LIGHT RECEIVER, LIGHT PROJECTOR, AND PHOTOELECTRIC SENSOR
20210018672 ยท 2021-01-21
Inventors
Cpc classification
G02B6/0076
PHYSICS
G02B6/0038
PHYSICS
G01D5/35338
PHYSICS
International classification
Abstract
Light receiver includes first optical element emitting received light to a light receiving fiber side; and second optical element collecting the light incident from the first optical element on a light receiving fiber. First optical element includes prism surface inclined with respect to light incident surface. The prism surface includes first surface 4a reflecting the incident light parallel to the light incident surface and second surface reflecting the light on a side opposite to the second optical element. The first surface includes first region in which the light reflected in parallel to the light incident surface is incident on the second optical element, and second region in which the light reflected in parallel to the light incident surface transmits through the adjacent second surface, is incident and refracts on the adjacent first surface, and is incident on the second optical element while being totally reflected inside the first optical element.
Claims
1. A light receiver for receiving light projected from a light projector and collecting the received light on a light receiving fiber, the light receiver comprising: a first optical element emitting the light projected from the light projector toward the light receiving fiber; and a second optical element collecting the light emitted from the first optical element on the light receiving fiber, wherein the first optical element includes a light incident surface on which the light projected from the light projector is incident, and a prism surface on which a plurality of prism portions each having a triangular cross section are periodically formed in a direction inclined with respect to the light incident surface, wherein each of the prism portions includes a first surface that reflects the light incident from the light incident surface toward the second optical element to be parallel to the light incident surface, and a second surface that reflects the light incident from the light incident surface in a direction opposite to the second optical element, wherein the first surface of each of the prism portions includes a first region and a second region, the first region causing the light to be directly incident on the second optical element, the second region causing the light to transmit through the second surface of the prism portion, to be incident and to refract on the first surface of another prism portion adjacent to the prism portion, and to be incident on the second optical element while being totally reflected inside the first optical element, and wherein the second optical element collects, on the light receiving fiber, the light incident from the first region and the light obtained by totally reflecting light incident from the second region by a side wall of the second optical element.
2. The light receiver of claim 1, wherein an angle 1 formed by the first surface and the light incident surface is an angle at which the light incident from the light incident surface is totally reflected by the first surface, and an angle 2 formed by the second surface and the light incident surface is an angle at which the light reflected by the first surface is not totally reflected by the second surface.
3. The light receiver of claim 1, wherein an angle 1 formed by the first surface and the light incident surface and an angle 2 formed by the second surface and the light incident surface satisfy a relationship of 2>1.
4. The light receiver of claim 1, wherein an intensity of the light reflected by the first region, an intensity of the light reflected by the second region, and an intensity of the light reflected by the second surface satisfy a relationship of .
5. The light receiver of claim 1, wherein in a spread of the light emitted from the second optical element and incident on an end surface of the light receiving fiber, a spread W1 of the light incident from first region and a spread W2 of the light incident from the second region satisfy a relationship of W2W1.
6. A light projector for projecting light to the light receiver of claim 1, wherein the light projector is disposed in pair with the light receiver and has a structure identical to a structure of the light receiver.
7. A photoelectric sensor comprising: the light receiver of claim 1 and a light projector for projecting light to the light receiver, wherein the light projector is disposed in pair with the light receiver and has a structure identical to a structure of the light receiver.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005]
[0006]
[0007]
[0008]
[0009]
DETAILED DESCRIPTIONS
[0010]
[0011]
[0012] Prism surface 42a is a region in which the reflected light of incident light 43 is directly incident on the light receiving fiber without hitting prism surface 42c, and prism surface 42b is a region in which the reflected light of incident light 44 is reflected by prism surface 42c and is not incident on the light receiving fiber. Prism surface 42c is a region through which incident light 45 directly transmits and is not incident on the light receiving fiber. Therefore, among the light incident on light incident surface 48, only light 43 reflected by prism surface 42a is incident on the light receiving fiber, and thereby a light receiving efficiency of the light receiving fiber deteriorates. When 1 is an angle formed by prism surfaces 42a and 42b, and light incident surface 48, and 2 is an angle formed by prism surface 42c and light incident surface 48, such a state occurs when 21.
[0013] The present disclosure is made in view of the points described above, and a main object of the present disclosure is to provide a light receiver in which a light receiving efficiency of a light receiving fiber is improved, and a light projector in which a light incident efficiency on the light receiver is improved.
[0014] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. The present disclosure is not limited to the embodiments described below. Appropriate changes can be made without departing from the scope in which effects of the present disclosure are achieved.
[0015]
[0016] As illustrated in
[0017] First optical element 2 includes light incident surface 3 on which light irradiated from the light projector (not illustrated) is incident, prism surface 4 in which a plurality of prism portions 10 each having a triangular cross section are periodically formed in an inclination direction inclined with respect to light incident surface 3, and light emitting surface 5 that emits the light reflected by prism surface 4 toward second optical element 6. Light emitting surface 5 is, for example, a cylindrical lens having a convex lens in a vertical direction in the drawing.
[0018] Second optical element 6 is formed of a substantially rectangular parallelepiped, and light incident surface 8 facing light emitting surface 5 of first optical element 2 is a cylindrical lens having a convex lens in a depth direction in the drawing.
[0019]
[0020] As illustrated in
[0021] As illustrated in
[0022] According to the present embodiment, in the light reflected by first surface 4a, not only the light reflected by first region A but also the light reflected by second region B can be incident on second optical element 6. Therefore, second optical element 6 collects, in light receiving fiber 1, the light incident from first region A and light obtained by totally reflecting the light incident from second region B on side wall 7 of second optical element 6. Therefore, the light receiving efficiency of light receiving fiber 1 can be improved.
[0023] In a case where angle 2 formed by second surface 4b and light incident surface 3 is larger than angle 1 formed by first surface 4a and light incident surface 3, a ratio of the light reflected by second surface 4b to the light incident on light incident surface 3 can be reduced. Thereby, the reflected light by second surface 4b, which is not incident on second optical element 6, can be reduced. As a result, the light receiving efficiency of light receiving fiber 1 can be further improved. Usually, the larger 2 is, the more remarkable the effect described above becomes, but an upper limit thereof is set to 290.
[0024] That is, in a case where angle 2 is larger than angle 1, in prism surface 4, an area of second surface 4b can be made smaller than an area of first surface 4a. Therefore, the ratio of the light reflected by second surface 4b to the light incident on light incident surface 3 can be made smaller than that of the light reflected by first surface 4a.
[0025] Angles 1 and 2 are geometrically determined according to a size of first optical element 2 and a size of second optical element 6, and can be derived by drawing or light ray tracing simulation.
[0026] In the reflected light divided into three optical paths by prism surface 4, when an intensity of the light reflected by first region A is a, an intensity of the light reflected by second region B is , and an intensity of the light reflected by second prism surface 4b is , it is preferable to adjust two angles 1 and 2 so as to satisfy a relationship of . Thereby, the light receiving efficiency of light receiving fiber 1 can be further improved.
[0027] In other words, in prism surface 4, when a projected area on light incident surface 3 corresponding to first region A is Sa, an projected area on light incident surface 3 corresponding to second region B is S, and a projected area on light incident surface 3 corresponding to second surface 4b is S, it is preferable to adjust two angles 1 and 2 so as to satisfy a relationship of SSS.
[0028] In a spread (spot diameter) of the light emitted from second optical element 6 and incident on an end surface of light receiving fiber 1, when a spread of the light incident from first region A is W1 and a spread of the light incident from second region B is W2, it is preferable to satisfy a relationship of W2W1. Therefore, it is possible to increase a positional deviation margin degree between second optical element 6 and light receiving fiber 1. For example, in a case where deviation on manufacturing occurs in light receiving fiber 1, if spread W2 is small, the light is not incident on light receiving fiber 1. However, if W2 is large, the light is incident on light receiving fiber 1 even if there is a slight deviation, and thereby the margin degree increases.
[0029] Light receiver 100 according to the present embodiment receives the light projected from the light projector, and collects the received light on light receiving fiber 1, and is disposed in pair with the light projector, thereby capable of constituting a photoelectric sensor.
[0030]
[0031] As illustrated in
[0032] In the present embodiment, light projector 200 has has a structure identical to a structure of the light receiver 100. In light projector 200, an optical path of the light emitted from projecting fiber 21 and emitted from first optical element 24 toward light receiver 100 is just opposite to the optical path, in light receiver 100, of the light incident on first optical element 2 and emitted to light receiving fiber 1.
[0033] That is, among the light emitted from light projecting fiber 21, light 32 that is incident on first optical element 24 without being reflected by side wall 23 of second optical element 22 is reflected by prism surface 26 of first optical element 24 and is projected to light receiver 100. On the other hand, light 31 reflected by side wall 23 of second optical element 22 and incident on first optical element 24 is totally reflected by side wall 23 of second optical element 22, is incident on first optical element 24, and is further reflected by prism surface 26 to be projected to light receiver 100. Therefore, the light incident efficiency on light receiver 100 can be improved.
[0034] Further, in the present embodiment, light receiver 100 and light projector 200 are disposed in pair to constitute the photoelectric sensor. Therefore, detection efficiency of an object in the photoelectric sensor can be improved.
[0035] According to the present disclosure, it is possible to provide a light receiver in which the light receiving efficiency of the light receiving fiber is improved, and a light projector in which the light incident efficiency on the light receiver is improved.
[0036] Although the present disclosure is described above with reference to the preferred embodiments, such description is not a limitation and, of course, various modifications can be made.