The present invention relates to an illumination optical system to be applied to an endoscope device.
Generally, an illumination optical system to be applied to an endoscope device includes a light guide bundle, which is a plurality of light guide fibers bound together, and a concave lens for illumination arranged in front of an illumination light emission end of the light guide bundle, and in the case of observing the inside of a body cavity by an endoscope device, illumination light emitted from a light source is guided by the light guide bundle, and the guided illumination light is diffused by the concave lens and distributed to an observation target region.
As an example of such an illumination optical system, Patent Literature 1 discloses one that uses a light guide bundle and one concave lens, for example.
Japanese Unexamined Patent Application, Publication No. Hei10-288742
However, with such an illumination optical system, illumination light emitted from a light guide fiber at a peripheral portion of a light guide bundle arranged near a concave lens is strongly refracted in a direction away from an optical axis at the time of passing through a concave surface at an outer peripheral portion of the concave lens. That is, the refracted illumination light hits a side surface without being emitted from a front end surface of the concave lens, and, as a result, the proportion of illumination light reaching an observation target to the entire illumination light is reduced, and sufficient luminous intensity distribution performance is not obtained.
The present invention is made in view of the circumstance described above, and its object is to provide an endoscopic illumination optical system capable of efficiently distributing illumination light emitted from a light source to an observation target and thereby enhancing the luminous intensity distribution performance.
To achieve the object described above, the present invention provides the following solution.
An aspect of the present invention provides an endoscopic illumination optical system, including a light guide bundle for guiding illumination light emitted from a light source, the light guide bundle being provided in an insertion portion of an endoscope device, and an illumination lens for distributing the illumination light emitted from the light guide bundle to an observation target, wherein the illumination lens includes two points of inflection in a vertical cross section including an optical axis of the lens, and includes a first concave surface that is located on an inner side of the two points of inflection, and an annular second concave surface that is located on an outer side of the two points of inflection and that is continuous with an outer periphery of the first concave surface, the second concave surface being arranged so as to face an outer peripheral edge of the light guide bundle in an optical axis direction, and wherein a distance A between the two points of inflection in the vertical cross section including the optical axis and a diameter dimension D of an end surface of the light guide bundle satisfy a following condition (1):
0.75≦A/D≦0.85 (1).
Hereinafter, an endoscopic illumination optical system according to an embodiment of the present invention will be described with reference to the drawings.
The illumination lens 11 includes, in a vertical cross section including the optical axis of the lens 11, two points of inflection P, a first concave surface 11a that is located on the inner side of the two points of inflection P, and an annular second concave surface 11b that is located on the outer side of the points of inflection P and that is continuous with an outer periphery of the first concave surface 11a.
With the illumination lens 11, a distance A between the two points of inflection P and a diameter dimension D of an end surface of the light guide bundle 10 satisfy the following condition (1).
0.75≦A/D≦0.85 (1)
By satisfying the condition (1), illumination light may be further diffused, and desirable luminous intensity distribution performance may be achieved.
On the other hand,
According to the table in
The upper limit value and the lower limit value of the condition (1) are determined for this reason.
Furthermore, with the illumination lens 11, a curvature radius R1 of the first concave surface 11a and a curvature radius R2 of the second concave surface 11b satisfy the following condition (2).
0.25≦|R2/R1|≦0.35 (2)
By satisfying the condition (2), the refraction of illumination light emitted from a light guide fiber at a peripheral portion of the light guide bundle in a direction away from the optical axis may be reduced while maintaining the diameter of the illumination lens to be small, and the luminous intensity distribution performance may be further enhanced.
In the case where |R2/R1| falls below the condition (2), the area of the second concave surface 11b of the concave surface of the illumination lens 11 becomes relatively small, and the illumination light at the peripheral portion of the light guide bundle is strongly refracted in a direction away from the optical axis and does not reach an observation target, and the illumination efficiency will fall below 75%.
In the case where |R2/R1| exceeds the condition (2), the area of the second concave surface 11b of the concave surface of the illumination lens 11 becomes relatively large, and the illumination light diffused at the first concave surface 11a is reduced, the luminous intensity distribution characteristic is reduced, and the illuminance at an angle 60° falls below the center illuminance of 5%.
The upper limit value and the lower limit value of the condition (2) are determined for this reason.
Moreover, the illumination lens 11 has the second concave surface 11b arranged, at an outer peripheral edge of the light guide bundle 10, facing an optical axis direction, and efficiently guides the illumination light emitted from a light guide fiber arranged at a peripheral portion of the light guide bundle to the second concave surface 11b.
According to the present invention, illumination light emitted from the light guide fiber 10a located near the center of the light guide bundle 10 is diffused by the first concave surface located in the center of the illumination lens 11. On the other hand, illumination light emitted from the light guide fiber 10a located at a peripheral portion of the light guide bundle 10 is refracted by the second concave surface facing the optical axis direction. The direction of the curve of the second concave surface is opposite to that of the first concave surface with the points of inflection as the boundary, and thus, illumination light incident on the second concave surface is refracted in a direction toward the center of the illumination lens.
Accordingly, illumination light emitted from the light guide fiber 20a located at a peripheral portion of the light guide bundle 10 is also emitted from a tip end surface (an aperture portion) 11c of the illumination lens, and the proportion of illumination light reaching an observation target to the entire illumination light is increased, and sufficient luminous intensity distribution performance may be obtained. That is, an effect is achieved that illumination light emitted from the light source is efficiently distributed to an observation target, and the luminous intensity distribution performance is enhanced.
Moreover, the illumination lens 11 includes, in a vertical cross section including the optical axis of the lens 11, the two points of inflection P, the first concave surface 11a that is located on the inner side of the two points of inflection P, and the annular second concave surface 11b that is located on the outer side of the points of inflection P and that is continuous with an outer periphery of the first concave surface 11a, and thus, for example, even if it is formed from an inexpensive glass material with low refractive index or from a material with low refractive index, such as resin, sufficient luminous intensity distribution performance may be achieved.
Furthermore, the tip end portion of an insertion portion of the endoscope and the illumination lens may be double moulded, for example, and in this case, the manufacturing cost may be further lowered.
In the following, concrete examples of the endoscopic illumination optical system according to the embodiment described above will be described as Examples 1 to 5.
The values of A/D and the values of |R2/R1| of the illumination optical systems for endoscopes according to Examples 1 to 5 described above are shown in
Number | Date | Country | Kind |
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2011-237111 | Oct 2011 | JP | national |
Number | Date | Country | |
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Parent | PCT/JP2012/077082 | Oct 2012 | US |
Child | 13873406 | US |