IP Library Granted Patent US 10,627,491
Granted Patent B2
US 10,627,491 · App. 16/510,680 · Granted Apr 21, 2020

Integrated LIDAR illumination power control

Inventors: David S. Hall (San Jose, CA); Raymond Liou (Cupertino, CA); Oren Milgrome (Richmond, CA); Marius Paul Dumitrean (San Jose, CA)
Assignee: Velodyne Lidar, Inc.
G01S7/484G01S7/4814H01L23/528H01L27/0605H01L27/0629H01L29/2003G01S17/42H05K1/181H05K2201/10015H05K2201/10022H05K2201/10106H05K2201/10121H05K2201/10151H05K2201/10166
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Quick Facts
Patent No.
US 10,627,491
App. No.
16/510,680
Granted
Apr 21, 2020
Kind
B2
Abstract

Methods and systems for performing three dimensional LIDAR measurements with an integrated LIDAR measurement device are described herein. In one aspect, a Gallium Nitride (GaN) based illumination driver integrated circuit (IC), an illumination source, and a return signal receiver IC are mounted to a common substrate. The illumination driver IC provides a pulse of electrical power to the illumination source in response to a pulse trigger signal received from the return signal receiver IC. In another aspect, the GaN based illumination driver IC controls the amplitude, ramp rate, and duration of the pulse of electrical power based on command signals communicated from the return signal receiver IC to the illumination driver IC. In a further aspect, illumination driver IC reduces the amount of electrical power consumed by the illumination driver IC during periods of time when the illumination driver IC is not providing electrical power to the illumination source.

Claims (74)

1. An integrated LIDAR device, comprising:

a printed circuit board;

an illumination source mounted to the printed circuit board;

a first electrical power source mounted to the printed circuit board; and

an illumination driver integrated circuit (IC) mounted to the printed circuit board, the illumination driver IC electrically coupled to the illumination source and the first electrical power source via the printed circuit board;

wherein the illumination driver IC is configured to selectively electrically couple the illumination source to the first electrical power source in response to a pulse trigger signal, causing the illumination source to emit a measurement pulse of illumination light.

2. The integrated LIDAR device of claim 1 , wherein the illumination driver IC includes a power save control module that supplies a controlled amount of electrical power to the illumination driver IC based on the pulse trigger signal.

3. The integrated LIDAR measurement device of claim 1 , wherein the illumination driver IC includes any of a pulse amplitude control circuit, a pulse termination generator; and a FET selection circuit.

4. The integrated LIDAR measurement device of claim 1 , wherein the illumination driver IC includes a pulse initiation signal generator that generates a pulse initiation signal to the illumination driver IC based on the pulse trigger signal.

5. The integrated LIDAR measurement device of claim 4 , wherein the illumination driver IC includes a pulse termination signal generator that generates a pulse termination signal to the illumination driver IC based on the pulse trigger signal, wherein a delay between the pulse initiation signal and the pulse termination signal is based on a pulse width control signal provided to the illumination driver IC.

6. The integrated LIDAR measurement device of claim 1 , wherein the illumination driver IC includes a pulse amplitude control circuit that controls an amplitude of the measurement pulse of illumination light based on an amplitude control signal provided to the illumination driver IC.

7. The integrated LIDAR measurement device of claim 1 , further comprising:

a photodetector mounted to the printed circuit board, the photodetector configured to detect a return pulse of light and generate an output signal indicative of the detected return pulse, wherein the return pulse is an amount of the measurement pulse reflected from a location in a surrounding environment illuminated by the corresponding measurement pulse; and

a return pulse receiver IC mounted to the printed circuit board, the return pulse receiver configured to determine a time of flight of the measurement pulse from the LIDAR device to the measured location in the three dimensional environment and back to the LIDAR device based on the output signal, wherein the return pulse receiver IC generates the pulse trigger signal and communicates the pulse trigger signal to GaN based illumination driver IC.

8. A LIDAR measurement system, comprising:

a plurality of integrated LIDAR measurement devices, each comprising:

an illumination source mounted to a printed circuit board;

an illumination driver integrated circuit (IC) mounted to the printed circuit board, the illumination driver IC electrically coupled to the illumination source and a first electrical power source, wherein the illumination driver IC is configured to selectively couple the illumination source and the electrical power source in response to a pulse trigger signal, causing the illumination source to emit a measurement pulse of illumination light; and

a return pulse receiver IC mounted to the printed circuit board, the return pulse receiver configured to determine a time of flight of the measurement pulse from the LIDAR device to a measured location in the three dimensional environment and back to the LIDAR device, wherein the return pulse receiver IC generates and communicates the pulse trigger signal to the illumination driver IC; and

a master controller configured to generate a plurality of pulse command signals, each communicated to a different integrated LIDAR measurement device of the plurality of integrated LIDAR measurement devices, wherein each return pulse receiver IC generates the corresponding pulse trigger signal based on the received pulse command signal.

9. A LIDAR measurement device, comprising:

an illumination source, the illumination source configured to provide a measurement pulse of illumination light;

a first power source;

an illumination driver integrated circuit (IC), the illumination driver IC electrically coupled to the first power source and the illumination source, wherein the illumination driver IC is configured to cause the illumination source to provide the measurement pulse of an illumination light in response to a pulse trigger signal;

a photodetector, the photodetector configured to detect a first amount of the measurement pulse of illumination light due to crosstalk between the illumination source and the photodetector and a valid return pulse of light reflected from a location in a surrounding environment illuminated by a second amount of the measurement pulse; and

a return pulse receiver circuit, the return pulse receiver circuit configured to measure a difference in time between a time when the first amount of the measurement pulse is detected and a time when the valid return pulse of light is detected.

10. The LIDAR measurement device of claim 9 , wherein the first power source is a first electrical power source, and the first electrical power source provides a first voltage across a first node and a second node of the first electrical power source, wherein a first node of the illumination source is electrically coupled to the first node of the electrical power source, wherein the illumination driver IC is electrically coupled to a second node of the illumination source and the second node of the first electrical power source, and wherein the illumination driver IC is configured to selectively electrically couple the second node of the illumination source to the second node of the first electrical power source in response to the pulse trigger signal.

11. The LIDAR measurement device of claim 10 , wherein the illumination driver is a GaN based illumination driver IC comprising:

a first field effect transistor (FET) having a source, a drain coupled to a first node of a second electrical power source, and a gate configured to receive a gate charge control signal;

a second FET having a drain coupled to the source of the first FET, a source coupled to a second node of the second electrical power source, and a gate configured to receive a gate discharge control signal; and

a third FET having a gate coupled to the source of the first FET and the drain of the second FET, a drain coupled to the second node of the illumination source, and a source coupled to the second node of the first electrical power source, wherein the gate charge control signal causes the gate of the third FET to be selectively coupled to the first node of the second electrical power source, and wherein the gate discharge control signal causes the gate of the third FET to be selectively coupled to the second node of the second electrical power source.

12. The LIDAR measurement device of claim 10 , further comprising:

a first field effect transistor (FET) having a source, a drain coupled to a first node of a second electrical power source, and a gate configured to receive a gate charge control signal;

a second FET having a drain coupled to the source of the first FET, a source coupled to a second node of the second electrical power source, and a gate configured to receive a gate discharge control signal; and

a first plurality of FETs each having a drain coupled to the second node of the illumination source, a source coupled to the second node of the first electrical power source, and a gate selectively coupled to the source of the first FET and the drain of the second FET.

13. The LIDAR measurement device of claim 12 , wherein a FET selection signal determines whether the gate of each of the first plurality of FETs is electrically coupled to the source of the first FET and the drain of the second FET.

14. The LIDAR measurement device of claim 13 , wherein the gate of each of the first plurality of FETs is selectively coupled to the source of the first FET and the drain of the second FET based on a first bit of the FET selection signal, and further comprising:

a second plurality of FETs each having a drain coupled to the second node of the illumination source, a source coupled to the second node of the first electrical power source, and a gate selectively coupled to the source of the first FET and the drain of the second FET based on a second bit of the FET selection signal.

15. The LIDAR measurement device of claim 14 , wherein the first plurality of FETs is a different number of FETs than the second plurality of FETs.

16. The LIDAR measurement device of claim 9 , wherein the illumination driver IC includes a power save control module that supplies a controlled amount of electrical power to a portion of the illumination driver IC based on the pulse trigger signal.

17. The LIDAR measurement device of claim 16 , wherein the portion of the illumination driver IC includes any of a pulse amplitude control circuit, a pulse termination generator; and a FET selection circuit.

18. The LIDAR measurement device of claim 16 , wherein the power save control module includes:

a resistor having a first node and a second node, wherein the pulse trigger signal is supplied at the first node of the resistor;

a capacitor having a first node coupled to the first node of the resistor and a second node coupled to a second node of a second electrical power source;

a first FET having a source coupled to the second node of the capacitor, a gate coupled to the second node of the resistor, and a drain; and

a second FET having a gate coupled to the drain of the first FET, a drain coupled to a first node of a second electrical power source, wherein the controlled amount of electrical power is provided at a source of the second FET.

19. The LIDAR measurement device of claim 18 , wherein the illumination driver IC includes a pulse initiation signal generator that generates a pulse initiation signal to a portion of a GaN based illumination driver IC based on the pulse trigger signal.

20. The LIDAR measurement device of claim 19 , wherein the pulse initiation signal generator includes:

a resistor having a first node and a second node, wherein the first node is coupled to a first node of a second electrical power source; and

a FET having a source coupled to a second node of the second electrical power source, a drain coupled to the second node of the resistor, and a gate, wherein the pulse trigger signal is provided at the gate of the FET, and wherein the pulse initiation signal is provided at the drain of the FET.

21. The LIDAR measurement device of claim 20 , wherein the illumination driver IC includes:

a pulse termination signal generator that generates a pulse termination signal to a portion of the illumination driver IC based on the pulse trigger signal, wherein a delay between the pulse initiation signal and the pulse termination signal is based on a pulse width control signal provided to a GaN based illumination driver IC; and

a pulse amplitude control circuit that controls an amplitude of the measurement pulse of illumination light based on an amplitude control signal provided to the illumination driver IC, wherein the pulse amplitude control circuit includes:

a first resistor having a first node and a second node, wherein the pulse amplitude control signal is provided on the first node of the first resistor;

a FET having a source, a gate coupled to the second node of the first resistor, and a drain coupled to a node of a second electrical power source;

a second resistor having a first node coupled to the source of the FET and a second node coupled to a gate of a charge control FET; and

a capacitor having a first node coupled to the second node of the first resistor and a second node coupled to the second node of the second resistor.

22. The LIDAR measurement device of claim 9 , further comprising:

a photodetector mounted to the printed circuit board, the photodetector configured to detect a return pulse of light and generate an output signal indicative of the detected return pulse, wherein the return pulse is an amount of the measurement pulse reflected from a location in a surrounding environment illuminated by the corresponding measurement pulse; and

a return pulse receiver IC mounted to the printed circuit board, the return pulse receiver configured to determine a time of flight of the measurement pulse from the LIDAR device to the measured location in the three dimensional environment and back to the LIDAR device based on the output signal, wherein the return pulse receiver IC generates the pulse trigger signal and communicates the pulse trigger signal to the illumination driver IC.

23. A method comprising:

providing a pulse of electrical power from an illumination driver integrated circuit (IC) mounted to a printed circuit board in response to a pulse trigger signal;

emitting a measurement pulse of illumination light in response to the pulse of electrical power from an illumination source mounted to the printed circuit board;

detecting a return pulse of light, wherein the return pulse is an amount of the measurement pulse reflected from a location in a surrounding environment illuminated by the corresponding measurement pulse;

determining a time of flight of the measurement pulse from the LIDAR device to the measured location in the three dimensional environment and back to the LIDAR device based on the detected return pulse of light, the determining performed by a return pulse receiver IC mounted to the printed circuit board; and

controlling an amount of electrical power supplied to any of a pulse amplitude control circuit, a pulse termination generator, and a FET selection circuit of the illumination driver IC based on the pulse trigger signal.

24. A LIDAR system integrated onto a printed circuit board comprising:

illumination driver means for providing a pulse of electrical power in response to a pulse trigger signal;

illumination source means for emitting a measurement pulse of illumination light in response to the pulse of electrical power;

detecting means for detecting a return pulse of light, wherein the return pulse of light is an amount of the measurement pulse reflected from a location in a surrounding environment illuminated by the corresponding measurement pulse; and

return pulse receiver means for determining a time of flight of the measurement pulse from the LIDAR device to the measured location in the three dimensional environment and back to the LIDAR device based on the detected return pulse of light.

25. The LIDAR system of claim 24 , further comprising:

controlling means for controlling an amount of electrical power supplied to any of a pulse amplitude control circuit, a pulse termination generator, and a FET selection circuit of the illumination driver means based on the pulse trigger signal.

26. A LIDAR device comprising a printed circuit board, an illumination source, a first electrical power source, and an illumination driver integrated circuit (IC), the LIDAR device characterized in that: the illumination driver IC is configured to selectively electrically couple the illumination source to the first electrical power source in response to a pulse trigger signal, causing the illumination source to emit a measurement pulse of illumination light; and the illumination source, the first electrical power source, and the illumination driver IC are mounted on and electrically connected via the printed circuit board.

Assignments (4)
RELEASE OF INTELLECTUAL PROPERTY SECURITY AGREEMENT RECORDED AT REEL/FRAME NO. 063593/0463 Recorded Oct 25, 2023
From: HERCULES CAPITAL, INC.
To: VELODYNE LIDAR USA, INC.
Reel/Frame 065350/0801 →
SECURITY INTEREST Recorded May 10, 2023
From: VELODYNE LIDAR USA, INC.
To: HERCULES CAPITAL, INC., AS AGENT
Reel/Frame 063593/0463 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2022
From: HALL, DAVID S.; LIOU, RAYMOND; MILGROME, OREN; DUMITREAN, MARIUS PAUL
To: VELODYNE LIDAR, INC.
Reel/Frame 059565/0362 →
MERGER AND CHANGE OF NAME Recorded Nov 16, 2020
From: VL MERGER SUB INC.; VELODYNE LIDAR, INC.; VELODYNE LIDAR USA, INC.
To: VELODYNE LIDAR USA, INC.
Reel/Frame 054438/0260 →
Continuity (3)
Continuation 15941302 · Mar 30, 2018
Provisional Application 62480119 · Mar 31, 2017
Related Publication 20190339365A1 · Nov 7, 2019
Cited By (16)
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