LED Crush Sensor
20170021790 ยท 2017-01-26
Assignee
Inventors
Cpc classification
B60N2/00
PERFORMING OPERATIONS; TRANSPORTING
B60N2210/22
PERFORMING OPERATIONS; TRANSPORTING
B60R21/0136
PERFORMING OPERATIONS; TRANSPORTING
B60N2/0033
PERFORMING OPERATIONS; TRANSPORTING
G01B11/16
PHYSICS
International classification
B60R21/0136
PERFORMING OPERATIONS; TRANSPORTING
B62D21/15
PERFORMING OPERATIONS; TRANSPORTING
G01B11/16
PHYSICS
B60R21/015
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A sensor assembly for detecting crush of a compliant material. The sensor assembly includes a light source such as an LED, and a light sensor. In one implementation, the sensor assembly is used for detecting and impact of a motor vehicle with an external object or structure. Crush of the energy absorbing material, which may be provided in the form of an open or closed cell type polymeric foam is detected through a change in the intensity of the reflected back light received by the light sensor in response to compression of the energy absorber material. Other applications are contemplated.
Claims
1. A crush sensor assembly for detecting compression of a compliant material, comprising: a light source generating light interacting with the compliant material, the compliant material of the type being partially transmissive and partially reflective of the light, and a light sensor positioned adjacent to the light source such that the sensor receives light produced by the light sensor which is reflected back to the light sensor from within the volume of the compliant material, and upon deformation of the compliant material, the intensity of the light received by the light sensor changes, thereby providing an indication of the compression of the compliant material.
2. The crush sensor assembly according to claim 1, wherein the light source and the light sensor are integrated into a sensor assembly.
3. The crush sensor assembly according to claim 1, wherein the compliant material is in the form of a polymeric foam material.
4. The crush sensor assembly according to claim 1, further comprising a controller for receiving a signal from the light sensor and for detecting a change in the intensity of light received by the light sensor for detecting the compression of the compliant material.
5. The crush sensor assembly according to claim 1, wherein the compliant material is formed of a polymeric material which is one of a closed cell foam, an open cell foam, and a gel.
6. The crush sensor assembly according to claim 1, wherein the light sensor is placed in contact with the compliant material both in a normal condition and a compressed condition.
7. The crush sensor assembly according to claim 1, further comprising wherein the crush sensor assembly is implemented as an impact detection sensor for mounting to a motor vehicle component and wherein the compliant material is provided in the form of an energy absorbing structure.
8. The crush sensor assembly according to claim 7, further comprising a vehicle component in the form of a cross body bumper beam with the sensor assembly positioned between the energy absorbing structure and the beam.
9. The crush sensor assembly according to claim claim 7, further comprising a front fascia covering the energy absorbing structure.
10. The crush sensor assembly according to claim claim 7, further comprising a plurality of the crush sensor assemblies arranged on a motor vehicle component.
11. The crush sensor assembly according to claim claim 7, wherein the motor vehicle component is in the form of the vehicle front end.
12. The crush sensor assembly according to claim 1, wherein the crush sensor assembly is implemented in a motor vehicle seat cushion structure for detecting compression of the seat cushion.
13. The crush sensor assembly according to claim 12, further comprising a plurality of the crush sensor assemblies mounted to a support structure within the seat cushion, and having a seat pad formed of the compliant material overlying the support structure.
14. The crush sensor assembly according to claim 1, wherein the crush sensor assembly is implemented as an electrical switch providing a changing electrical signal in response to compression of the compliant material.
15. The crush sensor assembly according to claim 1, further comprising: the compliant material in the form of a foam-type elastomeric material, a housing, to which the light source and the light sensor are mounted.
16. The crush sensor assembly according to claim 15, further comprising a controller for receiving a signal from the light sensor and for detecting a change in the intensity of light received by the light sensor for detecting compression of the compliant material.
17. The crush sensor assembly according to claim 15, wherein the light sensor is placed in contact with the compliant material both in a normal condition and a compressed condition.
18. The crush sensor assembly according to claim 15, further comprising wherein the crush sensor assembly is implemented as an impact detection sensor for mounting to a motor vehicle component and wherein the compliant material is provided in the form of an energy absorbing structure.
19. The crush sensor assembly according to claim 15, further comprising a vehicle structural element in the form of a cross body bumper beam with the sensor assembly positioned between the compliant material and the beam.
20. The crush sensor assembly according to claim claim 15, further comprising a plurality of the crush sensor assemblies arranged on a motor vehicle component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0021] With reference to
[0022]
[0023] Energy absorber structure 26 or other components formed of a compliant material may be provided in various configurations such as formed of an open or closed cell type polymer foam material. Polyurethane (PU) foam materials are frequently use for these applications. Open cell type foam materials are believed most suitable for use in connection with the present invention. Semi-rigid types such as Styrofoam may also be used as a compliant material with this invention. Gel type materials perhaps having interspersed reflective particle additives may also be used to provide the effect of the present invention.
[0024] Now with reference to
[0025]
[0026]
[0027] In an exemplary implementation of the present invention an electronic control unit (ECU) 40 is provided which provides a driver circuit for providing power to LED 28. Preferably some regulation of supply electrical current is provided to regulate the intensity of light emitted by LED 28. ECU 40 is also configured to detect the signal level from light sensor 30. An initializing of the responsiveness of sensor assembly 28 could be provided in which, upon powering up the vehicle, a routine is undertaken in which a signal representing the signal intensity from light sensor 30 is processed by ECU 40 and saved. An assumption is made that at such an initial condition, energy absorbing structure 26 is not compressed due to crush or impact. Energy absorbing structure 26 may however be maintained in a partially compressed state (as compared with its free state when it is separated from other components). A difference in the intensity of light detected by light sensor 30 is used to detect the occurrence of compression or crushing as may occur in an impact.
[0028] As compared with prior art sensors utilizing a light source, LED crush sensor 22 is preferably implemented such that LED 28 and light sensor 30 are positioned closely or compressed against the compliant material forming energy absorbing structure 26. The system relies upon energy absorbing structure 26 (or another component of a compliant material) becoming more internally reflective when crushed or compressed. Accordingly, some of the light reflected back to the light sensor 30 is from portions of the energy absorbing structure deep inside the compliant material body. This is distinguishable from systems which essentially measure the distance between the sensor assembly and a movable or deformable surface based on a change in the reflected light measured by a photodetector.
[0029]
[0030] Throughout this description reference is made to energy absorbing structure 26 and measuring crush of such structure. Energy absorbing structure 26 is further described here more broadly as formed of a compliant material. Moreover, sensing of crush of the compliant material is regarded as equivalent to measuring its compression, and therefore LED crush sensor 22 is more generically a compression or compressive sensor.
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[0032] Further embodiments and applications of sensor assembly 22 are also envisioned such as using the system as a switch in which an operator compresses compliant material such as an elastomeric foam covering sensor assembly 22 to activate some vehicle (or other) system for any applications were actively controlled switches are found. An example of such an embodiment is illustrated by
[0033] While the above description constitutes the preferred embodiment of the present invention, it will be appreciated that the invention is susceptible to modification, variation, and change without departing from the proper scope and fair meaning of the accompanying claims.