This application claims priority to European Patent Application No. 19176992.6, filed on May 28, 2019.
The present disclosure relates to an optical device comprising a heating element for de-frosting and de-fogging the optical element of the device.
An optical device such as a camera mounted inside and outside of a vehicle requires a lens de-frosting and de-fogging system. A known solution is provided by an external heating element located in front of the top optical element such as a lens or a glass element of the lens. The disadvantage of the existing solutions is the increase of the size of the camera system and the difficulty to make a reliable electrical connection between the heating element and the camera system and to have a fast assembly process.
It is therefore important to propose a new solution to solve this problem.
The present disclosure provides an optical device comprising a printed circuit board. The printed circuit board comprises an image capture electronic circuit and a lens holder extending along the optical axis of the optical device from its top extremity to its bottom extremity. The lens holder comprises a top optical element arranged on the top extremity of the lens holder. The lens holder is mounted on the printed circuit board so as to align, along the optical axis of the optical device, the image capture electronic circuit and the top optical element. The printed circuit board further comprises a heating element comprising a heating part arranged in contact with the top optical element and comprising a first electrical conductive wire and a second electrical conductive wire. Each electrical conductive wire extends from the heating part to its bottom extremity. The bottom extremity of each electrical conductive wire is directly attached in electrical contact with the printed circuit board. The optical device further comprises a first wire insertion guide element and in a second wire insertion guide element. The first electrical conductive wire and the second electrical conductive wire are respectively arranged in the first wire insertion guide element and in the second wire insertion guide element.
Each bottom extremity of each electrical conductive wire may comprise a rigid end. The printed circuit board may comprise two pass through hole from its top layer to its bottom layer. Each rigid end may be welded onto the bottom layer of the printed circuit board. The lens holder may comprise a cylindrical wall extending along the optical axis of the optical device from its top extremity to its bottom extremity and each wire insertion guide may comprise an open cavity extending through the cylindrical wall of the lens holder from an open top extremity of the cylindrical wall to an open bottom extremity of the cylindrical wall. Each open bottom extremity of each open cavity may be bearing against the printed circuit board and directly facing one pass through hole of the printed circuit board.
The present disclosure also provides an assembly method of the optical device described above comprising the steps of fixing the lens holder onto the printed circuit board comprising the image capture electronic circuit using a long drying time glue, inserting the first electrical conductive wire and the second electrical conductive wire of the heating element respectively into the first wire insertion guide element and into the second wire insertion guide element, arranging the heating part of the heating element on the top extremity of the lens holder, arranging the top optical element on the top extremity of the lens holder and in contact with the heating part of the heating element; aligning the image capture electronic circuit together with the top optical element according to the optical axis while glue is not dry, and fixing the bottom extremity of each electrical conductive wire to in electrical contact with the printed circuit board while glue is not dry.
The method may further comprise a step of preassembling of the top optical element together with the heater part of the heating element before being arranged on the top extremity of the lens holder.
The method may further comprise the steps of providing each electrical conductive wire of the heating element with rigid bottom electrical conductive extremity, and inserting the rigid bottom electrical conductive extremity of the first electrical conductive wire and the rigid bottom electrical conductive extremity of the second electrical conductive wire of the heating element respectively through a first pass through hole of the printed circuit board and through a second pass through hole of the printed circuit board.
Other features, objects and advantages of the present disclosure will become apparent from reading the detailed description that follows, and the attached drawing, given by way of example and in which:
According to the example of
For de-frosting or de-fogging purposes, the optical device 10 comprises a heating element 23. The heating element 23 comprises a heating part 24 and two electrical conductive wires 26, 28 extending from the heating part 24 to their bottom extremity 30, 32, each bottom extremity 30, 32 of the two electrical conductive wires 26, 28 are configured to be arranged in electrical contact with the first printed circuit board 12.
The heating part 24 of the heating element 23 is configured to be arranged in contact with the top optical element 22 such that, when generating heat, said heating part 24 is configured to defrost of defog the top optical element 22. In some embodiments, the heating 24 part is directly in contact with the top optical element 22 of the optical device 10.
According to the example embodiment of
According to the example of
To form an hermitical chamber between the top layer of the first printed circuit board 12 wherein the image capture electronic circuit 14 is arranged and the internal cavity 36 of the lens holder 16 wherein lenses may be arranged, the bottom extremity 20 of the lens holder 16 is fixed to the top layer of the first printed circuit board 12 by means of adhesive seal 38 such as a seal made of a glue. The glue is a glue or adhesive that does not dry substantially immediately such that the active alignment of the image capture electronic circuit 14 together with the optical lenses according to the optical axis O of the optical device 10 is proceeded or allowed while the glue is in its drying process. The glue is generally a type of a long drying time glue.
According to the example of
To enclose the first printed circuit board 12 and second printed circuit board 40 within the optical device 10, the optical device 10 comprises a bottom housing 47 comprising a connector 44 configured to provide electrical terminals for providing power supply to the second printed circuit board and access to the communication bus of the advanced driver assistance systems of the vehicle. The bottom housing 47 is sealed to the bottom extremity of the lens holder 16 by means of another adhesive seal 46.
According to the axial cut schematic of the optical device along its optical axis O shown in
More particularly, each wire insertion guide 48, 50 is an open cavity of the cylindrical wall 52 of the lens holder 16, said cylindrical wall 52 extending along the optical axis O of the optical device 10 from its top extremity 18 to its bottom extremity 20. The first wire insertion guide element 48 and the second wire insertion guide element 50 are both an open cavity extending through the cylindrical wall 52 of the lens holder 16 from an open top extremity 54, 46 of the cylindrical wall 52 to an open bottom extremity 58, 60 of the cylindrical wall.
For providing electrical contact between the first electrical conductive wire 26 and the second electrical conductive wire 28 with the first printed circuit board 12, the first printed circuit board 12 comprises two pass through holes 62, 64 from its top layer to its bottom layer such that each bottom extremity 30, 32 of the two electrical conductive wires 26, 28 are respectively arranged within the first pass through hole 62 and the second pass through hole 64, and welded in electrical contact with the first printed circuit board 12 from the bottom layer of the first printed circuit board 12.
In some embodiments, each bottom extremity 30, 32 of each electrical conductive wire 26, 28 comprises an electrical conductive rigid end with a diameter lower than each pass through hole 62, 64 of the first printed circuit board 12 such that they are inserted through the first printed circuit board 12 without any need of extra force, such that the optical alignment operation of the image capture electronic circuit 14 and the optical lenses of the optical device 10 with the optical axis O is not influenced by the assembly operation of the heating element 23 with the optical device 10.
According to
According to the example of
The heating part 24 of the heating element 23 is arranged in the circular heating element arrangement place 74 in between the outer cylindrical vertical wall 70 and the inner cylindrical vertical wall 72.
According to the example of
Each conductive rigid end of the two electrical conductive wires 26, 28 are arranged outside the outlets of each open cavity such that they are configured to pass through the two pass through holes 62, 64 of the first printed circuit board 12.
According to
According to the example of
Number | Date | Country | Kind |
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19176992 | May 2019 | EP | regional |
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20110304762 | Chiu | Dec 2011 | A1 |
20120170119 | Chu et al. | Jul 2012 | A1 |
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20190137723 | Bernal et al. | May 2019 | A1 |
Number | Date | Country |
---|---|---|
107690594 | Feb 2018 | CN |
107771009 | Mar 2018 | CN |
108696678 | Oct 2018 | CN |
201806171 | Feb 2018 | TW |
WO 2018147696 | Aug 2018 | WO |
Entry |
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WO 2018/147696, Aug. 16, 2018, Choi et al, English Translation (Year: 2018). |
CN 107771009, Mar. 6, 2018, Saito, English Translation (Year: 2018). |
TW 201806171, Balimann et al, Feb. 16, 2018—English Translation (Year: 2018). |
First Notification of Office Action for CN Application No. 202010223067.7 dated Jun. 1, 2021. |
Extended European Search Report for Application No. EP 19 17 6992 dated Nov. 13, 2019. |
Number | Date | Country | |
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20200379206 A1 | Dec 2020 | US |