MIRROR ASSEMBLY AND METHOD OF REDUCING WIND NOISE THROB
20180208118 ยท 2018-07-26
Inventors
Cpc classification
B60R1/12
PERFORMING OPERATIONS; TRANSPORTING
B60R1/006
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R1/12
PERFORMING OPERATIONS; TRANSPORTING
B60J1/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A mirror assembly includes a support arm, a mirror housing carried on the support arm and a mirror body held in the housing. A dynamic surface is provided on the support arm. A control module is configured to displace the dynamic surface between a home position and a deployed position. In the deployed position a wind stream flowing over the dynamic surface is redirected and wind noise throb is reduced.
Claims
1. A mirror assembly, comprising: a support arm; a mirror housing carried on said support arm; a mirror body held in said mirror housing; a dynamic surface on said support arm; and a control module configured to displace said dynamic surface vertically between a home position and a deployed position.
2. The mirror assembly of claim 1, wherein said control module includes a controller and an actuator controlled by said controller.
3. The mirror assembly of claim 2, wherein said actuator includes a drive motor, a pinion driven by said drive motor and a gear rack carried on said dynamic surface wherein said pinion engages said gear rack.
4. The mirror assembly of claim 3, wherein said controller is configured to displace said dynamic surface between said home position to said deployed position in response to data input respecting window position status.
5. The mirror assembly of claim 4, wherein said controller is configured to displace said dynamic surface between said home position and said deployed position in response to data input respecting sound pressure within a passenger compartment of a motor vehicle on which said mirror assembly is carried.
6. The mirror assembly of claim 3, wherein said controller is configured to displace said dynamic surface between said home position and said deployed position in response to data input respecting sound pressure within a passenger compartment of a motor vehicle on which said mirror assembly is carried.
7. A method of reducing wind noise throb associated with a window of a motor vehicle, comprising: displacing, by actuator, a dynamic surface on a support arm of a mirror assembly from a home position to a deployed position whereby a wind stream flowing over said dynamic surface is redirected and wind noise throb is reduced; controlling operation of said actuator with a controller; and configuring said controller to displace said dynamic surface into said deployed position in response to said window being open.
8. (canceled)
9. (canceled)
10. The method of claim 7, including monitoring, by a window position status monitoring device, a current position of said window; and sending window position status data from said window position status monitoring device to said controller.
11. The method of claim 7, including configuring said controller to displace said dynamic surface into said deployed position in response to (a) said window being open and (b) sound pressure in a passenger compartment of said motor vehicle exceeding a predetermined threshold level.
12. The method of claim 11, including monitoring, by window position status monitoring device, a current position of said window; and sending current window position status data from said window position status monitoring device to said controller.
13. The method of claim 12, including monitoring, by sound pressure monitoring device, current sound pressure in the passenger compartment of said motor vehicle; and sending current sound pressure data from said sound pressure monitoring device to said controller.
14. The method of claim 7, including configuring said controller to displace said dynamic surface into said deployed position in response to (a) said window being open and (b) speed of said motor vehicle exceeding a predetermined threshold level.
15. The method of claim 14, including monitoring, by window position status monitoring device, a current position of said window; and sending window position status data from said window position status monitoring device to said controller.
16. The method of claim 15, including monitoring, by motor vehicle speed monitoring device, current speed of said motor vehicle; and sending current speed data from said motor vehicle speed monitoring device to said controller.
17. The method of claim 7, including configuring said controller to displace said dynamic surface into said home position in response to said window being closed.
18. The method of claim 7, including configuring said controller to displace said dynamic surface into said home position in response to a transmission of said motor vehicle being placed into park.
19. The method of claim 7, including configuring said controller to displace said dynamic surface into said home position in response to an ignition of said motor vehicle being turned off.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0014] The accompanying drawing figures incorporated herein and forming a part of the specification, illustrate several aspects of the mirror assembly and related method and together with the description serve to explain certain principles thereof. In the drawing figures:
[0015]
[0016]
[0017]
[0018]
[0019] Reference will now be made in detail to the present preferred embodiments of the mirror assembly, an example which is illustrated in the accompanying drawing figures.
DETAILED DESCRIPTION
[0020] Reference is now made to
[0021] A dynamic surface 20, in the form of a spoiler or sail surface is provided or carried on the support arm 18. In the illustrate embodiment, the dynamic surface 20 comprises a portion of the surface of the support arm 18 that is displaceable between a home position flush in the support arm (see
[0022] As illustrated in
[0023] The controller 24 may be a computing device such as a dedicated microprocessor or electronic control unit (ECU) operating in accordance with instructions from appropriate control software. Thus, as illustrated in
[0024] In some embodiments, the controller 24 may comprise a body control module or BCM and further include a human interface 36, a GPS/Geo Locator component 38, a display device such as a multi-function display with touchscreen capability 40 and a speech processor 42 that also communicate over the communication bus 34. The BCM may perform a number of interior body electrically based functions including, for example, interior locking, remote key entry, interior lighting, exterior lighting, windshield wiper control and the like. In some embodiments the BCM may also function to control entertainment functions (e.g. radio, CD player and communications such as telephone and internet communications over a wireless network). In some embodiments the BCM is connected by a communication bus (not shown) to other control modules that provide one or more of these additional functions.
[0025] The actuator 26 may take a number of different forms. In the illustrated embodiment, the actuator 26 comprises a drive motor 44 having a drive shaft 46 keyed to a pinion 48. The pinion 48 meshes with a gear rack 50 connected to and extending from the rear end of the dynamic surface 20. When the dynamic surface 20 is raised into the deployed position illustrated in
[0026] The controller 24 may be configured in a number of ways to control the displacement of the dynamic surface 20 between the home position and the deployed position and back again. As illustrated in
[0027] As should be apparent from the above description, a method is provided of reducing wind noise throb associated with an open window of a motor vehicle. That method includes the step of displacing, by the actuator 26, the dynamic surface 20 on the support arm 18 from the home position illustrated in
[0028] The operation of the actuator 26 is controlled by means of the controller 24. More specifically, the method may include configuring the controller 24 to displace the dynamic surface 20 into the deployed position in response to a window of the motor vehicle being open. Thus, it should be appreciated that the method may include the steps of monitoring, by the window position status monitoring device 60, a current position of the window and sending window position status data from the window position status monitoring device to the controller 24 through the second data input 58.
[0029] The method may also include the step of configuring the controller 24 to displace the dynamic surface 20 into the deployed position in response to (a) the window being open and (b) sound pressure in a passenger compartment of the motor vehicle exceeding a predetermined threshold level wherein that threshold level is indicative of undesirable wind noise throb.
[0030] In such an embodiment, the method may include the step of monitoring, by the window position status monitoring device 60, a current position of the window and sending current window position status data from the window position status monitoring device to the controller 24 through the second data input 58. Further, the method may include monitoring, by the sound pressure monitoring device 56, current sound pressure in the passenger compartment of the motor vehicle and sending current sound pressure data from the sound pressure monitoring device to the controller 24 through the first data input 54.
[0031] In another possible embodiment, the method may include the step of configuring the controller 24 to displace the dynamic surface 20 into the deployed position in response to (a) the window being open and (b) speed of the motor vehicle exceeding a predetermined threshold level having a known potential wind noise throb for the particular make and model of motor vehicle to which the mirror assembly 10 is connected. In such an embodiment, the method may further include monitoring, by the window position status monitoring device 60, a current position of the window and sending window position status data from the window position status monitoring device to the controller 24 through the second data input 58. Further, in such an embodiment, the method may also include monitoring, by motor vehicle speed monitoring device 64, current speed of the motor vehicle and sending current speed data from the motor vehicle speed monitoring device to the controller 24 through the third data input 62.
[0032] The method may also include the step of configuring the controller 24 to displace the dynamic surface 20 into the home position in response to the window being closed as confirmed by data received at the data input 58 from the window position status monitoring device 60.
[0033] The method may also include the step of configuring the controller 24 to displace the dynamic surface 20 into the home position in response to a transmission of the motor vehicle being placed into park as confirmed by data received at the fourth data input 66 from the transmission status monitoring device 68.
[0034] In yet another possible embodiment, the method may include the step of configuring the controller 24 to displace the dynamic surface 20 into the home position in response to an ignition switch of the motor vehicle being turned off as indicated by ignition switch status data received at the fifth data input 70 from the ignition switch monitoring device 72.
[0035] Any of these last three method steps described above ensure that the dynamic surface 20 on the support arm 18 is displaced into the home position when the motor vehicle is parked.
[0036] The foregoing has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the embodiments to the precise form disclosed. Obvious modifications and variations are possible in light of the above teachings. All such modifications and variations are within the scope of the appended claims when interpreted in accordance with the breadth to which they are fairly, legally and equitably entitled.