Photosensor lens including a purality of convex lens surfaces
09733122 · 2017-08-15
Assignee
Inventors
Cpc classification
G01J1/08
PHYSICS
G01J1/0407
PHYSICS
G01J1/0411
PHYSICS
International classification
G01J1/08
PHYSICS
G02B19/00
PHYSICS
G01S7/481
PHYSICS
Abstract
An object of the present invention is to provide a photosensor lens which, in the case of using a plurality of light emitting elements to form a reflective photosensor, can maximize the efficiency of light irradiation of the light emitting elements with a simple structure. Provided is a photosensor lens configured to condense irradiation light from a plurality of light emitting elements 2 housed in a unit case 1 in a detection region 3 outside the unit case 1, and to condense reflected light from the detection region 3 at a light receiving element 4 in the unit case 1. A single convex lens surface 5 is formed on one side of the photosensor lens, and a light-receiving convex lens surface 6 sharing an optical axis with the single convex lens surface 5, and a plurality of light-emitting convex lens surfaces 7 each having an optical axis in parallel with the optical axis of the light-receiving convex lens surface 6 are integrally formed on the opposite side of the photosensor lens.
Claims
1. A photosensor unit configured to emit irradiation light to an outside of a unit case from a plurality of light emitting elements housed in the unit case, and to detect reflected light from the outside of the unit case with a light receiving element in the unit case, the photosensor unit comprising: a photosensor lens fixed to an opening of the unit case and configured to condense the irradiation light from the plurality of light emitting elements in a detection region outside the unit case, and to condense the reflected light from the detection region at the light receiving element in the unit case; a single convex lens surface formed on one side of the photosensor lens; a light-receiving convex lens surface sharing an optical axis with the single convex lens surface, and a plurality of light-emitting convex lens surfaces integrally formed on an opposite side of the photosensor lens; wherein each of the plurality of light-emitting convex lens surfaces has an optical axis in parallel with the optical axis of the light-receiving convex lens surface and is disposed on a circle centered at the light-receiving convex lens surface; and the light receiving element is disposed at a rear focal point position of the light-receiving convex lens surface, and each of the plurality of light emitting elements is disposed at a respective front focal point position of each of the plurality of light-emitting convex lens surfaces.
2. A door controlling device of a vehicle, comprising: the photosensor unit according to claim 1 attached to the vehicle; and a door controller configured to start a preparatory operation for moving a door of the vehicle when a detection object is detected based on a level of light reception at the light receiving element.
3. The photosensor unit according to claim 1, wherein the plurality of light emitting elements and the light receiving element are located on a surface of a same mounting board.
4. The photosensor unit according to claim 1, wherein the photosensor lens is located on a partition wall member disposed on a mounting board.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
MODE FOR CARRYING OUT THE INVENTION
(7)
(8) The unit case 1 includes a bracket 12 with a fixing flange 12a, and an inner case 13 fixed to the bracket 12. With a transparent synthetic resin material, the inner case 13 is formed in a tubular shape with one end closed, and is attached to the bracket 12 by inserting its open end into a front end opening of the bracket 12.
(9) Infrared LEDs configured to emit invisible light pulses such as infrared rays are used as the light emitting elements 2 while a photodiode is used as the light receiving element 4. These light emitting elements 2 and light receiving element 4 are mounted on the surface of the same mounting board 14.
(10) As shown in
(11) A partition member 15 is attached inside the unit case 1 to prevent irradiation light (detection light) from the light emitting elements 2 from directly entering the light receiving element 4. As shown in part (a) of
(12) As shown in part (c) of
(13) On the other hand, the space inside the rectangular frame portion 15a in the unit case 1 is separated by the separating walls 15c and used as passage spaces for the detection light emitted from the light emitting elements 2. In this example, four passage spaces are formed for the detection light to match the number of the light emitting elements 2, and each light emitting element 2 is disposed in a center portion of its passage space.
(14) Further, as shown in
(15) Furthermore, a photosensor lens 17 is attached to an upper end portion of the partition member 15.
(16) As shown in
(17) Each of the convex lens surfaces 5, 6, and 7 is formed by a spherical surface. The light-receiving convex lens surface 6 has a diameter substantially equal to the inner diameter of the shield tube portion 15b of the partition member 15 and is disposed at the center of the photosensor lens 17. This light-receiving convex lens surface 6 and the single convex lens surface 5 are situated in such a way as to share a rotation axis about which their spherical surfaces are defined by rotation. These single convex lens surface 5 and light-receiving convex lens surface 6 are attached by being positioned such that the above-mentioned shared rotation axis which serves as an optical path in the case where the single convex lens surface 5 and the light-receiving convex lens surface 6 are each a plano-convex lens, coincides with the center axis of the shield tube portion 15b of the partition member 15.
(18) In order to position the photosensor lens 17, positioning pillars 15e configured to be in contact with the four corners of the photosensor lens 17 are provided on the upper end of the partition member 15.
(19) On the other hand, each light-emitting convex lens surface 7 is formed such that the optical axis thereof is in parallel with the optical axis of the light-receiving convex lens surface 6 and the diameter thereof is substantially equal to the length of one side of a section separated by the separating walls 15c of the partition member 15, and is disposed such that one light emitting element 2 is located on each optical axis. A groove 8 is formed at the boundary portion of the light-emitting convex lens surface 7 and the light-receiving convex lens surface 6 and prevents irradiation light introduced from the light-emitting convex lens surface 7 from entering the region of the light-receiving convex lens surface 6.
(20) Thus, in this embodiment, with the light emitting element 2 situated at the front focal point position (f7) of the light-emitting convex lens surface 7, the irradiation light from the light emitting element 2 is converted into parallel light by the light-emitting convex lens surface 7, travels through the photosensor lens 17, and is then condensed by the single convex lens surface 5 at the rear focal point position (f5) of the single convex lens surface 5.
(21) Thus, by setting a detection region 3 near the rear focal point position (f5) of the single convex lens surface 5 in a state where the photosensor unit (A) is fixed as shown in
(22)
(23) The door controlling device is configured as a back-door controlling device for controlling opening-closing operations of a power back door which is driven by a driving device 18 such as a damper device. The door controlling device includes the photosensor unit (A) fixed to a back door 19 of the vehicle 9, and a door controlling unit 10 for controlling the driving device 18.
(24) The photosensor unit (A) is configured to output a detection signal when detecting that the detection object 11 enters the predetermined detection region 3 into which the detection light is emitted. The photosensor unit (A) is fixed to an upper wall portion of a license-plate attaching recess 21 covered by a license-plate finisher 20. Note that reference numeral 22 in
(25) Moreover, in this example, the optical axis of the detection light is inclined slightly toward to the inside of the vehicle 9 (by an angle θ) so that the center of the detection region 3 of the photosensor unit (A) can be situated inside the license-plate attaching recess 21. In this way, it is possible to prevent unnecessary reaction of the photosensor unit (A) by a person, animal, trash or the like other than the user of the vehicle 9 present near the vehicle 9, which would otherwise occur due to decrease in detection performance outside the license-plate attaching recess 21.
(26) In this example, when the photosensor unit (A) outputs a detection signal, the door controlling unit 10 first performs preparatory operations such as authentication of an electronic key the user has, detection of the state of the back door, and a locking-unlocking operation, and then drives the driving device 18. The authentication of the electronic key is performed by authenticating an authentication code outputted by the electronic key through communication with an authentication device not shown. If the authentication is successful, the back door 19 is unlocked on condition that the back door 19 is closed, and the driving device 18 is then driven to start a door opening operation.
(27) Thus, in this embodiment, even when the user's hands are full with luggage or the like, the user can open the back door 19 only by moving the luggage or the like to the inside of the license-plate attaching recess 21 or the vicinity thereof which are set as the detection region 3 so that the photosensor unit (A) can detect the luggage or the like as the detection object 11. Accordingly, the convenience is improved.
EXPLANATION OF REFERENCE NUMERALS
(28) 1 UNIT CASE 2 LIGHT EMITTING ELEMENT 3 DETECTION REGION 4 LIGHT RECEIVING ELEMENT 5 SINGLE CONVEX LENS SURFACE 6 LIGHT-RECEIVING CONVEX LENS SURFACE 7 LIGHT-EMITTING CONVEX LENS SURFACE 8 GROOVE 9 VEHICLE 10 DOOR CONTROLLING UNIT