the amount of power supplied to the load, the predriver being connected between the power supply and the driver, wherein the predriver comprises a resistor and a transistor, the power supply being connected to the predriver resistor, the predriver resistor being connected to the predriver transistor and the predriver transistor being connected to the driver transistor.
7. An electrical circuit according to claim 6 comprising a control connected between the power supply and the predriver.
8. An electrical circuit according to claim 6 comprising a variable voltage input control connected between the power supply and the pre driver.
Description:
DESCRIPTION MOTOR VEHICLE CIRCUITRY TECHNICAL FIELD This invention relates to a linear output drive circuitry with a low power output driver. More specifically, this circuitry may be used in a dimmer switch of a motor vehicle.

BACKGROUND OF THE INVENTION Fig. 1 is a prior art circuit diagram for a lighting system of a motor vehicle. Fig. 1 shows a conventional circuit using a 12 V battery as power supply 1. Lamp 2 represents the load and driver 3 energizes lamp 2. Driver 3 provides a current to lamp 2. Control 4 controls the current to driver 3.

This is a typical circuit for use in a dimmer switch of a motor vehicle. In this conventional circuit, the power loss across the driver 3 from a conventional storage battery often is 5 to 10 watts, As a result, expensive drivers with high power capability must be used.

DISCLOSURE OF THE INVENTION In the circuitry of this invention, variable DC voltage 10 input is supplied to a pre-drive 20 section through an input resistor R,. The addition of a power resistor R3 in series with the output driver diverts the power from the output transistor to the resistor. This output scheme lowers the heat dissipation of the transistor Q3 output drive. A less robust output driver can, therefore, be utilized with the power dissipation now primarily in resistor R3.

A smaller heatsink may be used or the need for a heatsink may be eliminated. This will result in potential packaging advantages.

BRIEF DESCRIPTION OF THE DRAWINGS Fig. 1 is a circuit diagram showing for a prior art circuit for motor vehicle dimmer switches.

Fig. 2 is a block and circuit diagram of the circuit of our invention.

BEST MODE OF CARRYING OUT INVENTION In the circuitry of this invention, variable DC voltage 10 input is supplied to a pre-drive 20 circuit through an input transistor R,. The pre- drive circuit controls the voltage at the base of the output transistor Q3 through transistor Q2 by using the transistor Q3 in an emitter follower mode.

Output transistor Q3 in the driver controls voltage to the load R4 also using the emitter follower mode. Power from power supply 1 is supplied to transistor Q3 through resistor R3. A low value is chosen for R3 such that the voltage dropped across it can be small, allowing maximum voltage at the load R4. When the voltage on the base of Q3 is lowered the voltage drop in the load circuit (R3, Q3, R4) is across R3, thus alleviating the power dissipation in transistor Q3.

Fig. 2 is a block and circuit diagram showing 12 V battery as supply power 1. Power supply 1 is connected to voltage input (VIN) 10 which supplies a variable DC voltage input to pre-drive 20 through input resistor R1.

Pre-driver 20 controls drive 30 through transistor Q2 Transistor Q3 in drive 30 provides power to load R4. Power supply 1 provides power to drive 30 through resistor R3 which power transistor Q3.

Without the use of R3, transistor Q3 is the primary control for voltage drop to load R4. Without R3, Q3 is the primary power dissipater. The circuitry of our invention keeps Q3 cool, yet allows voltage control. In a conventional circuit, the voltage drop, for control, across Q3 is 5 to 10 volts. The circuitry of our invention lowers this voltage drops across Q3 to as little as 0.5 volts.

In operation, the voltage input to the pre-driver can be varied from 0 to 13.5 volts. For purposes of illustrating the invention, assume a current of 1 amperes to the load R4 at a voltage across the load of 5 volts so that the power loss or gain can be easily calculated. In a conventional circuit, the power loss across the transistor Q3 would be 8.3 walls. In the circuit, of this invention, the power loss across transistor Q3 of drive 30 can be as little as 0.3 watts.

The circuit of this invention moves the power loss to resistor R3. In the case of a 5 watt lamp for the load, the power loss across R3 is 8 watts with only a 0.3 watt drop across transistor Q3.

The preferred embodiment of this invention is an electrical circuit for a motor vehicle comprising a power supply, a load energized by an amount of power supplied by the power supply, a driver for supplying the amount of power supplied to the load, the driver being connected between the power supply and the load, a pre-driverfor controlling the amount of power supplied to the driver, the pre-driver being connected between the power supply and the driver, wherein the pre-driver comprises a resistor and a transistor, the power supply being connected to the resistor, the resistor being connected to the transistor and the transistor being connected to the driver. The power supply supplies power to the load through the driver. The driver includes a resistor and a transistor, the resistor being connected between the power supply and the transistor of the driver.

The preferred electrical circuit includes a variable voltage input, the input being connected between the power supply and the resistor of the pre- driver. The variable voltage input also may be a rheostat switch or a potentiometer.