IP Library Granted Patent US 12,613,315
Granted Patent B2
US 12,613,315 · App. 18/051,104 · Granted Apr 28, 2026

Vehicle Lidar sensor module

Inventor: Norbert Kunze (Diez, DE)
Assignee: Magna Electronics Inc.
G01S7/4813G01S17/931G01S7/4817
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Quick Facts
Patent No.
US 12,613,315
App. No.
18/051,104
Granted
Apr 28, 2026
Kind
B2
Abstract

A vehicular lidar sensor module includes a laser unit, a sensor unit, and a cover unit. The laser unit includes a housing, a laser printed circuit board, laser collimators and a first tension spring that urges the laser collimators against respective reference surfaces of the housing. Laser emitters are located at an end of respective laser collimators, which collimate light emitted by the respective laser emitters. The sensor unit includes a holder, receiver tubes, and a second tension spring that urges the receiver tubes against respective reference surfaces of the holder. The sensor unit includes sensors disposed at an end of the receiver tubes and attached at the holder via respective flexible attaching elements. With the flexible attaching elements attached at the holder, the sensors are aligned relative to the respective laser collimators via the respective flexible attaching elements and are fixed in their aligned positions.

Claims (58)

1 . A vehicular lidar sensor module, the vehicular lidar sensor module comprising:

a laser unit, the laser unit comprising a housing, a laser printed circuit board, laser collimators and a first tension spring, wherein the first tension spring urges the laser collimators against respective reference surfaces of the housing;

wherein laser emitters of the laser printed circuit board are located at an end of respective laser collimators, and wherein the laser collimators collimate light emitted by the respective laser emitters so that collimated laser light is emitted from an end of the laser collimators opposite the end at which the laser emitters are located;

a sensor unit, the sensor unit comprising a holder, receiver tubes and a second tension spring, wherein the second tension spring urges the receiver tubes against respective reference surfaces of the holder;

wherein the holder of the sensor unit is attached at the housing of the laser unit, and wherein, with the holder attached at the housing, the receiver tubes are disposed along and adjacent to the laser collimators;

a cover unit attached at the housing of the laser unit;

wherein the sensor unit comprises sensors disposed at an end of respective receiver tubes, and wherein the sensors are attached at the holder via respective flexible attaching elements that allow for multiple-degrees of freedom of adjustment of the sensors relative to the receiver tubes; and

wherein, with the flexible attaching elements attached at the holder, the sensors are aligned relative to the respective laser collimators via the respective flexible attaching elements and are fixed in their aligned positions.

2 . The vehicular lidar sensor module of claim 1 , wherein the sensors are retained at respective nests of the holder.

3 . The vehicular lidar sensor module of claim 1 , wherein the sensor unit comprises mirror elements located at respective reference locations of the holder.

4 . The vehicular lidar sensor module of claim 1 , wherein the cover unit comprises a cover element and an electrical connector configured to electrically connect the vehicular lidar sensor module to a vehicle wire harness when the vehicular lidar sensor module is disposed at a vehicle equipped with the vehicular lidar sensor module.

5 . The vehicular lidar sensor module of claim 4 , wherein the electrical connector is retained at the cover element via a locking bracket.

6 . The vehicular lidar sensor module of claim 5 , wherein, with the cover element attached at the housing, the locking bracket engages a portion of the housing to limit or preclude detachment of the locking bracket.

7 . The vehicular lidar sensor module of claim 1 , wherein, with the vehicular lidar sensor module is disposed at a vehicle equipped with the vehicular lidar sensor module, light emitted by the laser collimators is reflected off of one or more objects exterior of the vehicle and received by the receiver tubes of the sensor unit and sensed by the sensors of the sensor unit.

8 . The vehicular lidar sensor module of claim 7 , wherein an electronic control unit of the vehicle detects presence of the one or more objects exterior of the vehicle via processing of outputs of the sensors of the sensor unit.

9 . The vehicular lidar sensor module of claim 1 , wherein the holder comprises a diecast holder.

10 . The vehicular lidar sensor module of claim 1 , wherein the housing comprises a diecast housing.

11 . The vehicular lidar sensor module of claim 1 , wherein a thermally conductive paste is disposed between and in contact with the laser printed circuit board and the housing.

12 . The vehicular lidar sensor module of claim 1 , further comprising a power printed circuit board.

13 . The vehicular lidar sensor module of claim 12 , wherein the first tension spring of the laser unit urges the power printed circuit board against the housing.

14 . The vehicular lidar sensor module of claim 12 , wherein a thermally conductive paste is disposed between and in contact with the power printed circuit board and the housing.

15 . The vehicular lidar sensor module of claim 1 , wherein the housing includes a plurality of heat sink elements to enhance heat dissipation.

16 . The vehicular lidar sensor module of claim 1 , wherein the first tension spring is disposed over the laser collimators and fixes the laser collimators and a power printed circuit board relative to the housing.

17 . The vehicular lidar sensor module of claim 1 , wherein attachment of the sensors at the holder via the respective flexible attaching elements allows for six-degrees of freedom of adjustment of the sensors relative to the receiver tubes.

18 . A vehicular lidar sensor module, the vehicular lidar sensor module comprising:

a laser unit, the laser unit comprising a housing, a laser printed circuit board, a power circuit board, laser collimators and a first tension spring, wherein the first tension spring urges the laser collimators against respective reference surfaces of the housing, and wherein the first tension spring urges the power printed circuit board against the housing;

wherein laser emitters of the laser printed circuit board are located at an end of respective laser collimators, and wherein the laser collimators collimate light emitted by the respective laser emitters so that collimated laser light is emitted from an end of the laser collimators opposite the end at which the laser emitters are located;

a sensor unit, the sensor unit comprising a holder, receiver tubes and a second tension spring, wherein the second tension spring urges the receiver tubes against respective reference surfaces of the holder;

wherein the holder of the sensor unit is attached at the housing of the laser unit, and wherein, with the holder attached at the housing, the receiver tubes are disposed along and adjacent to the laser collimators;

a cover unit attached at the housing of the laser unit;

wherein the sensor unit comprises sensors disposed at an end of respective receiver tubes, and wherein the sensors are attached at the holder via respective flexible attaching elements that allow for multiple-degrees of freedom of adjustment of the sensors relative to the receiver tubes;

wherein, with the flexible attaching elements attached at the holder, the sensors are aligned relative to the respective laser collimators via the respective flexible attaching elements and are fixed in their aligned positions; and

wherein the cover unit comprises a cover element and an electrical connector configured to electrically connect the vehicular lidar sensor module to a vehicle wire harness when the vehicular lidar sensor module is disposed at a vehicle equipped with the vehicular lidar sensor module.

19 . The vehicular lidar sensor module of claim 18 , wherein the electrical connector is retained at the cover element via a locking bracket.

20 . The vehicular lidar sensor module of claim 19 , wherein, with the cover element attached at the housing, the locking bracket engages a portion of the housing to limit or preclude detachment of the locking bracket.

21 . The vehicular lidar sensor module of claim 18 , wherein, with the vehicular lidar sensor module is disposed at the vehicle, light emitted by the laser collimators is reflected off of one or more objects exterior of the vehicle and received by the receiver tubes of the sensor unit and sensed by the sensors of the sensor unit, and wherein an electronic control unit of the vehicle detects presence of the one or more objects exterior of the vehicle via processing of outputs of the sensors of the sensor unit.

22 . The vehicular lidar sensor module of claim 18 , wherein the holder comprises a diecast holder, and wherein the housing comprises a diecast housing.

23 . The vehicular lidar sensor module of claim 18 , wherein a thermally conductive paste is disposed between and in contact with the laser printed circuit board and the housing.

24 . The vehicular lidar sensor module of claim 18 , wherein a thermally conductive paste is disposed between and in contact with the power printed circuit board and the housing.

25 . The vehicular lidar sensor module of claim 18 , wherein the housing includes a plurality of heat sink elements to enhance heat dissipation.

26 . The vehicular lidar sensor module of claim 18 , wherein attachment of the sensors at the holder via the respective flexible attaching elements allows for six-degrees of freedom of adjustment of the sensors relative to the receiver tubes.

27 . A vehicular lidar sensor module, the vehicular lidar sensor module comprising:

a laser unit, the laser unit comprising a housing, a laser printed circuit board, laser collimators and a first tension spring, wherein the first tension spring urges the laser collimators against respective reference surfaces of the housing;

wherein laser emitters of the laser printed circuit board are located at an end of respective laser collimators, and wherein the laser collimators collimate light emitted by the respective laser emitters so that collimated laser light is emitted from an end of the laser collimators opposite the end at which the laser emitters are located;

wherein the laser unit includes a beam splitter at the end of the laser collimators opposite the end at which the laser emitters are located;

a sensor unit, the sensor unit comprising a holder, receiver tubes and a second tension spring, wherein the second tension spring urges the receiver tubes against respective reference surfaces of the holder;

wherein the holder of the sensor unit is attached at the housing of the laser unit, and wherein, with the holder attached at the housing, the receiver tubes are disposed along and adjacent to the laser collimators;

a cover unit attached at the housing of the laser unit;

wherein the sensor unit comprises sensors disposed at an end of respective receiver tubes, and wherein the sensors are attached at the holder via respective flexible attaching elements that allow for multiple-degrees of freedom of adjustment of the sensors relative to the receiver tubes;

wherein, with the flexible attaching elements attached at the holder, the sensors are aligned relative to the respective laser collimators via the respective flexible attaching elements and are fixed in their aligned positions; and

wherein the cover unit comprises a cover element and an electrical connector configured to electrically connect the vehicular lidar sensor module to a vehicle wire harness when the vehicular lidar sensor module is disposed at a vehicle equipped with the vehicular lidar sensor module.

28 . The vehicular lidar sensor module of claim 27 , wherein the electrical connector is retained at the cover element via a locking bracket.

29 . The vehicular lidar sensor module of claim 28 , wherein, with the cover element attached at the housing, the locking bracket engages a portion of the housing to limit or preclude detachment of the locking bracket.

30 . The vehicular lidar sensor module of claim 27 , wherein, with the vehicular lidar sensor module disposed at the vehicle, light emitted by the laser collimators is reflected off of one or more objects exterior of the vehicle and received by the receiver tubes of the sensor unit and sensed by the sensors of the sensor unit, and wherein an electronic control unit of the vehicle detects presence of the one or more objects exterior of the vehicle via processing of outputs of the sensors of the sensor unit.

31 . The vehicular lidar sensor module of claim 27 , wherein the holder comprises a diecast holder, and wherein the housing comprises a diecast housing.

32 . The vehicular lidar sensor module of claim 27 , wherein a thermally conductive paste is disposed between and in contact with the laser printed circuit board and the housing.

33 . The vehicular lidar sensor module of claim 27 , wherein the housing includes a plurality of heat sink elements to enhance heat dissipation.

34 . The vehicular lidar sensor module of claim 27 , wherein attachment of the sensors at the holder via the respective flexible attaching elements allows for six-degrees of freedom of adjustment of the sensors relative to the receiver tubes.

Continuity (3)
Continuation 16190201 · Nov 14, 2018
Provisional Application 62586335 · Nov 15, 2017
Related Publication 20230083559A1 · Mar 16, 2023
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