Projection optical system, and projector
The projection optical system, with a first lens group of negative power and a second lens group of positive power, addresses the need for a wider projection distance range by achieving a range of over 10 times, ensuring flexible adjustment and improved image quality.
Patent Information
- Application Number
- JP2021195268
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-01
- Publication Date
- 2025-06-18
- Estimated Expiration
- 2041-12-01
AI Technical Summary
There is a demand for a projection optical system capable of changing the projection distance by focusing and having a wider projection distance range.
The projection optical system consists of a first lens group with negative power and a second lens group with positive power, arranged from the magnification side to the reduction side. The system is telecentric on the reduction side from the second lens group, with specific conditional expressions for the focal lengths of the lens groups to achieve the desired performance.
The system achieves a projection distance range of more than 10 times, allowing for flexible adjustment of the projection distance and improved correction of aberrations, thereby enhancing the image quality and usability in various applications.
Smart Images

Figure 0007694362000001 
Figure 0007694362000002 
Figure 0007694362000003
Abstract
Description
Technical Field
[0001] The present invention relates to a projection optical system and a projector.
Background Art
[0002] A projection optical system capable of changing the projection distance is described in Patent Document 1. The projection optical system of Patent Document 1 includes, in order from the magnification side to the reduction side, a first lens group, a second lens group, a third lens group, a fourth lens group, and a fifth lens group. The first lens group includes, in order from the magnification side to the reduction side, a first sub-lens group, a second sub-lens group, and a third sub-lens group. When the projection distance is changed, focusing is performed by moving the first sub-lens group, the second sub-lens group, and the third sub-lens group in the optical axis direction. The projection distance of the projection optical system in this document is about 1000 to about 5000 mm. Therefore, the projection distance range of the projection optical system in this document is about 5 times. The projection distance range is the value obtained by dividing the longest projection distance by the shortest projection distance.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] There is a demand for a projection optical system capable of changing the projection distance by focusing and having a wider projection distance range.
Means for Solving the Problems
[0005] To solve the above problems, the projection optical system of the present invention has, in order from the magnification side to the reduction side, a first lens group having a negative power and a second lens group having a positive power. On the reduction side from the second lens group, it is telecentric, and the first lens group has a negative first lens group 1a having power, a negative power first lens group 1b located on the reduction side of the first lens group 1a, and a positive power located on the reduction side of the first lens group 1b first lens group 1c, and the first lens located on the most enlarged side of the first lens group 1a has a negative power near the optical axis and has an aspherical shape on both surfaces. The first lens group 1b and the first lens group 1c each move in the optical axis direction during focusing, and the focal length of the entire lens system is F, the focal length of the first lens group 1b is F1b, and the focal length of the first lens group 1c is F1c, and the air-equivalent length of the back focus is BF. Then, the following conditional expressions (1) to (3) are all satisfied. It is characterized by satisfying all of them. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) Also, the projection optical system of the present invention consists of a first lens group having a negative power and a second lens group having a positive power in order from the enlarged side to the reduction side. On the reduction side from the second lens group, it is telecentric, and the first lens group consists of a first lens group 1a having a negative power, a first lens group 1b having a negative power located on the reduction side of the first lens group 1a, and a first lens group 1c having a positive power located on the reduction side of the first lens group 1b. The first lens located on the most enlarged side of the first lens group 1a has a negative power near the optical axis and has an aspherical shape on both surfaces. The first lens group 1b and the first lens group 1c each move in the optical axis direction during focusing, and the focal length of the entire lens system is F, the first lens group 1a, and the first lens group 1b and the first lens group 1c each move in the optical axis direction during focusing, and the focal length of the entire lens system is F, the Let the focal length of the 1b lens group be F1b, the focal length of the first 1c lens group be F1c, and the air-equivalent length of the back focus be BF. Then, all of the following conditional expressions (1) to (3) are satisfied: 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) The first 1a lens group consists only of lenses having negative power, and the first 1b lens group consists only of lenses having negative power. The total number of lenses obtained by adding the number of lenses in the first 1a lens group and the number of lenses in the first 1b lens group is 3 or less. Let the focal length of the entire lens system be F, and the combined focal length of the first 1a lens group and the first 1b lens group be F1ab Then, it is characterized by satisfying the following conditional expression (4). 0.3 < |F / F1ab| < 1.0 (4) In addition, the projection optical system of the present invention comprises, in order from the magnification side to the reduction side, a first lens group having a negative power and a second lens group having a positive power. The reduction side from the second lens group is telecentric, and the first lens group comprises a first a lens group having a negative power, a first b lens group having a negative power located on the reduction side of the first a lens group, and a first c lens group having a positive power located on the reduction side of the first b lens group. The first lens located on the most magnification side of the first a lens group has a negative power near the optical axis and has an aspherical shape on both surfaces. The first b lens group and the first c lens group each move in the optical axis direction during focusing. Let the focal length of the entire lens system be F, the focal length of the first b lens group be F1b, the focal length of the first c lens group be F1c, and the air equivalent length of the back focus be BF. Then, all of the following conditional expressions (1) to (3) are satisfied: 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) The first a lens group consists of the first lens, the first b lens group consists of the second lens and the third lens located on the reduction side of the second lens. The first lens is made of resin. The second lens is a meniscus lens having a negative power and a convex shape on the magnification side surface. The third lens has a negative power and is provided with a concave shape on the reduction side surface. In addition, the projection optical system of the present invention comprises, in order from the magnification side to the reduction side, a first lens group having a negative power and a second lens group having a positive power. The reduction side from the second lens group is telecentric, and the first lens group comprises a first a lens group having a negative power, a first b lens group having a negative power located on the reduction side of the first a lens group, and a first c lens group having a positive power located on the reduction side of the first b lens group. The first lens located on the most magnification side of the first a lens group has a negative power near the optical axis and has an aspherical shape on both surfaces. The first b lens group and the first c lens group each move in the optical axis direction during focusing. Let the focal length of the entire lens system be F, the focal length of the first b lens group be F1b, the focal length of the first c lens group be F1c, and the air equivalent length of the back focus be BF. When the air equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied: 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) The first a lens group consists of the first lens and a second lens located on the reduction side of the first lens. The first lens is made of resin, and the second lens is a meniscus lens having a negative power and a convex shape on the enlargement side surface. The first b lens group consists of a third lens. The third lens has a negative power and a concave shape on the reduction side surface. The enlargement side surface of the third lens has a smaller power than the reduction side surface of the third lens. Moreover, the projection optical system of the present invention consists of a first lens group having a negative power and a second lens group having a positive power in order from the enlargement side to the reduction side. The reduction side from the second lens group is telecentric. The first lens group consists of a first a lens group having a negative power, a first b lens group having a negative power located on the reduction side of the first a lens group, and a first c lens group having a positive power located on the reduction side of the first b lens group. The first lens located on the most enlargement side among the first a lens group has a negative power near the optical axis and aspherical shapes on both surfaces. The first b lens group and the first c lens group move in the optical axis direction during focusing. When the focal length of the entire lens system is F, the focal length of the first b lens group is F1b, the focal length of the first c lens group is F1c, and the air equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied: 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) When the position where the chief ray of the maximum picture angle in the second lens group intersects the optical axis is defined as the aperture stop, the second lens group includes a second a lens group and a second b lens group located on the enlargement side of the aperture stop. The second a lens group is located on the enlargement side of the second b lens group. The second a lens group and the second b lens group move in the optical axis direction during zooming.
Figure 1
Figure 2
Figure 3
Figure 4
Figure 5
Figure 6
Figure 7
Figure 8
Figure 9
Figure 10
Figure 11
Figure 12
Figure 13
Figure 14
Figure 15
Figure 16
[0006] Next, the projector of the present invention is characterized by comprising a light modulation element that modulates light emitted from a light source, and the projection optical system described above that projects the light modulated by the light modulation element.
Brief Description of the Drawings
[0007] It is a diagram showing a schematic configuration of a projector including the projection optical system of the present invention. It is a ray diagram of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and reference distance of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and reference distance of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and long distance of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and long distance of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and short distance of the projection optical system of Example 1. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and short distance of the projection optical system of Example 1. It is a ray diagram of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and reference distance of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and reference distance of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and long distance of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and long distance of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and short distance of the projection optical system of Example 2. It is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and short distance of the projection optical system of Example 2. It is a ray diagram of the projection optical system of Example 3.
Figure 17
Figure 18
Figure 19
Figure 20
Figure 21
Figure 22
Figure 23
Figure 24
Figure 25
Figure 26
Figure 27
Figure 28
Figure 29
Figure 30
Embodiments for Carrying Out the Invention
[0008] Hereinafter, with reference to the drawings, an optical system and a projector according to embodiments of the present invention will be described.
[0009] (Projector) FIG. 1 is a diagram showing a schematic configuration of a projector including the projection optical system 3 of the present invention. As shown in FIG. 1, the projector 1 includes an image forming unit 2 that generates a projection image to be projected onto the screen S, a projection optical system 3 that enlarges the projection image and projects an enlarged image onto the screen S, and a control unit 4 that controls the operation of the image forming unit 2.
[0010] (Image Forming Unit and Control Unit) The image forming unit 2 includes a light source 10, a first integrator lens 11, a second integrator lens 12, a polarization conversion element 13, and a superimposing lens 14. The light source 10 is composed of, for example, an ultra-high pressure mercury lamp, a solid light source, or the like. The first integrator lens 11 and the second integrator lens 12 each have a plurality of lens elements arranged in an array. The first integrator lens 11 divides the light beam from the light source 10 into a plurality. Each lens element of the first integrator lens 11 condenses the light beam from the light source 10 near each lens element of the second integrator lens 12.
[0011] The polarization conversion element 13 converts the light from the second integrator lens 12 into predetermined linearly polarized light. The superimposing lens 14 superimposes the images of the lens elements of the first integrator lens 11 on the display areas of a liquid crystal panel 18R, a liquid crystal panel 18G, and a liquid crystal panel 18B, which will be described later, via the second integrator lens 12.
[0012] In addition, the image forming unit 2 includes a first dichroic mirror 15, a reflection mirror 16, a field lens 17R, and a liquid crystal panel 18R. The first dichroic mirror 15 reflects R light, which is a part of the light beam incident from the superimposing lens 14, and transmits G light and B light, which are parts of the light beam incident from the superimposing lens 14. The R light reflected by the first dichroic mirror 15 enters the liquid crystal panel 18R through the reflection mirror 16 and the field lens 17R. The liquid crystal panel 18R is a light modulation element. The liquid crystal panel 18R forms a red projection image by modulating the R light according to an image signal.
[0013] Furthermore, the image forming unit 2 includes a second dichroic mirror 21, a field lens 17G, and a liquid crystal panel 18G. The second dichroic mirror 21 reflects G light, which is a part of the light beam from the first dichroic mirror 15, and transmits B light, which is a part of the light beam from the first dichroic mirror 15. The G light reflected by the second dichroic mirror 21 enters the liquid crystal panel 18G through the field lens 17G. The liquid crystal panel 18G is a light modulation element. The liquid crystal panel 18G forms a green projection image by modulating the G light according to an image signal.
[0014] In addition, the image forming unit 2 includes a relay lens 22, a reflection mirror 23, a relay lens 24, a reflection mirror 25, a field lens 17B, a liquid crystal panel 18B, and a cross dichroic prism 19. The B light transmitted through the second dichroic mirror 21 enters the liquid crystal panel 18B via the relay lens 22, the reflection mirror 23, the relay lens 24, the reflection mirror 25, and the field lens 17B. The liquid crystal panel 18B is a light modulation element. The liquid crystal panel 18B forms a blue projection image by modulating the B light according to the image signal.
[0015] The liquid crystal panel 18R, the liquid crystal panel 18G, and the liquid crystal panel 18B surround the cross dichroic prism 19 from three directions. The cross dichroic prism 19 is a prism for light synthesis and generates a projection image by synthesizing the light modulated by each of the liquid crystal panels 18R, 18G, and 18B.
[0016] The projection optical system 3 enlarges and projects the projection image synthesized by the cross dichroic prism 19 onto the screen S.
[0017] The control unit 4 includes an image processing unit 6 to which an external image signal such as a video signal is input, and a display driving unit 7 that drives the liquid crystal panel 18R, the liquid crystal panel 18G, and the liquid crystal panel 18B based on the image signal output from the image processing unit 6.
[0018] The image processing unit 6 converts the image signal input from an external device into an image signal including gradations of each color. The display driving unit 7 operates the liquid crystal panel 18R, the liquid crystal panel 18G, and the liquid crystal panel 18B based on the projection image signals of each color output from the image processing unit 6. Thereby, the image processing unit 6 displays a projection image corresponding to the image signal on the liquid crystal panel 18R, the liquid crystal panel 18G, and the liquid crystal panel 18B.
[0019] (Projection optical system) Next, the projection optical system 3 will be described. FIG. 2 is a ray diagram of the projection optical system 3. In FIG. 2, the liquid crystal panels 18R, 18G, and 18B are represented as the liquid crystal panel 18. As shown in FIG. 2, a screen S is disposed on the conjugate plane on the magnifying side of the projection optical system 3. The liquid crystal panel 18 is disposed on the conjugate plane on the reducing side of the projection optical system 3.
[0020] As shown in FIG. 2, the liquid crystal panel 18 disposed on the conjugate plane on the reducing side forms a projection image on one side of the optical axis N of the projection optical system 3. The enlarged image projected onto the screen S by the projection optical system 3 is formed on the other side of the optical axis N.
[0021] Hereinafter, Examples 1 to 5 will be described as configuration examples of the projection optical system 3 mounted on the projector 1.
[0022] (Example 1) FIG. 2 is a ray diagram of the projection optical system 3A of Example 1. As shown in FIG. 2, the projection optical system 3A includes, in order from the magnifying side to the reducing side, a first lens group 31 having a negative power and a second lens group 32 having a positive power. The projection optical system 3A also includes a diaphragm 41 disposed inside the second lens group 32. The diaphragm 41 is disposed at a position where the chief ray of the maximum angle of view in the second lens group 32 intersects the optical axis N.
[0023] The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reducing side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reducing side of the first b lens group 34.
[0024] The first a lens group 33 consists of a first lens L1. The first lens L1 has a negative power near the optical axis N. The first lens L1 has a concave shape near the optical axis N on the magnifying side surface and a convex shape at the peripheral portion. The first lens L1 has a convex shape near the optical axis N on the reducing side surface and a concave shape at the peripheral portion. The first lens L1 has an aspherical shape on both surfaces.
[0025] The 1b lens group 34 consists of a second lens L2 and a third lens L3. The second lens L2 and the third lens L3 are arranged in this order from the magnifying side toward the reducing side. The second lens L2 has a negative power. The second lens L2 is a meniscus lens. The second lens L2 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The third lens L3 has a negative power. The third lens L3 is a meniscus lens. The third lens L3 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0026] The 1c lens group 35 consists of a fourth lens L4 and a fifth lens L5. The fourth lens L4 and the fifth lens L5 are arranged in this order from the magnifying side toward the reducing side. The fourth lens L4 and the fifth lens L5 are a cemented lens L21. The fourth lens L4 has a negative power. The fourth lens L4 is a meniscus lens. The fourth lens L4 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The fifth lens L5 has a positive power. The fifth lens L5 has a convex shape on both the magnifying side and reducing side surfaces.
[0027] The second lens group 32 includes a 2a lens group 36 having a negative power, a 2b lens group 37 having a positive power located on the reducing side of the 2a lens group 36, a 2c lens group 38 having a negative power located on the reducing side of the 2b lens group 37, and a 2d lens group 39 located on the reducing side of the 2c lens group 38. An aperture 41 is arranged between the 2b lens group 37 and the 2c lens group 38.
[0028] The 2a lens group 36 consists of a sixth lens L6 and a seventh lens L7. The sixth lens L6 and the seventh lens L7 are arranged in this order from the magnifying side toward the reducing side. The sixth lens L6 and the seventh lens L7 are a cemented lens L22. The sixth lens L6 has a positive power. The sixth lens L6 has a convex shape on both the magnifying side and reducing side surfaces. The seventh lens L7 has a negative power. The seventh lens L7 has a concave shape on both the magnifying side and reducing side surfaces.
[0029] The 2b lens group 37 consists of an eighth lens L8 and a ninth lens L9. The eighth lens L8 and the ninth lens L9 are arranged in this order from the magnification side toward the reduction side. The eighth lens L8 and the ninth lens L9 are a cemented lens L23 that are cemented together. The eighth lens L8 has a negative power. The eighth lens L8 is a meniscus lens. The eighth lens L8 has a convex shape on the magnification-side surface and a concave shape on the reduction-side surface. The ninth lens L9 has a positive power. The ninth lens L9 has a convex shape on both the magnification-side and reduction-side surfaces.
[0030] The 2c lens group 38 consists of a tenth lens L10 and an eleventh lens L11. The tenth lens L10 and the eleventh lens L11 are arranged in this order from the magnification side toward the reduction side. The tenth lens L10 and the eleventh lens L11 are a cemented lens L24 that are cemented together. The tenth lens L10 has a negative power. The tenth lens L10 has a concave shape on both the magnification-side and reduction-side surfaces. The eleventh lens L11 has a positive power. The eleventh lens L11 is a meniscus lens. The eleventh lens L11 has a convex shape on the magnification-side surface and a concave shape on the reduction-side surface.
[0031] The 2d lens group 39 consists of nine lenses from a twelfth lens L12 to a twentieth lens L20. The twelfth lens L12 to the twentieth lens L20 are arranged in this order from the magnification side toward the reduction side. The twelfth lens L12 has a negative power. The twelfth lens L12 has a concave shape on both the magnification-side and reduction-side surfaces. The twelfth lens L12 has an aspherical shape on both surfaces.
[0032] The thirteenth lens L13 has a positive power. The thirteenth lens L13 has a convex shape on both the magnification-side and reduction-side surfaces. The fourteenth lens L14 has a negative power. The fourteenth lens L14 has a concave shape on both the magnification-side and reduction-side surfaces. The fifteenth lens L15 has a positive power. The fifteenth lens L15 has a convex shape on both the magnification-side and reduction-side surfaces. The thirteenth lens L13, the fourteenth lens L14, and the fifteenth lens L15 are a cemented lens L25 that are cemented together.
[0033] The 16th lens L16 has a negative power. The 16th lens L16 has a concave shape on both the magnifying side and the reducing side. The 17th lens L17 has a positive power. The 17th lens L17 has a convex shape on both the magnifying side and the reducing side. The 16th lens L16 and the 17th lens L17 are a joined lens L26.
[0034] The 18th lens L18 has a negative power. The 18th lens L18 is a meniscus lens. The 18th lens L18 has a convex shape on the magnifying side and a concave shape on the reducing side. The 19th lens L19 has a positive power. The 19th lens L19 has a convex shape on both the magnifying side and the reducing side. The 18th lens L18 and the 19th lens L19 are a joined lens L27.
[0035] The 20th lens L20 has a positive power. The 20th lens L20 has a convex shape on both the magnifying side and the reducing side.
[0036] The 1st lens L1 is made of resin. The 2nd lens L2 to the 20th lens L20 are made of glass.
[0037] In the projection optical system 3A, the reducing side from the 20th lens L20 of the 2nd lens group 32 is telecentric. Telecentric means that the central ray of each light beam passing between the 20th lens L20 and the liquid crystal panel 18 arranged on the reducing side conjugate surface is parallel to or substantially parallel to the optical axis. In this specification, telecentric means that the angle formed by the central ray of each light beam and the optical axis N is within ±5°.
[0038] Here, the projection optical system 3A can change the projection distance. When changing the projection distance, the 1b lens group 34 and the 1c lens group 35 are each moved in the direction of the optical axis N for focusing.
[0039] In addition, the projection optical system 3A can vary the magnification of the enlarged image. When varying the magnification of the enlarged image, zooming is performed by moving the second a lens group 36, the second b lens group 37, and the second c lens group 38 in the direction of the optical axis N, respectively. In this example, the enlarged image has a magnification of approximately 1.08 times due to zooming.
[0040] Let the F number of the projection optical system 3A be FNo, the focal length of the entire system be F, the semi-field angle be ω, the back focus air equivalent value be BF, the focal length of the first b lens group 34 be F1b, the focal length of the first c lens group 35 be F1c, the combined focal length of the first a lens group 33 and the first b lens group 34 be F1ab, the focal length of the second a lens group 36 be F2a, the focal length of the second b lens group 37 be F2b, the focal length of the first lens group 31 be F1, and the focal length of the second lens group 32 be F2. Then, the data of the projection optical system 3A are as follows.
[0041] FNo 1.9 F (from wide-angle end to telephoto end) 7.540 mm to 8.140 mm ω (from wide-angle end to telephoto end) 60.6° to 58.9° BF 43.138 mm F1b -15.481 mm F1c 60.425 mm F1ab -10.463 mm F2a -63.165 mm F2b 34.515 mm F1 -79.200 mm F2 40.964 mm
[0042] The lens data of the projection optical system 3A are as follows. The surface numbers are assigned in order from the enlarged side to the reduced side. The signs are the signs of the screen, lens, diaphragm, dichroic prism, and liquid crystal panel. The data of the surface numbers that do not correspond to the screen, lens, diaphragm, dichroic prism, and liquid crystal panel are dummy data. The surfaces marked with * are aspherical surfaces. R is the radius of curvature. D is the axial surface interval. nd is the refractive index of the d line. νd is the Abbe number of the d line. The units of R and D are mm.
[0043] Symbol, Plane Number, R, D, nd, vd S, 0, Infinity, Variable Interval 1 L1, 1, *, -31.570, 5.000, 1.53116, 56.04 2, *, -69.927, Variable Interval 2 L2, 3, 81.356, 3.000, 1.83481, 42.72 4, 22.690, 10.537 L3, 5, 458.537, 2.000, 1.83481, 42.72 6, 26.354, Variable Interval 3 L4, 7, 135.736, 1.500, 1.72916, 54.68 L5, 8, 27.825, 9.500, 1.71736, 29.52 9, -60.798, Variable Interval 4 L6, 10, 81.675, 7.500, 1.80809, 22.76 L7, 11, -25.447, 1.500, 1.98612, 16.48 12, 50.481, Variable Interval 5 L8, 13, 51.590, 1.400, 1.77250, 49.60 L9, 14, 24.731, 8.500, 1.67270, 32.10 15, -35.296, Variable Interval 6 41, 16, Infinity, 1.531 L10, 17, -85.133, 2.500, 1.85150, 40.78 L11, 18, 19.584, 4.147, 1.86966, 20.02 19, 173.628, Variable Interval 7 L12, 20, *, -356.258, 1.500, 1.88202, 37.22 21, *, 48.253, 0.100 L13, 22, 30.697, 9.000, 1.72825, 28.46 L14, 23, -25.000, 1.500, 1.90043, 37.37 L15 24 29.537 8.660 1.48749 70.24 25 -27.531 0.100 L16 26 -78.802 1.200 2.00069 25.46 L17 27 57.829 8.600 1.48749 70.24 28 -32.323 0.200 L18 29 106.054 1.200 2.00100 29.13 L19 30 38.114 8.729 1.49700 81.54 31 -62.282 0.200 L20 32 74.967 11.000 1.49700 81.54 33 -35.710 2.000 19 34 Infinity 39.600 1.51680 64.20 35 Infinity 15.068 18 36 Infinity
[0044] Here, the projection optical system 3A of this example can change the projection distance among a reference distance, a short distance shorter than the reference distance, and a long distance longer than the reference distance. When the projection distance is changed, the 1b lens group 34 and the 1c lens group 35 are each moved in the direction of the optical axis N to perform focusing. Further, the projection optical system 3A of this example can perform zooming by moving the 2a lens group 36, the 2b lens group 37, and the 2c lens group 38 in the direction of the optical axis N, respectively. By performing zooming at each projection distance, the angle of view is changed between the wide-angle end and the telephoto end.
[0045] The variable intervals 1, 2, 3, 4, 5, 6, and 7 at each projection distance when focusing and zooming are shown below. Variable interval 1 is the projection distance. Variable interval 2 is the axial upper surface distance between the first lens L1 and the second lens L2. Variable interval 3 is the axial upper surface distance between the third lens L3 and the fourth lens L4. Variable interval 4 is the axial upper surface distance between the fifth lens L5 and the sixth lens L6. Variable interval 5 is the axial upper surface distance between the seventh lens L7 and the eighth lens L8. Variable interval 6 is the axial upper surface distance between the ninth lens L9 and the aperture 41. Variable interval 7 is the axial upper surface distance between the eleventh lens L11 and the twelfth lens L12.
[0046] When the projection distance is long distance, it is as follows.
[0047] Wide-angle end Telephoto end Variable interval 1 10900.000 10900.000 Variable interval 2 25.079 24.082 Variable interval 3 29.441 28.082 Variable interval 4 1.734 3.099 Variable interval 5 5.512 4.791 Variable interval 6 6.804 10.582 Variable interval 7 5.399 3.333
[0048] When the projection distance is the reference distance, it is as follows.
[0049] Wide-angle end Telephoto end Variable interval 1 1450.000 1450.000 Variable interval 2 25.436 24.453 Variable interval 3 29.510 28.154 Variable interval 4 1.308 2.656 Variable interval 5 5.512 4.791 Variable interval 6 6.804 10.582 Variable interval 7 5.399 3.333
[0050] When the projection distance is short, it is as follows.
[0051] Wide-angle end Telephoto end Variable interval 1 1000.000 1000.000 Variable interval 2 25.194 24.609 Variable interval 3 29.540 28.189 Variable interval 4 1.520 2.465 Variable interval 5 5.512 4.791 Variable interval 6 6.804 10.582 Variable interval 7 5.399 3.333
[0052] The projection distance of the projection optical system 3A is 10900.000 mm for the long distance and 1000.000 mm for the short distance. Therefore, the projection distance range of the projection optical system 3A is more than 10 times. The projection distance range is the value obtained by dividing the projection distance at the long distance by the projection distance at the short distance.
[0053] Each aspherical coefficient is as follows.
[0054] Surface number 1 2 Radius of curvature (R) -31.570 -69.927 Conic constant (K) -10.370 -100.000 Cubic coefficient (A) 2.73781E-04 1.98290E-04 Quartic coefficient (A) -2.15742E-06 8.09194E-06 Quintic coefficient (A) 8.79876E-08 -6.74624E-08 Sextic coefficient (A) -4.03014E-09 -2.39594E-09 Septimic coefficient (A) 6.94823E-11 -7.38272E-11 Octic coefficient (A) -1.34611E-12 4.31123E-12 Nonic coefficient (A) 3.83047E-14 -1.56689E-13 Decic coefficient (A) -1.76630E-16 4.09197E-15 Coefficient of 11th order (A) -1.68383E-17 -5.09746E-17 Coefficient of 12th order (A) 3.88736E-19 2.11792E-19 Coefficient of 13th order (A) -3.41429E-21 2.37578E-23 Coefficient of 14th order (A) 1.11872E-23 3.02995E-24
[0055] Surface number 20 21 Radius of curvature (R) -356.258 48.253 Conic constant (K) 0.000 -11.533 Coefficient of 4th order (A) -6.19357E-05 -3.73218E-05 Coefficient of 6th order (A) 2.03376E-07 2.29999E-07 Coefficient of 8th order (A) -3.62824E-10 -7.47999E-10 Coefficient of 10th order (A) -1.28903E-12 1.36328E-12 Coefficient of 12th order (A) 7.52849E-15 -2.42971E-16 Coefficient of 14th order (A) 5.08437E-27 -5.15036E-21 Coefficient of 16th order (A) 1.94873E-30 1.88458E-30
[0056] Here, for the projection optical system 3A in this example, assuming the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. Note that the focal length F in this case is the focal length of the entire lens system at the wide-angle end. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0057] In this example, F 7.540mm F1b - 15.481 mm That is, |F / F1b| = 0.487, satisfying the conditional expression (1).
[0058] In this example, F 7.540 mm F1c 60.425 mm That is, F / F1c = 0.125, satisfying the conditional expression (2).
[0059] In this example, F 7.540 mm BF 43.138 mm That is, BF / F = 5.721, satisfying the conditional expression (3).
[0060] Also, for the projection optical system 3A in this example, assuming the focal length of the entire lens system is F and the combined focal length of the first a lens group 33 and the first b lens group 34 is F1ab, the following conditional expression (4) is satisfied. Note that the focal length F in this case is the focal length of the entire lens system at the wide-angle end. 0.3 < |F / F1ab| < 1.0 (4)
[0061] In this example, F 7.540 mm F1ab - 10.463 mm That is, |F / F1ab| = 0.721, satisfying the conditional expression (4).
[0062] Also, for the projection optical system 3A in this example, assuming the focal length of the second a lens group 36 is F2a and the focal length of the second b lens group 37 is F2b, the following conditional expression (5) is satisfied. 1.0 < |F2a / F2b| < 4.0 (5)
[0063] In this example, F2a - 63.165 mm F2b 34.515 mm That is, |F2a / F2b| = 1.830, satisfying the conditional expression (5).
[0064] (Function and Effect) The projection optical system 3A in this example has, in order from the magnification side to the reduction side, a first lens group 31 having a negative power and a second lens group 32 having a positive power. The reduction side from the second lens group 32 is telecentric. The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reduction side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reduction side of the first b lens group 34. The first a lens group 33 consists of a single first lens L1. The first lens L1 has a negative power near the optical axis N and has an aspherical shape on both surfaces. The first b lens group 34 and the first c lens group 35 move in the direction of the optical axis N during focusing, respectively.
[0065] The projection distance range of the projection optical system 3A in this example is 10 times or more. In recent years, in event venues and the like, multi-projection that projects an integrated image by connecting enlarged images projected by a plurality of projectors may be used. For projectors used in such event venues, it is desired that the projection distance can be flexibly changed according to the size of the event venue and the like. In response to such a requirement, the projection distance range of the projection optical system 3A in this example is larger than that of a conventional projection optical system with a projection distance range of about 5 times. Therefore, if the projector 1 equipped with the projection optical system 3A is used, the projection distance can be flexibly changed.
[0066] In addition, in the projection optical system 3A of this example, since the first lens L1 has an aspherical shape on both surfaces, it is easy to correct the distortion aberration generated in the enlarged image projected onto the screen S.
[0067] In addition, for the projection optical system 3A of this example, when the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0068] Since the projection optical system 3A in this example satisfies the conditional expression (1), it is possible to suppress the occurrence of field curvature even when the projection distance range is about 10 times while maintaining sufficient back focus. Also, focus adjustment during focusing is easy.
[0069] That is, when the value of the conditional expression (1) exceeds the lower limit value, the focal length of the first b lens group 34 becomes too long. In other words, the negative power of the first b lens group 34 becomes too weak. As a result, the negative power of the entire first lens group 31 becomes weak, and it becomes difficult to maintain sufficient back focus. When the value of the conditional expression (1) exceeds the upper limit value, the focal length of the first b lens group 34 becomes too short. That is, the negative power of the first b lens group 34 becomes too strong. As a result, the movement amount during focusing becomes too small. As a result, the focus adjustment becomes difficult due to the high focus adjustment sensitivity, and the amount of field curvature when the projection distance is changed becomes large.
[0070] Also, since the projection optical system 3A in this example satisfies the conditional expression (2), it is possible to satisfactorily correct various aberrations caused by a change in the projection distance even when the projection distance range is about 10 times. That is, when the value of the conditional expression (2) exceeds the lower limit value, the positive power of the first c lens group 35 becomes too weak, or it comes to have negative power. As a result, it becomes difficult to satisfactorily correct the field curvature due to the variation of the projection distance. When the value of the conditional expression (2) exceeds the upper limit value, since the positive power becomes too strong, it becomes difficult to balance and correct the astigmatism from near the optical axis N to a high image height. Also, since the focus shift near the optical axis N becomes large, it becomes necessary again to align the focal position near the optical axis N by the first b lens group 34. As a result, the focusing becomes complicated.
[0071] Furthermore, since the projection optical system 3A satisfies the conditional expression (3), it becomes easy to secure the back focus. That is, when the value of the conditional expression (3) exceeds the lower limit value, the back focus becomes too short, making it difficult to secure space for placing a color-combining prism or a correction plate of a liquid crystal panel disposed on the reduction side of the projection optical system 3A. Also, when the back focus becomes too short, the distance between the liquid crystal panel and the color-combining prism becomes narrow, so it is likely that the surroundings of the liquid crystal panel and the color-combining prism become hot. Also, since the distance between the liquid crystal panel and the color-combining prism becomes narrow, it is difficult to secure space for air-cooling the surroundings of the liquid crystal panel and the color-combining prism.
[0072] In this example, the first lens group 33a consists only of lenses having negative power. The first lens group 34b consists only of lenses having negative power. The total number of lenses of the first lens group 33a and the first lens group 34b is three. Also, for the projection optical system 3A of this example, when the focal length of the entire lens system is F and the combined focal length of the first lens group 33a and the first lens group 34b is F1ab, the following conditional expression (4) is satisfied. 0.3 < |F / F1ab| < 1.0 (4)
[0073] Also, since the projection optical system 3A of this example satisfies the conditional expression (4), while securing a sufficient back focus, the number of lenses constituting the first lens group 33a and the first lens group 34b can be three or less. Furthermore, in the projection optical system 3A of this example, since the total of the number of lenses of the first lens group 33a and the number of lenses of the first lens group 34b is three, it is easy to suppress the weight of the front portion of the projection optical system 3A.
[0074] That is, when the value of conditional expression (4) exceeds the lower limit value, the combined focal length F1ab of the first a lens group 33 and the first b lens group 34 becomes too long, so the negative power of the combination of the first a lens group 33 and the first b lens group 34 becomes weak. As a result, it becomes difficult to ensure a sufficiently long back focus. Also, since the overall lens length becomes long, the projection optical system 3A becomes large-sized. When the value of conditional expression (4) exceeds the upper limit value, the combined focal length F1ab of the first a lens group 33 and the first b lens group 34 becomes too short, so the negative power of the combination of the first a lens group 33 and the first b lens group 34 becomes strong. As a result, in order to correct various aberrations, it becomes necessary to increase the number of lens elements, so the weight of the front part of the projection optical system 3A increases and the cost increases additionally.
[0075] In this example, the first a lens group 33 consists of a first lens L1 made of resin. The first b lens group 34 consists of a second lens L2 and a third lens L3 located on the reduction side of the second lens L2. The second lens L2 is a meniscus lens having a negative power and a convex shape on the enlargement side surface. The third lens L3 is a meniscus lens having a negative power and a concave shape on the reduction side surface. Here, when the first lens L1 is made of resin, the temperature coefficient of refractive index and the linear expansion coefficient, which change the refractive index with temperature, become larger compared to when the first lens L1 is made of glass. Therefore, the refractive index of the first lens L1 changes due to heat, and the shape is easily distorted. Thus, when the negative power of the first lens L1 is increased, the image quality of the enlarged image is easily affected by heat. On the other hand, in this example, the first b lens group 34 consists of two negative lenses, and the first b lens group 34 compensates for the power of the first lens L1. Thereby, an increase in the negative power of the first lens L1 can be suppressed, so it is possible to suppress the image quality of the enlarged image from being easily affected by heat. In the first b lens group 34, since the second lens L2 and the third lens L3 are negative meniscus lenses, the occurrence of astigmatism and the like during focusing can be suppressed.
[0076] Here, when performing zooming by moving the lens group in the direction of the optical axis N at a location where the change in the height of the light beam is large, the fluctuations in various aberrations generated by the zooming tend to be large. In contrast, in this example, the second lens group 32 has a diaphragm 41 disposed at a position where the chief ray of the maximum angle of view within the second lens group 32 intersects the optical axis N. The second lens group 32 includes a second a lens group 36 located on the magnification side of the diaphragm 41 and a second b lens group 37. The second a lens group 36 is located on the magnification side of the second b lens group 37. The second a lens group 36 and the second b lens group 37 move in the direction of the optical axis N respectively during zooming. Therefore, the generation of various aberrations during zooming can be suppressed. Note that since the diaphragm 41 is set for convenience in defining the F-number, it may be a virtual diaphragm. In the case of a projection optical system, since the light beam of the F-number determined by the illumination system in front of the liquid crystal panel 18 is incident, the diaphragm 41 may be disposed. However, since only the light beam determined by the illumination system passes through the diaphragm, the diaphragm 41 may not be particularly necessary in some cases. The diaphragm 41 can suppress the generation of various aberrations as described above by being disposed. However, the position of the diaphragm 41 is a place where all the light beams converge in the projection optical system. Light that spreads beyond the F-number of the illumination system, such as diffraction due to the miniaturization of the pixel size of the liquid crystal panel 18, hits the diaphragm, which may become a heat generation source, causing deformation of the lens surface shape and refractive index fluctuations, etc., leading to performance degradation. Therefore, there are cases where it is better not to dispose the diaphragm 41. In that case, a fixed diaphragm disposed at another lens position can suppress the generation of unnecessary light and suppress the generation of various aberrations.
[0077] Here, in multi-projection, even if a slight magnification error occurs for each projector, a deviation occurs in the adjacent enlarged images, resulting in a sense of incongruity in the integrated image. To address such a problem, the projection optical system 3A of this example can vary the magnification of the enlarged image by zooming. Thereby, it becomes easy to correct the magnification error for each projector. Also, in the projection optical system 3A, the generation of various aberrations due to zooming can be suppressed. Therefore, the projector 1 including the projection optical system 3A is suitable for multi-projection applications.
[0078] In this example, assuming that the focal length of the second a lens group 36 is F2a and the focal length of the second b lens group 37 is F2b, the following conditional expression (5) is satisfied. 1.0 < |F2a / F2b| < 4.0 (5)
[0079] Since the projection optical system 3A of this example satisfies the conditional expression (5), it is possible to suppress the occurrence of various aberrations while suppressing an increase in the overall lens length. That is, when the value of the conditional expression (5) exceeds the lower limit value, the focal length F2a of the second a lens group 36 becomes too short. In other words, the negative power of the second a lens group 36 becomes too strong. As a result, it becomes difficult to balance and correct the astigmatism at the wide-angle end and the telephoto end. When the value of the conditional expression (5) exceeds the upper limit value, the focal length of the second a lens group 36 becomes too long, or the focal length of the second b lens group 37 becomes too short. When the focal length of the second a lens group 36 becomes too long, the negative power of the second a lens group 36 decreases, so the movement amount of the second a lens group 36 increases. Thereby, the overall lens length increases. Further, when the focal length of the second b lens group 37 becomes too short, the positive power of the second b lens group 37 becomes too strong, so spherical aberration and coma aberration are likely to occur, and the contrast of the enlarged image decreases.
[0080] In this example, the second lens group 32 includes six cemented lenses. Therefore, chromatic aberration can be corrected well.
[0081] FIG. 3 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the reference distance of the projection optical system 3A. FIG. 4 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the reference distance of the projection optical system 3A. FIG. 5 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the long distance of the projection optical system 3A. FIG. 6 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the long distance of the projection optical system 3A. FIG. 7 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the short distance of the projection optical system 3A. FIG. 8 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the short distance of the projection optical system 3A. As shown in FIGS. 3 to 8, in the projection optical system 3A of this example, various aberrations in the enlarged image are suppressed.
[0082] (Example 2) FIG. 9 is a ray diagram of the projection optical system 3B of Example 2. As shown in FIG. 9, the projection optical system 3B includes, in order from the enlarged side to the reduced side, a first lens group 31 having a negative power and a second lens group 32 having a positive power. The projection optical system 3B also includes a diaphragm 41 disposed inside the second lens group 32. The diaphragm 41 is disposed at a position where the chief ray of the maximum angle of view intersects the optical axis N within the second lens group 32.
[0083] The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reduced side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reduced side of the first b lens group 34.
[0084] The first a lens group 33 consists of a first lens L1 and a second lens L2. The first lens L1 has a negative power near the optical axis N. The first lens L1 has a concave shape near the optical axis N on the enlarged side surface and a convex shape at the peripheral portion. The first lens L1 has a convex shape near the optical axis N on the reduced side surface and a concave shape at the peripheral portion. The first lens L1 has an aspherical shape on both surfaces. The second lens L2 has a negative power. The second lens L2 is a meniscus lens. The second lens L2 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0085] The first b lens group 34 consists of the third lens L3. The third lens L3 has a negative power. The third lens L3 is a meniscus lens. The third lens L3 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The magnifying side surface of the third lens L3 has a smaller power than the reducing side surface of the third lens L3.
[0086] The first c lens group 35 consists of the fourth lens L4 and the fifth lens L5. The fourth lens L4 and the fifth lens L5 are arranged in this order from the magnifying side to the reducing side. The fourth lens L4 and the fifth lens L5 are a joined lens L21. The fourth lens L4 has a negative power. The fourth lens L4 is a meniscus lens. The fourth lens L4 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The fifth lens L5 has a positive power. The fifth lens L5 has a convex shape on both the magnifying side and the reducing side surfaces.
[0087] The second lens group 32 includes a second a lens group 36 having a negative power, a second b lens group 37 having a positive power located on the reducing side of the second a lens group 36, a second c lens group 38 having a negative power located on the reducing side of the second b lens group 37, and a second d lens group 39 located on the reducing side of the second c lens group 38. A diaphragm 41 is disposed between the second b lens group 37 and the second c lens group 38.
[0088] The second a lens group 36 consists of the sixth lens L6 and the seventh lens L7. The sixth lens L6 and the seventh lens L7 are arranged in this order from the magnifying side to the reducing side. The sixth lens L6 and the seventh lens L7 are a joined lens L22. The sixth lens L6 has a positive power. The sixth lens L6 has a convex shape on both the magnifying side and the reducing side surfaces. The seventh lens L7 has a negative power. The seventh lens L7 has concave shapes on both the magnifying side and the reducing side.
[0089] The 2b lens group 37 is composed of the eighth lens L8. The eighth lens L8 has a positive power. The eighth lens L8 has convex shapes on the magnifying side and the reducing side surfaces.
[0090] The 2c lens group 38 consists of the ninth lens L9 and the tenth lens L10. The ninth lens L9 and the tenth lens L10 are arranged in this order from the magnifying side to the reducing side. The ninth lens L9 and the tenth lens L10 are a cemented lens L23 that are cemented together. The ninth lens L9 has a negative power. The ninth lens L9 has concave shapes on the magnifying side and the reducing side surfaces. The tenth lens L10 has a positive power. The tenth lens L10 is a meniscus lens. The tenth lens L10 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0091] The 2d lens group 39 consists of nine lenses from the eleventh lens L11 to the nineteenth lens L19. The eleventh lens L11 to the nineteenth lens L19 are arranged in this order from the magnifying side to the reducing side. The eleventh lens L11 has a negative power. The eleventh lens L11 has concave shapes on the magnifying side and the reducing side surfaces. The eleventh lens L11 has aspherical shapes on both surfaces.
[0092] The twelfth lens L12 has a positive power. The twelfth lens L12 has convex shapes on the magnifying side and the reducing side surfaces. The thirteenth lens L13 has a negative power. The thirteenth lens L13 has concave shapes on the magnifying side and the reducing side surfaces. The fourteenth lens L14 has a positive power. The fourteenth lens L14 has convex shapes on the magnifying side and the reducing side surfaces. The twelfth lens L12, the thirteenth lens L13, and the fourteenth lens L14 are a cemented lens L24 that are cemented together.
[0093] The 15th lens L15 has a negative power. The 15th lens L15 has a concave shape on both the magnifying side and the reducing side. The 16th lens L16 has a positive power. The 16th lens L16 has a convex shape on both the magnifying side and the reducing side. The 15th lens L15 and the 16th lens L16 are a cemented lens L25.
[0094] The 17th lens L17 has a negative power. The 17th lens L17 is a meniscus lens. The 17th lens L17 has a convex shape on the magnifying side and a concave shape on the reducing side. The 18th lens L18 has a positive power. The 18th lens L18 has a convex shape on both the magnifying side and the reducing side. The 17th lens L17 and the 18th lens L18 are a cemented lens L26.
[0095] The 19th lens L19 has a positive power. The 19th lens L19 has a convex shape on both the magnifying side and the reducing side.
[0096] The 1st lens L1 is made of resin. The 2nd lens L2 to the 19th lens L19 are made of glass.
[0097] In the projection optical system 3B, the side closer to the reduction side than the 19th lens L19 of the 2nd lens group 32 is telecentric.
[0098] Here, the projection optical system 3B can change the projection distance. When changing the projection distance, the 1b lens group 34 and the 1c lens group 35 are each moved in the direction of the optical axis N for focusing.
[0099] Also, the projection optical system 3B can vary the magnification of the magnified image. When varying the magnification of the magnified image, the 2a lens group 36, the 2b lens group 37, and the 2c lens group 38 are each moved in the direction of the optical axis N for zooming. In this example, by zooming, the magnified image becomes approximately 1.1 times.
[0100] Let the F-number of the projection optical system 3B be FNo, the focal length of the entire system be F, the half field angle be ω, the back focus air equivalent value be BF, the focal length of the first b lens group 34 be F1b, the focal length of the first c lens group 35 be F1c, the combined focal length of the first a lens group 33 and the first b lens group 34 be F1ab, the focal length of the second a lens group 36 be F2a, the focal length of the second b lens group 37 be F2b, the focal length of the first lens group 31 be F1, and the focal length of the second lens group 32 be F2. Then, the data of the projection optical system 3B is as follows.
[0101] FNo 1.9 F (wide angle end to telephoto end) 7.540 mm to 8.290 mm ω (wide angle end to telephoto end) 60.7° to 58.4° BF 43.091 mm F1b -32.013 mm F1c 84.863 mm F1ab -10.015 mm F2a -86.522 mm F2b 37.299 mm F1 -22.634 mm F2 47.802 mm
[0102] The lens data of the projection optical system 3B is as follows. The surface numbers are assigned in order from the magnifying side to the reducing side. The signs are the signs of the screen, lens, aperture, dichroic prism, and liquid crystal panel. The data of the surface numbers that do not correspond to the screen, lens, aperture, dichroic prism, and liquid crystal panel are dummy data. The surfaces marked with * are aspherical surfaces. R is the radius of curvature. D is the axial surface interval. nd is the refractive index of the d-line. νd is the Abbe number of the d-line. The units of R and D are mm.
[0103] Sign Surface number R D nd vd S 0 Infinity Variable interval 1 L1 1* -31.575 5.000 1.53116 56.04 2 * -71.341 23.233 L2 3 91.093 3.000 1.83481 42.72 4 25.642 Variable Interval 2 L3 5 864.103 2.000 1.83481 42.72 6 26.021 Variable Interval 3 L4 7 270.672 1.600 1.75500 52.32 L5 8 20.860 9.500 1.72825 28.46 9 -71.441 Variable Interval 4 L6 10 100.984 8.400 1.80809 22.76 L7 11 -23.648 1.500 1.98612 16.48 12 78.872 Variable Interval 5 L8 13 90.148 8.500 1.67270 32.10 14 -33.750 Variable Interval 6 41 15 Infinity 0.629 L9 16 -117.596 1.200 1.90043 37.37 L10 17 21.441 4.313 1.86966 20.02 18 310.198 Variable Interval 7 L11 19* Infinity 2.000 1.58913 61.15 20* 33.580 0.100 L12 21 28.329 9.109 1.72825 28.46 L13 22 -25.000 2.000 1.90043 37.37 L14 23 26.544 9.231 1.48749 70.24 24 -31.269 0.100 L15 25 -152.343 1.200 2.00069 25.46 L16 26 41.801 8.600 1.48749 70.24 27 -36.006 0.200 L17 28 87.217 1.200 2.00100 29.13 L18 29 37.711 8.261 1.49700 81.54 30 -80.531 0.200 L19 31 74.700 11.000 1.49700 81.54 32 -34.857 2.000 19 33 Infinity 39.600 1.51680 64.20 34 Infinity 15.412 18 35 Infinity
[0104] Here, the projection optical system 3B of this example can change the projection distance among a reference distance, a short distance shorter than the reference distance, and a long distance longer than the reference distance. When the projection distance is changed, the first b lens group 34 and the first c lens group 35 are each moved in the direction of the optical axis N to perform focusing. Further, the projection optical system 3B of this example can perform zooming by moving the second a lens group 36, the second b lens group 37, and the second c lens group 38 in the direction of the optical axis N, respectively. By performing zooming at each projection distance, the angle of view is changed between the wide-angle end and the telephoto end.
[0105] The variable intervals 1, 2, 3, 4, 5, 6, and 7 at each projection distance when focusing and zooming are shown below. The variable interval 1 is the projection distance. The variable interval 2 is the on-axis distance between the second lens L2 and the third lens L3. The variable interval 3 is the on-axis distance between the third lens L3 and the fourth lens L4. The variable interval 4 is the on-axis distance between the fifth lens L5 and the sixth lens L6. The variable interval 5 is the on-axis distance between the seventh lens L7 and the eighth lens L8. The variable interval 6 is the on-axis distance between the eighth lens L8 and the aperture 41. The variable interval 7 is the on-axis distance between the tenth lens L10 and the eleventh lens L11.
[0106] When the projection distance is the long distance, it is as follows.
[0107] Wide-angle end, telephoto end Variable interval 1 10900.000 10900.000 Variable interval 2 17.061 14.000 Variable interval 3 22.218 22.351 Variable interval 4 1.811 2.483 Variable interval 5 3.716 3.068 Variable interval 6 12.000 16.983 Variable interval 7 4.529 2.450
[0108] When the projection distance is the reference distance, it is as follows.
[0109] Wide-angle end, telephoto end Variable interval 1 1450.000 1450.000 Variable interval 2 17.394 14.648 Variable interval 3 22.491 22.459 Variable interval 4 1.205 1.727 Variable interval 5 3.716 3.068 Variable interval 6 12.000 16.983 Variable interval 7 4.529 2.450
[0110] When the projection distance is the near distance, it is as follows.
[0111] Wide-angle end, telephoto end Variable interval 1 1000.000 1000.000 Variable interval 2 17.608 14.950 Variable interval 3 22.540 22.512 Variable interval 4 0.942 1.372 Variable interval 5 3.716 3.068 Variable interval 6 12.000 16.983 Variable interval 7 4.529 2.450
[0112] The projection distance of the projection optical system 3B in this example is 10900.000 mm for the long distance and 1000.000 mm for the short distance. Therefore, the projection distance range of the projection optical system 3B is more than 10 times.
[0113] Each aspherical coefficient is as follows.
[0114] Surface number 1 2 Radius of curvature (R) -31.575 -71.341 Conic constant (K) -10.576 -100.000 Cubic coefficient (A) 2.62422E-04 2.03518E-04 Quartic coefficient (A) -2.02997E-06 7.52369E-06 Quintic coefficient (A) 9.01284E-08 -5.92772E-08 Sextic coefficient (A) -4.06408E-09 -2.39437E-09 Septimic coefficient (A) 6.82185E-11 -7.40732E-11 Octic coefficient (A) -1.31834E-12 4.30787E-12 Nonic coefficient (A) 3.81371E-14 -1.56730E-13 Decic coefficient (A) -1.74852E-16 4.09200E-15 Undecic coefficient (A) -1.68475E-17 -5.09492E-17 Dodecic coefficient (A) 3.88227E-19 2.11899E-19 Tridecic coefficient (A) -3.41524E-21 2.93682E-23 Tetradecic coefficient (A) 1.12637E-23 2.88167E-24
[0115] Surface number 19 20 Radius of curvature (R) Infinity 33.580 Conic constant (K) 0.000 -12.934 Quartic coefficient (A) -8.91805E-05 -3.83441E-05 Coefficient of 6th power (A) 3.87821E-07 2.88935E-07 Coefficient of 8th power (A) -1.13227E-09 -1.06878E-09 Coefficient of 10th power (A) 1.07229E-13 2.08521E-12 Coefficient of 12th power (A) 7.40469E-15 -1.03343E-15 Coefficient of 14th power (A) 5.04824E-27 -5.15036E-21 Coefficient of 16th power (A) 1.95009E-30 1.89620E-30
[0116] Here, for the projection optical system 3B in this example, assuming the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. Note that in this case, the focal length F is the focal length of the entire lens system at the wide-angle end. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0117] In this example, F 7.540mm F1b -32.013mm Therefore, |F / F1b| = 0.236, satisfying the conditional expression (1).
[0118] In this example, F 7.540mm F1c 84.863mm Therefore, F / F1c = 0.089, satisfying the conditional expression (2).
[0119] In this example, F 7.540mm BF 43.091mm Therefore, BF / F = 5.715, satisfying the conditional expression (3).
[0120] In addition, for the projection optical system 3B in this example, when the focal length of the entire lens system is F and the combined focal length of the first a lens group 33 and the first b lens group 34 is F1ab, the following conditional expression (4) is satisfied. Note that the focal length F in this case is the focal length of the entire lens system at the wide-angle end. 0.3 < |F / F1ab| < 1.0 (4)
[0121] In this example, F 7.540mm F1ab -10.015mm Therefore, |F / F1ab| = 0.753, satisfying the conditional expression (4).
[0122] In addition, for the projection optical system 3B in this example, when the focal length of the second a lens group 36 is F2a and the focal length of the second b lens group 37 is F2b, the following conditional expression (5) is satisfied. 1.0 < |F2a / F2b| < 4.0 (5)
[0123] In this example, F2a -86.522mm F2b 37.299mm Therefore, |F2a / F2b| = 2.320, satisfying the conditional expression (5).
[0124] (Function and Effect) In the projection optical system 3B of this example, the first a lens group 33 is composed of a first lens L1 made of resin and a second lens L2 located on the reduction side of the first lens L1. The second lens L2 has a negative power and is a meniscus lens having a convex shape on the enlargement side surface. The first b lens group 34 is composed of a third lens L3. The third lens L3 has a negative power and has a concave shape on the reduction side surface. More specifically, the third lens L3 has a negative power and is a meniscus lens having a concave shape on the reduction side surface. The power of the enlargement side surface of the third lens L3 is smaller than that of the reduction side surface of the third lens L3.
[0125] In this example, the first lens group 33a consists of two lenses, namely the first lens L1 and the second lens L2. Therefore, the power of the first lens group 33a can be borne by the two lenses, the first lens L1 and the second lens L2. Thus, while suppressing an increase in the negative power of the first lens L1, the negative power of the first lens group 33a can be increased. As a result, an increase in the power of the resin-made first lens L1 can be suppressed, so that it is possible to suppress the fact that the image quality of the magnified image is easily affected by heat.
[0126] In addition, since the negative power of the first lens group 33a can be increased, the first lens group 33b can be composed of a single lens. As a result, the first lens group 33b becomes lighter and is easier to move during focusing. Further, the power of the magnifying side surface of the third lens L3 is smaller than that of the reducing side surface of the third lens L3. Therefore, in the third lens L3, it is possible to suppress the aberration generated on the magnifying side surface. As a result, it is possible to suppress the occurrence of astigmatism and the like during focusing.
[0127] In this example, the second lens group 32 includes five cemented lenses. Therefore, chromatic aberration can be corrected well.
[0128] Here, since the projection optical system 3B of this example satisfies the conditional expressions (1) to (5), the same operational effects as those of the projection optical system 3A of the first embodiment can be obtained. FIG. 10 is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and the reference distance of the projection optical system 3B. FIG. 11 is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and the reference distance of the projection optical system 3B. FIG. 12 is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and the long distance of the projection optical system 3B. FIG. 13 is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and the long distance of the projection optical system 3B. FIG. 14 is a diagram showing spherical aberration, astigmatism, and distortion at the wide-angle end and the short distance of the projection optical system 3B. FIG. 15 is a diagram showing spherical aberration, astigmatism, and distortion at the telephoto end and the short distance of the projection optical system 3B. As shown in FIGS. 10 to 15, various aberrations in the enlarged image of the projection optical system 3B of this example are suppressed.
[0129] (Embodiment 3) FIG. 16 is a ray diagram of the projection optical system 3C of Embodiment 3. As shown in FIG. 16, the projection optical system 3C includes a first lens group 31 having a negative power and a second lens group 32 having a positive power in order from the enlargement side to the reduction side. Further, the projection optical system 3C includes a diaphragm 41 disposed inside the second lens group 32. The diaphragm 41 is disposed at a position where the chief ray of the maximum angle of view intersects the optical axis N within the second lens group 32.
[0130] The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reduction side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reduction side of the first b lens group 34.
[0131] The first lens group 33 consists of a first lens L1 and a second lens L2. The first lens L1 has a negative power near the optical axis N. The first lens L1 has a concave shape near the optical axis N on the magnifying side surface and a convex shape in the peripheral portion. The first lens L1 has a convex shape near the optical axis N on the reducing side surface and a concave shape in the peripheral portion. The first lens L1 has an aspherical shape on both surfaces. The second lens L2 has a negative power. The second lens L2 is a meniscus lens. The second lens L2 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0132] The first lens group 34 consists of a third lens L3. The third lens L3 has a negative power. The third lens L3 is a meniscus lens. The third lens L3 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The magnifying side surface of the third lens L3 has a smaller power than the reducing side surface of the third lens L3.
[0133] The first lens group 35 consists of a fourth lens L4 and a fifth lens L5. The fourth lens L4 and the fifth lens L5 are arranged in this order from the magnifying side to the reducing side. The fourth lens L4 and the fifth lens L5 are a cemented lens L21. The fourth lens L4 has a negative power. The fourth lens L4 has a concave shape on both the magnifying side and reducing side surfaces. The fifth lens L5 has a positive power. The fifth lens L5 has a convex shape on both the magnifying side and reducing side surfaces.
[0134] The second lens group 32 includes a second lens group 36 having a negative power, a second lens group 37 having a positive power located on the reducing side of the second lens group 36, a second lens group 38 having a negative power located on the reducing side of the second lens group 37, and a second lens group 39 located on the reducing side of the second lens group 38. An aperture 41 is arranged between the second lens group 37 and the second lens group 38.
[0135] The 2a lens group 36 consists of a sixth lens L6 and a seventh lens L7. The sixth lens L6 and the seventh lens L7 are arranged in this order from the magnification side toward the reduction side. The sixth lens L6 and the seventh lens L7 are a cemented lens L22 that are cemented together. The sixth lens L6 has a positive power. The sixth lens L6 has a convex shape on both the magnification side and the reduction side surfaces. The seventh lens L7 has a negative power. The seventh lens L7 has a concave shape on both the magnification side and the reduction side surfaces.
[0136] The 2b lens group 37 consists of an eighth lens L8 and a ninth lens L9. The eighth lens L8 and the ninth lens L9 are arranged in this order from the magnification side toward the reduction side. The eighth lens L8 and the ninth lens L9 are a cemented lens L23 that are cemented together. The eighth lens L8 has a negative power. The eighth lens L8 is a meniscus lens. The eighth lens L8 has a convex shape on the magnification side surface and a concave shape on the reduction side surface. The ninth lens L9 has a positive power. The ninth lens L9 has a convex shape on both the magnification side and the reduction side surfaces.
[0137] The 2c lens group 38 consists of a tenth lens L10 and an eleventh lens L11. The tenth lens L10 and the eleventh lens L11 are arranged in this order from the magnification side toward the reduction side. The tenth lens L10 and the eleventh lens L11 are a cemented lens L24 that are cemented together. The tenth lens L10 has a positive power. The tenth lens L10 is a meniscus lens. The tenth lens L10 has a concave shape on the magnification side surface and a convex shape on the reduction side surface. The eleventh lens L11 has a negative power. The eleventh lens L11 has a concave shape on both the magnification side and the reduction side surfaces.
[0138] The 2d lens group 39 consists of nine lenses from a twelfth lens L12 to a twentieth lens L20. The twelfth lens L12 to the twentieth lens L20 are arranged in this order from the magnification side toward the reduction side. The twelfth lens L12 has a negative power. The twelfth lens L12 has a concave shape on both the magnification side and the reduction side surfaces. The twelfth lens L12 has an aspherical shape on both surfaces.
[0139] The 13th lens L13 has a positive power. The 13th lens L13 has a convex shape on both the magnifying side and the reducing side. The 14th lens L14 has a negative power. The 14th lens L14 has a concave shape on both the magnifying side and the reducing side. The 15th lens L15 has a positive power. The 15th lens L15 has a convex shape on both the magnifying side and the reducing side. The 13th lens L13, the 14th lens L14, and the 15th lens L15 are a cemented lens L25.
[0140] The 16th lens L16 has a negative power. The 16th lens L16 has a concave shape on both the magnifying side and the reducing side. The 17th lens L17 has a positive power. The 17th lens L17 has a convex shape on both the magnifying side and the reducing side. The 16th lens L16 and the 17th lens L17 are a cemented lens L26.
[0141] The 18th lens L18 has a negative power. The 18th lens L18 is a meniscus lens. The 18th lens L18 has a convex shape on the magnifying side and a concave shape on the reducing side. The 19th lens L19 has a positive power. The 19th lens L19 has a convex shape on both the magnifying side and the reducing side. The 18th lens L18 and the 19th lens L19 are a cemented lens L27.
[0142] The 20th lens L20 has a positive power. The 20th lens L20 has a convex shape on both the magnifying side and the reducing side.
[0143] The 1st lens L1 is made of resin. The 2nd lens L2 to the 20th lens L20 are made of glass.
[0144] In the projection optical system 3C, the reducing side from the 20th lens L20 of the 2nd lens group 32 is telecentric. Telecentric means that the central ray of each light beam passing between the 20th lens L20 and the liquid crystal panel 18 arranged on the reducing side conjugate surface is parallel to the optical axis or substantially parallel to the optical axis.
[0145] Here, the projection optical system 3C can change the projection distance. When changing the projection distance, the first b lens group 34 and the first c lens group 35 are each moved in the direction of the optical axis N for focusing.
[0146] In addition, the projection optical system 3C can change the magnification of the enlarged image. When changing the magnification of the enlarged image, the second a lens group 36, the second b lens group 37, and the second c lens group 38 are each moved in the direction of the optical axis N for zooming. In this example, by zooming, the enlarged image becomes about 1.05 times.
[0147] Let the F number of the projection optical system 3C be FNo, the focal length of the entire system be F, the semi-field angle be ω, the back focus air equivalent value be BF, the focal length of the first b lens group 34 be F1b, the focal length of the first c lens group 35 be F1c, the combined focal length of the first a lens group 33 and the first b lens group 34 be F1ab, the focal length of the second a lens group 36 be F2a, the focal length of the second b lens group 37 be F2b, the focal length of the first lens group 31 be F1, and the focal length of the second lens group 32 be F2. Then, the data of the projection optical system 3C is as follows.
[0148] FNo 1.9 F (wide-angle end to telephoto end) 7.540 mm to 7.920 mm ω (wide-angle end to telephoto end) 60.7° to 59.6° BF 43.138 mm F1b -26.039 mm F1c 104.187 mm F1ab -14.785 mm F2a -86.000 mm F2b 34.141 mm F1 -21.864 mm F2 50.259 mm
[0149] The lens data of the projection optical system 3C is as follows. The surface numbers are assigned in order from the magnifying side to the reducing side. The signs are the signs of the screen, lens, aperture, dichroic prism, and liquid crystal panel. The data of the surface numbers that do not correspond to the screen, lens, aperture, dichroic prism, and liquid crystal panel are dummy data. The surfaces marked with * are aspherical. R is the radius of curvature. D is the axial surface interval. nd is the refractive index of the d-line. νd is the Abbe number of the d-line. The units of R and D are mm.
[0150] Sign Surface number R D nd vd S 0 Infinity Variable interval 1 L1 1* -31.925 5.000 1.53116 56.04 2* -69.616 20.969 L2 3 53.658 3.000 1.90043 37.37 4 26.168 Variable interval 2 L3 5 333.950 2.000 1.90043 37.37 6 21.961 Variable interval 3 L4 7 -91.514 2.000 1.72916 54.68 L5 8 25.283 9.000 1.76182 26.52 9 -49.528 Variable interval 4 L6 10 49.923 8.000 1.76182 26.52 L7 11 -24.583 1.837 1.98612 16.48 12 50.502 Variable interval 5 L8 13 78.023 1.200 1.73400 51.47 L9 14 33.567 9.000 1.69895 30.13 15 -32.065 Variable interval 6 41 16 Infinity 2.000 L10 17 -145.677 3.736 1.86966 20.02 L11 18 -22.645 1.200 1.90043 37.37 19 124.744 Variable interval 7 L12 20* Infinity 2.000 1.58913 61.15 21* 36.202 0.100 L13 22 26.378 10.904 1.74077 27.79 L14 23 -17.927 2.000 1.90043 37.37 L15 24 28.086 9.258 1.48749 70.24 25 -25.601 0.100 L16 26 -63.030 1.200 2.00069 25.46 L17 27 40.834 8.600 1.48749 70.24 28 -33.235 0.100 L18 29 71.777 1.200 2.00100 29.13 L19 30 35.238 8.789 1.49700 81.54 31 -71.773 0.100 L20 32 69.781 11.000 1.49700 81.54 33 -35.788 2.000 19 34 Infinity 39.600 1.51680 64.20 35 Infinity 15.065 18 36 Infinity
[0151] Here, the projection optical system 3C of this example can change the projection distance among a reference distance, a short distance shorter than the reference distance, and a long distance longer than the reference distance. When the projection distance is changed, the first b lens group 34 and the first c lens group 35 are each moved in the direction of the optical axis N for focusing. Further, the projection optical system 3C of this example can perform zooming by moving the second a lens group 36, the second b lens group 37, and the second c lens group 38 in the direction of the optical axis N, respectively. By performing zooming at each projection distance, the angle of view is changed between the wide-angle end and the telephoto end.
[0152] The relationships of the variable intervals 1, 2, 3, 4, 5, 6, and 7 at each projection distance when focusing and zooming are shown below. The variable interval 1 is the projection distance. The variable interval 2 is the axial upper surface interval between the second lens L2 and the third lens L3. The variable interval 3 is the axial upper surface distance between the third lens L3 and the fourth lens L4. The variable interval 4 is the axial upper surface distance between the fifth lens L5 and the sixth lens L6. The variable interval 5 is the axial upper surface distance between the seventh lens L7 and the eighth lens L8. The variable interval 6 is the axial upper surface distance between the ninth lens L9 and the diaphragm 41. The variable interval 7 is the axial upper surface distance between the eleventh lens L11 and the twelfth lens L12.
[0153] When the projection distance is the long distance, it is as follows.
[0154] Wide-angle end Telephoto end Variable interval 1 10900.000 10900.000 Variable interval 2 14.722 14.000 Variable interval 3 25.883 25.166 Variable interval 4 1.676 2.476 Variable interval 5 3.695 3.481 Variable interval 6 8.039 10.604 Variable interval 7 5.068 3.356
[0155] When the projection distance is the reference distance, it is as follows.
[0156] Wide-angle end, telephoto end Variable interval 1 1450.000 1450.000 Variable interval 2 15.209 14.452 Variable interval 3 26.054 25.335 Variable interval 4 1.018 1.855 Variable interval 5 3.695 3.481 Variable interval 6 8.039 10.604 Variable interval 7 5.068 3.356
[0157] When the projection distance is short, it is as follows.
[0158] Wide-angle end, telephoto end Variable interval 1 1000.000 1000.000 Variable interval 2 15.473 14.738 Variable interval 3 26.138 25.427 Variable interval 4 0.670 1.477 Variable interval 5 3.695 3.481 Variable interval 6 8.039 10.604 Variable interval 7 5.068 3.356
[0159] The projection distance of the projection optical system 3C in this example is 10900.000 mm for the long distance and 1000.000 mm for the short distance. Therefore, the projection distance range of the projection optical system 3C is more than 10 times.
[0160] Each aspherical coefficient is as follows.
[0161] Surface number 1 2 Radius of curvature (R) -31.925 -69.616 Conic constant (K) -10.280 -100.000 Cubic coefficient (A) 2.56214E-04 1.72672E-04 Quartic coefficient (A) -1.65047E-06 8.07117E-06 Coefficient of 5th degree (A) 8.61548E-08 -4.31471E-08 Coefficient of 6th degree (A) -3.95031E-09 -2.54588E-09 Coefficient of 7th degree (A) 6.48932E-11 -7.82864E-11 Coefficient of 8th degree (A) -1.34188E-12 4.27445E-12 Coefficient of 9th degree (A) 3.90508E-14 -1.56545E-13 Coefficient of 10th degree (A) -1.69162E-16 4.10349E-15 Coefficient of 11th degree (A) -1.69107E-17 -5.07510E-17 Coefficient of 12th degree (A) 3.86354E-19 2.14054E-19 Coefficient of 13th degree (A) -3.42934E-21 2.32114E-23 Coefficient of 14th degree (A) 1.16276E-23 1.82729E-24
[0162] Plane number 20 21 Radius of curvature (R) Infinity 36.202 Conic constant (K) 0.000 -11.142 Coefficient of 4th degree (A) -6.39966E-05 -2.44004E-05 Coefficient of 6th degree (A) 1.96912E-07 1.74843E-07 Coefficient of 8th degree (A) -8.43534E-12 -4.82077E-10 Coefficient of 10th degree (A) -2.66355E-12 1.36551E-12 Coefficient of 12th degree (A) 6.77398E-15 -6.43950E-15 Coefficient of 14th degree (A) 5.00647E-27 3.55555E-27 Coefficient of 16th degree (A) 1.95468E-30 1.91126E-30
[0163] Here, for the projection optical system 3C in this example, when the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. Note that the focal length F in this case is the focal length of the entire lens system at the wide-angle end. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0164] In this example, F 7.540mm F1b -26.039mm Therefore, |F / F1b| = 0.290, and conditional expression (1) is satisfied.
[0165] In this example, F 7.540mm F1c 104.187mm Therefore, F / F1c = 0.072, and conditional expression (2) is satisfied.
[0166] In this example, F 7.540mm BF 43.138mm Therefore, BF / F = 5.721, and conditional expression (3) is satisfied.
[0167] Also, for the projection optical system 3C in this example, when the focal length of the entire lens system is F and the combined focal length of the first a lens group 33 and the first b lens group 34 is F1ab, the following conditional expression (4) is satisfied. Note that the focal length F in this case is the focal length of the entire lens system at the wide-angle end. 0.3 < |F / F1ab| < 1.0 (4)
[0168] In this example, F 7.540mm F1ab -14.785mm Therefore, |F / F1ab| = 0.510, and conditional expression (4) is satisfied.
[0169] In addition, for the projection optical system 3C of this example, when the focal length of the second a lens group 36 is F2a and the focal length of the second b lens group 37 is F2b, the following conditional expression (5) is satisfied. 1.0 < |F2a / F2b| < 4.0 (5)
[0170] In this example, F2a -86.000mm F2b 34.141mm Therefore, |F2a / F2b| = 2.519, and the conditional expression (5) is satisfied.
[0171] (Function and effect) In the projection optical system 3C of this example, the first a lens group 33 is composed of two lenses, namely the first lens L1 and the second lens L2. Therefore, the power of the first a lens group 33 can be borne by the two lenses of the first lens L1 and the second lens L2. Thus, while suppressing an increase in the negative power of the first lens L1, the negative power of the first a lens group 33 can be increased. As a result, an increase in the power of the resin-made first lens L1 can be suppressed, so that it is possible to suppress the fact that the image quality of the enlarged image is easily affected by heat.
[0172] In addition, since the negative power of the first a lens group 33 can be increased, the first b lens group 34 can be composed of one lens. As a result, the first b lens group 34 becomes lighter and is easier to move during focusing. Also, the power of the surface of the third lens L3 on the enlargement side is smaller than that of the surface of the third lens L3 on the reduction side. Therefore, in the third lens L3, it is possible to suppress the aberration generated on the surface on the enlargement side. As a result, it is possible to suppress the occurrence of astigmatism and the like during focusing.
[0173] Since the projection optical system 3C of this example satisfies the conditional expressions (1) to (5), the same function and effect as those of the projection optical system 3A of Example 1 can be obtained. Also, in this example, the second lens group 32 includes six cemented lenses. Therefore, chromatic aberration can be corrected well.
[0174] FIG. 17 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the reference distance of the projection optical system 3C. FIG. 18 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the reference distance of the projection optical system 3C. FIG. 19 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the long distance of the projection optical system 3C. FIG. 20 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the long distance of the projection optical system 3C. FIG. 21 is a diagram showing spherical aberration, coma aberration, and distortion at the wide-angle end and the short distance of the projection optical system 3C. FIG. 22 0 is a diagram showing spherical aberration, coma aberration, and distortion at the telephoto end and the short distance of the projection optical system 3C. As shown in FIGS. 17 to 22, in the projection optical system 3C of this example, various aberrations in the enlarged image are suppressed.
[0175] (Example 4)
[0176] FIG. 23 is a ray diagram of the projection optical system 3D of Example 4. As shown in FIG. 23, the projection optical system 3D has, in order from the enlargement side to the reduction side, a first lens group 31 having a negative power and a second lens group 32 having a positive power. Further, the projection optical system 3D includes a diaphragm 41 disposed inside the second lens group 32. The diaphragm 41 is disposed at a position where the chief ray of the maximum angle of view intersects the optical axis N within the second lens group 32.
[0177] The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reduction side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reduction side of the first b lens group 34.
[0177] The first lens group 33 consists of the first lens L1. The first lens L1 has a negative power near the optical axis N. The first lens L1 has a concave shape near the optical axis N on the magnifying side surface and a convex shape in the peripheral portion. The first lens L1 has a convex shape near the optical axis N on the reducing side surface and a concave shape in the peripheral portion. The first lens L1 has an aspherical shape on both surfaces.
[0178] The first lens group 34 consists of the second lens L2 and the third lens L3. The second lens L2 and the third lens L3 are arranged in this order from the magnifying side to the reducing side. The second lens L2 has a negative power. The second lens L2 is a meniscus lens. The second lens L2 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The third lens L3 has a negative power. The third lens L3 is a meniscus lens. The third lens L3 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0179] The first lens group 35 consists of the fourth lens L4 and the fifth lens L5. The fourth lens L4 and the fifth lens L5 are arranged in this order from the magnifying side to the reducing side. The fourth lens L4 and the fifth lens L5 are a cemented lens L21. The fourth lens L4 has a negative power. The fourth lens L4 has a concave shape on both the magnifying side and reducing side surfaces. The fifth lens L5 has a positive power. The fifth lens L5 has a convex shape on both the magnifying side and reducing side surfaces.
[0180] The second lens group 32 consists of 14 lenses from the sixth lens L6 to the nineteenth lens L19. The sixth lens L6 to the nineteenth lens L19 are arranged in this order from the magnifying side to the reducing side. The second lens group 32 is fixed. An aperture 41 is arranged between the eighth lens L8 and the ninth lens L9.
[0181] The sixth lens L6 has a positive power. The sixth lens L6 is a meniscus lens. The sixth lens L6 has a concave shape on the magnifying side surface and a convex shape on the reducing side surface. The seventh lens L7 has a negative power. The seventh lens L7 is a meniscus lens. The seventh lens L7 has a concave shape on the magnifying side surface and a convex shape on the reducing side surface. The sixth lens L6 and the seventh lens L7 are a combined lens L22 joined together.
[0182] The eighth lens L8 has a positive power. The eighth lens L8 has convex shapes on both the magnifying side and reducing side surfaces.
[0183] The ninth lens L9 has a negative power. The ninth lens L9 has concave shapes on both the magnifying side and reducing side surfaces. The tenth lens L10 has a positive power. The tenth lens L10 has convex shapes on both the magnifying side and reducing side surfaces. The ninth lens L9 and the tenth lens L10 are a combined lens L23 joined together.
[0184] The eleventh lens L11 has a negative power. The eleventh lens L11 has concave shapes on both the magnifying side and reducing side surfaces. The eleventh lens L11 has aspherical shapes on both surfaces.
[0185] The twelfth lens L12 has a positive power. The twelfth lens L12 has convex shapes on both the magnifying side and reducing side surfaces. The thirteenth lens L13 has a negative power. The thirteenth lens L13 has concave shapes on both the magnifying side and reducing side surfaces. The fourteenth lens L14 has a positive power. The fourteenth lens L14 has convex shapes on both the magnifying side and reducing side surfaces. The first 2 lens L1 2 、the first 3 lens L1 3 and the fourteenth lens L14 are a combined lens L24 joined together.
[0186] The 15th lens L15 has a negative power. The 15th lens L15 has a concave shape on both the magnifying side and the reducing side. The 16th lens L16 has a positive power. The 16th lens L16 has a convex shape on both the magnifying side and the reducing side. The 15th lens L15 and the 16th lens L16 are a joined lens L25.
[0187] The 17th lens L17 has a negative power. The 17th lens L17 is a meniscus lens. The 17th lens L17 has a convex shape on the magnifying side and a concave shape on the reducing side. The 18th lens L18 has a positive power. The 18th lens L18 has a convex shape on both the magnifying side and the reducing side. The 17th lens L17 and the 18th lens L18 are a joined lens L26.
[0188] The 19th lens L19 has a positive power. The 19th lens L19 has a convex shape on both the magnifying side and the reducing side.
[0189] The 1st lens L1 is made of resin. The 2nd lens L2 to the 19th lens L19 are made of glass.
[0190] In the projection optical system 3D, the side closer to the reduction side than the 19th lens L19 of the 2nd lens group 32 is telecentric.
[0191] Here, the projection optical system 3D can change the projection distance. When changing the projection distance, the 1b lens group 34 and the 1c lens group 35 are each moved in the direction of the optical axis N for focusing.
[0192] Let the F-number of the projection optical system 3D be FNo, the focal length of the entire system be F, the semi-field angle be ω, the back focus air conversion value be BF, the focal length of the 1b lens group 34 be F1b, the focal length of the 1c lens group 35 be F1c, the combined focal length of the 1a lens group 33 and the 1b lens group 34 be F1ab, the focal length of the 1st lens group 31 be F1, and the focal length of the 2nd lens group 32 be F2. Then, the data of the projection optical system 3D is as follows.
[0193] F No. 1.9 F 7.540 mm ω 60.7° BF 43.156 mm F1b -20.429 mm F1c 837.410 mm F1ab -14.785 mm F1 -17.355 mm F2 40.190 mm
[0194] The lens data of the projection optical system 3D is as follows. The surface numbers are assigned in order from the magnifying side to the reducing side. The signs are the signs of the screen, lens, aperture, dichroic prism, and liquid crystal panel. The data of the surface numbers that do not correspond to the screen, lens, aperture, dichroic prism, and liquid crystal panel are dummy data. The surfaces marked with * are aspherical. R is the radius of curvature. D is the axial surface interval. nd is the refractive index of the d-line. νd is the Abbe number of the d-line. The units of R and D are mm.
[0195] Sign Surface number R D nd vd S 0 Infinity Variable interval 1 L1 1* -34.584 5.000 1.53116 56.04 2* -68.772 Variable interval 2 L2 3 55.271 2.500 1.83481 42.72 4 26.388 8.742 L3 5 64.368 2.000 1.83481 42.72 6 19.757 Variable interval 3 L4 7 -56.430 1.500 1.72916 54.68 L5 8 25.000 12.000 1.69895 30.05 9 -51.078 Variable interval 4 L6 10 -118.104 9.000 1.80809 22.76 L7 11 -19.044 1.500 1.98612 16.48 12 -203.334 4.044 L8 13 243.448 6.345 1.69895 30.13 14 -33.370 16.326 41 15 Infinity 0.894 L9 16 -57.994 2.000 1.90043 37.37 L10 17 19.841 10.464 1.86966 20.02 18 -75.115 0.100 L11 19* 330.026 2.000 1.58913 61.15 20* 29.237 0.500 L12 21 25.613 7.782 1.72825 28.46 L13 22 -25.000 1.500 1.90043 37.37 L14 23 24.710 8.825 1.48749 70.24 24 -29.949 0.100 L15 25 -52.380 1.200 2.00069 25.46 L16 26 44.272 8.600 1.48749 70.24 27 -27.918 0.200 L17 28 74.624 1.200 2.00100 29.13 L18 29 34.572 8.901 1.49700 81.54 30 -56.314 0.200 L19 31 66.262 11.000 1.49700 81.54 32 -36.354 2.000 19 33 Infinity 39.600 1.51680 64.20 34 Infinity 15.084 18 35 Infinity
[0196] Here, the projection optical system 3D in this example can change the projection distance among a reference distance, a short distance shorter than the reference distance, and a long distance longer than the reference distance. When the projection distance is changed, the first b lens group 34 and the first c lens group 35 are each moved in the direction of the optical axis N for focusing.
[0197] The relationships of the variable intervals 1, 2, 3, and 4 at each projection distance when focusing are shown below. The variable interval 1 is the projection distance. The variable interval 2 is the on-axis distance between the first lens L1 and the second lens L2. The variable interval 3 is the on-axis distance between the third lens L3 and the fourth lens L4. The variable interval 4 is the on-axis distance between the fifth lens L5 and the sixth lens L6.
[0198] Long distance Reference distance Short distance Variable interval 1 10900.000 1450.000 1000.000 Variable interval 2 17.102 17.456 17.491 Variable interval 3 12.818 14.177 14.512 Variable interval 4 4.088 2.375 2.005
[0199] The projection distance of the projection optical system 3D in this example is 10900.000 mm for the long distance and 1000.000 mm for the short distance. Therefore, the projection distance range of the projection optical system 3D is more than 10 times.
[0200] Each aspherical coefficient is as follows.
[0201] Surface number 1 2 Radius of curvature (R) -34.584 -68.772 Conic constant (K) -11.401 -100.000 Cubic coefficient (A) 2.34194E-04 1.30494E-04 Quartic coefficient (A) -1.13226E-06 7.91852E-06 Quintic coefficient (A) 8.87260E-08 -5.09293E-08 Coefficient of 6th degree (A) -4.09380E-09 -2.35275E-09 Coefficient of 7th degree (A) 6.74074E-11 -7.44043E-11 Coefficient of 8th degree (A) -1.32006E-12 4.30173E-12 Coefficient of 9th degree (A) 3.85785E-14 -1.56644E-13 Coefficient of 10th degree (A) -1.78515E-16 4.09438E-15 Coefficient of 11th degree (A) -1.69184E-17 -5.09345E-17 Coefficient of 12th degree (A) 3.87634E-19 2.11593E-19 Coefficient of 13th degree (A) -3.41106E-21 1.84565E-23 Coefficient of 14th degree (A) 1.16140E-23 2.86559E-24
[0202] Face number 19 20 Radius of curvature (R) 330.026 29.237 Conic constant (K) 0.000 -11.363 Coefficient of 4th degree (A) -1.01832E-04 -4.16004E-05 Coefficient of 6th degree (A) 4.15400E-07 2.54288E-07 Coefficient of 8th degree (A) -1.02308E-09 -6.07846E-10 Coefficient of 10th degree (A) -1.11338E-12 -9.40986E-14 Coefficient of 12th degree (A) 1.48744E-14 4.12170E-15 Coefficient of 14th degree (A) 5.23764E-27 -5.15036E-21 Coefficient of 16th degree (A) 2.02623E-30 1.96665E-30
[0203] Here, for the projection optical system 3D of this example, assuming the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0204] In this example, F is 7.540 mm F1b is -20.429 mm Therefore, |F / F1b| = 0.369, satisfying the conditional expression (1).
[0205] In this example, F is 7.540 mm F1c is 837.410 mm Therefore, F / F1c = 0.009, satisfying the conditional expression (2).
[0206] In this example, F is 7.540 mm BF is 43.156 mm Therefore, BF / F = 5.724, satisfying the conditional expression (3).
[0207] Also, for the projection optical system 3D in this example, when the focal length of the entire lens system is F and the combined focal length of the first a lens group 33 and the first b lens group 34 is F1ab, the following conditional expression (4) is satisfied. 0.3 < |F / F1ab| < 1.0 (4)
[0208] In this example, F is 7.540 mm F1ab is -14.785 mm Therefore, |F / F1ab| = 0.510, satisfying the conditional expression (4).
[0209] Also, for the projection optical system 3D in this example, when the focal length of the first lens group 31 is F1 and the focal length of the second lens group 32 is F2, the following conditional expression (6) is satisfied. 0.1 < |F1 / F2| < 0.5 (6)
[0210] In this example, F1 - 17.355 mm F2 40.190 mm Therefore, |F1 / F2| = 0.432, satisfying the conditional expression (6).
[0211] (Function and effect) In the projection optical system 3D of this example, the first b lens group 34 consists of two negative lenses, and the first b lens group 34 compensates for the power of the first lens L1. As a result, an increase in the negative power of the first lens L1 can be suppressed, so that it is possible to suppress the fact that the image quality of the magnified image is easily affected by heat. In the first b lens group 34, since the second lens L2 and the third lens L3 are negative meniscus lenses, the occurrence of astigmatism and the like during focusing can be suppressed.
[0212] In the projection optical system 3D of this example, the second lens group 32 does not include a moving group and is fixed. Assuming that the focal length of the first lens group 31 is F1 and the focal length of the second lens group 32 is F2, the following conditional expression (6) is satisfied. 0.1 < |F1 / F2| < 0.5 (6)
[0213] Since the projection optical system 3D of this example satisfies the conditional expression (6), it is possible to sufficiently ensure the back focus while suppressing the occurrence of various aberrations. That is, when the value of the conditional expression (6) exceeds the lower limit value, the focal length F1 of the first lens group 31 becomes shorter and the negative power of the first lens group 31 becomes stronger. In this case, it is easy to ensure the back focus, but since the radius of curvature of each lens constituting the first lens group 31 becomes smaller, coma aberration, magnification chromatic aberration, etc. are likely to occur in the region with a high image height of each lens. Also, when the negative power of the first lens group 31 becomes stronger, it is conceivable to increase the number of lenses and reduce the power of each lens to suppress the occurrence of various aberrations, but since the number of lenses increases, the cost increases. When the value of the conditional expression (6) exceeds the upper limit value, it becomes difficult to sufficiently ensure the back focus.
[0214] Since the projection optical system 3D in this example satisfies the conditional expressions (1) to (4), the same operational effects as those of the projection optical system 3A in the first embodiment can be obtained. Also, in this example, the second lens group 32 includes five cemented lenses. Therefore, chromatic aberration can be corrected favorably.
[0215] FIG. 24 is a diagram showing spherical aberration, coma aberration, and distortion at the reference distance of the projection optical system 3D. FIG. 25 is a diagram showing spherical aberration, coma aberration, and distortion at a long distance of the projection optical system 3D. FIG. 26 is a diagram showing spherical aberration, coma aberration, and distortion at a short distance of the projection optical system 3D. As shown in FIGS. 24 to 26, various aberrations in the enlarged image of the projection optical system 3D in this example are suppressed.
[0216] (Example 5) FIG. 27 is a ray diagram of the projection optical system 3E of Example 5. As shown in FIG. 27, the projection optical system 3E includes a first lens group 31 having a negative power and a second lens group 32 having a positive power, in order from the enlargement side toward the reduction side. Also, the projection optical system 3E includes a diaphragm 41 disposed inside the second lens group 32. The diaphragm 41 is disposed at a position where the chief ray having the maximum picture angle in the second lens group 32 intersects the optical axis N.
[0217] The first lens group 31 includes a first a lens group 33 having a negative power, a first b lens group 34 having a negative power located on the reduction side of the first a lens group 33, and a first c lens group 35 having a positive power located on the reduction side of the first b lens group 34.
[0218] The first lens group 33 consists of a first lens L1 and a second lens L2. The first lens L1 has a negative power near the optical axis N. The first lens L1 has a concave shape near the optical axis N on the magnifying side surface and a convex shape in the peripheral portion. The first lens L1 has a convex shape near the optical axis N on the reducing side surface and a concave shape in the peripheral portion. The first lens L1 has an aspherical shape on both surfaces. The second lens L2 has a negative power. The second lens L2 is a meniscus lens. The second lens L2 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface.
[0219] The first lens group 34 consists of a third lens L3. The third lens L3 has a negative power. The third lens L3 is a meniscus lens. The third lens L3 has a convex shape on the magnifying side surface and a concave shape on the reducing side surface. The magnifying side surface of the third lens L3 has a smaller power than the reducing side surface of the third lens L3.
[0220] The first lens group 35 consists of a fourth lens L4 and a fifth lens L5. The fourth lens L4 and the fifth lens L5 are arranged in this order from the magnifying side to the reducing side. The fourth lens L4 and the fifth lens L5 are a cemented lens L21. The fourth lens L4 has a negative power. The fourth lens L4 has a concave shape on both the magnifying side and the reducing side surfaces. The fifth lens L5 has a positive power. The fifth lens L5 has a convex shape on both the magnifying side and the reducing side surfaces.
[0221] The second lens group 32 consists of 13 lenses from a sixth lens L6 to an eighteenth lens L18. The sixth lens L6 to the eighteenth lens L18 are arranged in this order from the magnifying side to the reducing side. The second lens group 32 is fixed. A diaphragm 41 is arranged between the eighth lens L8 and the ninth lens L9.
[0222] The sixth lens L6 has a positive power. The sixth lens L6 has a convex shape on both the magnifying side and the reducing side. The seventh lens L7 has a negative power. The seventh lens L7 has a concave shape on both the magnifying side and the reducing side. The eighth lens L8 has a positive power. The eighth lens L8 has a convex shape on both the magnifying side and the reducing side. The sixth lens L6, the seventh lens L7, and the eighth lens L8 are a cemented lens L22 that are cemented together.
[0223] The ninth lens L9 has a negative power. The ninth lens L9 has a concave shape on both the magnifying side and the reducing side. The tenth lens L10 has a positive power. The tenth lens L10 has a convex shape on both the magnifying side and the reducing side. The ninth lens L9 and the tenth lens L10 are a cemented lens L23 that are cemented together.
[0224] The eleventh lens L11 has a negative power. The eleventh lens L11 is a meniscus lens. The eleventh lens L11 has a concave shape on the magnifying side and a convex shape on the reducing side. The eleventh lens L11 has an aspherical shape on both surfaces.
[0225] The twelfth lens L12 has a positive power. The twelfth lens L12 has a convex shape on both the magnifying side and the reducing side. The thirteenth lens L13 has a negative power. The thirteenth lens L13 has a concave shape on both the magnifying side and the reducing side. The fourteenth lens L14 has a positive power. The fourteenth lens L14 has a convex shape on both the magnifying side and the reducing side. The first 2 lens L1 2 and the first 3 lens L1 3 are a cemented lens L24 that are cemented together.
[0226] The 15th lens L15 has a negative power. The 15th lens L15 has a concave shape on both the magnifying side and the reducing side. The 16th lens L16 has a positive power. The 16th lens L16 has a convex shape on both the magnifying side and the reducing side. The 15th lens L15 and the 16th lens L16 are a cemented lens L25.
[0227] The 17th lens L17 has a positive power. The 17th lens L17 is a meniscus lens. The 17th lens L17 has a concave shape on the magnifying side and a convex shape on the reducing side. The 18th lens L18 has a positive power. The 18th lens L18 has a convex shape on both the magnifying side and the reducing side.
[0228] The 1st lens L1 is made of resin. The 2nd lens L2 to the 18th lens L18 are made of glass.
[0229] In the projection optical system 3E, the side closer to the reducing side than the 18th lens L18 of the 2nd lens group 32 is telecentric.
[0230] Here, the projection optical system 3E can change the projection distance. When changing the projection distance, the 1b-th lens group 34 and the 1c-th lens group 35 are each moved in the direction of the optical axis N for focusing.
[0231] Let the F-number of the projection optical system 3E be FNo, the focal length of the entire system be F, the semi-field angle be ω, the back focus air equivalent value be BF, the focal length of the 1b-th lens group 34 be F1b, the focal length of the 1c-th lens group 35 be F1c, the combined focal length of the 1a-th lens group 33 and the 1b-th lens group 34 be F1ab, the focal length of the 1st lens group 31 be F1, and the focal length of the 2nd lens group 32 be F2. Then, the data of the projection optical system 3E is as follows.
[0232] FNo 1.9 F 7.540mm ω 60.7° BF 43.201mm F1b -20.960mm F1c 198.610mm F1ab -9.532 mm F1 -12.266 mm F2 55.827 mm
[0233] The lens data of the projection optical system 3E is as follows. The surface numbers are assigned in order from the magnifying side to the reducing side. The signs are those of the screen, lens, aperture, dichroic prism, and liquid crystal panel. The data for surface numbers that do not correspond to the screen, lens, aperture, dichroic prism, and liquid crystal panel are dummy data. The surfaces marked with an asterisk (*) in the surface number are aspherical. R is the radius of curvature. D is the axial surface interval. nd is the refractive index of the d-line. νd is the Abbe number of the d-line. The units of R and D are mm.
[0234] Sign Surface Number R D nd vd S 0 Infinity Variable interval 1 L1 1* -29.011 5.000 1.5312 56.04 2* -70.875 17.779 L2 3 48.497 2.200 1.7292 54.68 4 25.386 Variable interval 2 L3 5 242.442 1.800 2.0010 29.13 6 19.366 Variable interval 3 L4 7 -152.549 1.500 1.7292 54.68 L5 8 33.587 6.500 1.7618 26.52 9 -89.211 Variable interval 4 L6 10 49.655 8.081 1.7408 27.79 L7 11 -24.544 1.500 1.9229 20.88 L8 12 62.765 6.200 1.6727 32.10 13 -32.915 14.770 41 14 Infinity 0.894 L9 15 -48.800 1.000 1.9004 37.37 L10 16 14.440 5.384 1.8697 20.02 17 -64.985 1.300 L11 18* -30.756 1.500 1.9515 29.83 19* -60.415 0.200 L12 20 42.102 6.000 1.5163 64.14 L13 21 -25.000 1.500 1.9004 37.37 22 177.303 0.500 L14 23 84.819 6.938 1.4875 70.24 24 -22.790 0.100 L15 25 -53.681 1.200 2.0007 25.46 L16 26 38.030 8.600 1.4875 70.24 27 -31.043 0.200 L17 28 -1132.273 4.603 1.4970 81.54 29 -47.659 0.200 L18 30 113.148 9.400 1.4970 81.54 31 -34.806 2.000 19 32 Infinity 39.600 1.5168 64.20 33 Infinity 15.128 18 34 Infinity
[0235] Here, the projection optical system 3E in this example can change the projection distance among a reference distance, a short distance shorter than the reference distance, and a long distance longer than the reference distance. When the projection distance is changed, the first b lens group 34 and the first c lens group 35 are each moved in the direction of the optical axis N to perform focusing.
[0236] The relationships of variable interval 1, variable interval 2, variable interval 3, and variable interval 4 at each projection distance when focusing are shown below. Variable interval 1 is the projection distance. Variable interval 2 is the on-axis distance between the second lens L2 and the third lens L3. Variable interval 3 is the on-axis distance between the third lens L3 and the fourth lens L4. Variable interval 4 is the on-axis distance between the fifth lens L5 and the sixth lens L6.
[0237] Long distance Reference distance Short distance Variable interval 1 10900.000 1450.000 1000.000 Variable interval 2 13.521 13.775 13.789 Variable interval 3 20.881 21.359 21.452 Variable interval 4 2.844 2.112 2.005
[0238] The projection distance of the projection optical system 3E in this example is 10900.000 mm for long distance and 1000.000 mm for short distance. Therefore, the projection distance range of the projection optical system 3E is more than 10 times.
[0239] Each aspherical coefficient is as follows.
[0240] Surface number 1 2 Radius of curvature (R) -29.011 -70.875 Conic constant (K) -9.778 -100.000 Coefficient of the third order (A) 3.13999E-04 2.70566E-04 Coefficient of the fourth order (A) -2.60295E-06 7.38868E-06 Coefficient of the fifth order (A) 6.22622E-08 -8.18659E-08 Coefficient of the sixth order (A) -3.32841E-09 -2.49448E-09 Coefficient of the seventh order (A) 6.25208E-11 -7.29705E-11 Coefficient of the eighth order (A) -1.18690E-12 4.34518E-12 Coefficient of the 9th order (A) 3.67034E-14 -1.56396E-13 Coefficient of the 10th order (A) -2.01958E-16 4.09740E-15 Coefficient of the 11th order (A) -1.67819E-17 -5.09700E-17 Coefficient of the 12th order (A) 3.93865E-19 2.11578E-19 Coefficient of the 13th order (A) -3.34928E-21 1.11805E-23 Coefficient of the 14th order (A) 1.00736E-23 2.56762E-24
[0241] Surface number 18 19 Radius of curvature (R) -30.756 -60.415 Conic constant (K) -16.228 0.000 Coefficient of the 4th order (A) 4.67542E-05 1.19021E-04 Coefficient of the 6th order (A) -5.58071E-07 -7.83004E-07 Coefficient of the 8th order (A) 1.42005E-09 1.86419E-09 Coefficient of the 10th order (A) 1.86501E-12 5.52550E-12 Coefficient of the 12th order (A) -2.59878E-14 -3.43530E-14 Coefficient of the 14th order (A) 2.76945E-17 -1.43094E-17 Coefficient of the 16th order (A) 3.10888E-20 -2.04785E-30
[0242] Here, for the projection optical system 3E in this example, assuming the focal length of the entire lens system is F, the focal length of the first b lens group 34 is F1b, the focal length of the first c lens group 35 is F1c, and the air-equivalent length of the back focus is BF, all of the following conditional expressions (1) to (3) are satisfied. 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3)
[0243] In this example, F 7.540 mm F1b -20.960 mm Therefore, |F / F1b| = 0.360, satisfying the conditional expression (1).
[0244] In this example, F 7.540 mm F1c 198.610 mm Therefore, F / F1c = 0.038, satisfying the conditional expression (2).
[0245] In this example, F 7.540 mm BF 43.201 mm Therefore, BF / F = 5.730, satisfying the conditional expression (3).
[0246] Also, for the projection optical system 3E in this example, when the focal length of the entire lens system is F and the combined focal length of the first a lens group 33 and the first b lens group 34 is F1ab, the following conditional expression (4) is satisfied. 0.3 < |F / F1ab| < 1.0 (4)
[0247] In this example, F 7.540 mm F1ab -9.532 mm Therefore, |F / F1ab| = 0.791, satisfying the conditional expression (4).
[0248] Also, for the projection optical system 3E in this example, when the focal length of the first lens group 31 is F1 and the focal length of the second lens group 32 is F2, the following conditional expression (6) is satisfied. 0.1 < |F1 / F2| < 0.5 (6)
[0249] In this example, F1 -12.266 mm F2 55.827 mm Therefore, |F1 / F2| = 0.220, satisfying the conditional expression (6).
[0250] (Function and effect) In the projection optical system 3E of this example, the first lens group 33a consists of two lenses, namely, the first lens L1 and the second lens L2. Therefore, the power of the first lens group 33a can be borne by the two lenses, the first lens L1 and the second lens L2. Thus, while suppressing an increase in the negative power of the first lens L1, the negative power of the first lens group 33a can be increased, so that it is possible to suppress the fact that the image quality of the magnified image is easily affected by heat.
[0251] Since the projection optical system 3E of this example satisfies the conditional expressions (1) to (4), the same operational effects as those of the projection optical system 3A of the first embodiment can be obtained. Further, since the projection optical system 3E of this example satisfies the conditional expression (6), the same operational effects as those of the projection optical system 3D of the fourth embodiment can be obtained. Further, in this example, the second lens group 32 includes four cemented lenses. Therefore, chromatic aberration can be favorably corrected.
[0252] FIG. 28 is a diagram showing spherical aberration, coma aberration, and distortion at the reference distance of the projection optical system 3E. FIG. 29 is a diagram showing spherical aberration, coma aberration, and distortion at a long distance of the projection optical system 3E. FIG. 30 is a diagram showing spherical aberration, coma aberration, and distortion at a short distance of the projection optical system 3E. As shown in FIGS. 28 to 30, various aberrations in the magnified image of the projection optical system 3E of this example are suppressed.
Explanation of Reference Numerals
[0253] 1... Projector, 2... Image forming unit, 3·3A·3B·3C·3D·3E... Projection optical system, 4... Control unit, 6... Image processing unit, 7... Display driving unit, 10... Light source, 11... Integrator lens, 12... Integrator lens, 13... Polarization conversion element, 14... Superposition lens, 15... Dichroic mirror, 16... Reflective mirror, 17R... Field lens, 17G... Field lens, 17B... Field lens, 18(18B·18R·18G)... Liquid crystal panel, 19... Cross dichroic prism, 21... Dichroic mirror, 22... Relay lens, 23... Reflective mirror, 24... Relay lens, 25... Reflective mirror, 31... First lens group, 32... Second lens group, 33... First a lens group, 34... First b lens group, 35... First c lens group, 36... Second a lens group, 37... Second b lens group, 38 Second c lens group, 39... Second c lens group, 41... Aperture, L1~L20... Lenses, L21~L27... Cemented lenses, N... Optical axis, S... Screen.
Claims
1. From the enlargement side to the reduction side, the first lens group has a negative power, the second lens group has a positive power, and a second lens group having a first focal length of 1.0 mm or more, the reduction side of the second lens group is telecentric; The first lens group includes a first a lens group having a negative power and a reduction lens of the first a lens group. a first lens group having a negative power and located on the reduction side of the first lens group; and a 1c lens group having a positive power positioned in a position corresponding to the 1c lens group. The first lens in the first a lens group, which is located on the most enlargement side, has a negative power near the optical axis. and has aspheric shapes on both sides; The first b lens group and the first c lens group are aligned in the optical axis direction during focusing. Move in the direction The focal length of the entire lens system is F, the focal length of the 1b lens group is F1b, and the focal length of the 1c lens group is F1c. If the focal length of the lens group is F1c and the air-equivalent length of the back focus is BF, the following condition ( All of 1) to (3) are met, 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) the 1a lens group is composed only of lenses having negative power, the 1b lens group is composed only of lenses having negative power, The total number of lenses in the 1a lens group and the number of lenses in the 1b lens group is The number of lenses is three or less. The focal length of the entire lens system is F, and the combined focal length of the 1a lens group and the 1b lens group is The projection optical system is characterized in that, when the distance is F1ab, the following conditional expression (4) is satisfied: 0.3 < |F / F1ab| < 1.0 (4)
2. In order from the enlargement side to the reduction side, it consists of a first lens group having negative power and a second lens group having positive power, and the reduction side from the second lens group is telecentric, The first lens group consists of a first a lens group having negative power, a first b lens group having negative power located on the reduction side of the first a lens group, and a first c lens group having positive power located on the reduction side of the first b lens group, The first lens located on the most enlargement side of the first a lens group has negative power near the optical axis and has an aspherical shape on both surfaces, The first b lens group and the first c lens group each move in the direction of the optical axis during focusing, Let the focal length of the entire lens system be F, the focal length of the first b lens group be F1b, the focal length of the first c lens group be F1c, and the air-equivalent length of the back focus be BF. Then, all of the following conditional expressions ( 1) to (3) are satisfied, 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) The first a lens group consists of the first lens, The first b lens group consists of a second lens and a third lens located on the reduction side of the second lens, The first lens is made of resin, The second lens has negative power and is a meniscus lens having a convex shape on the enlargement side surface, The third lens has negative power and is characterized by having a concave shape on the reduction side surface. Projection optical system. The first a lens group consists of the first lens, The first b lens group consists of a second lens and a third lens located on the reduction side of the second lens, and the first lens is made of resin, The second lens has negative power and is a meniscus lens having a convex shape on the enlargement side surface, The third lens has negative power and is characterized by having a concave shape on the reduction side surface. Projection optical system. The third lens has negative power and is characterized by having a concave shape on the reduction side surface. Projection optical system.
3. A first lens group having negative power, and a second lens group having positive power, in order from the magnification side to the reduction side, and the reduction side from the second lens group is telecentric, the first lens group consists of a first a lens group having negative power, a first b lens group having negative power located on the reduction side of the first a lens group, and a first c lens group having positive power located on the reduction side of the first b lens group, the first lens located on the most magnification side of the first a lens group has negative power near the optical axis, and has an aspherical shape on both surfaces, the first b lens group and the first c lens group each move toward the optical axis during focusing, Let the focal length of the entire lens system be F, the focal length of the first b lens group be F1b, the focal length of the first c lens group be F1c, and the air-equivalent length of the back focus be BF. Then, all of the following conditional expressions ( 1) to (3) are satisfied, 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) the first a lens group consists of the first lens and a second lens located on the reduction side of the first lens, the first lens is made of resin, the second lens has negative power and is a meniscus lens having a convex shape on the magnification side surface, the first b lens group consists of a third lens, the third lens has negative power and has a concave shape on the reduction side surface, the magnification side surface of the third lens has a lower power than the reduction side surface of the third lens, the first a lens group consists of the first lens and a second lens located on the reduction side of the first lens, the first lens is made of resin, the second lens has negative power and is a meniscus lens having a convex shape on the magnification side surface, the first b lens group consists of a third lens, the third lens has negative power and has a concave shape on the reduction side surface, the first b lens group consists of a third lens, the third lens has negative power and has a concave shape on the reduction side surface, the magnification side surface of the third lens has a lower power than the reduction side surface of the third lens, A projection optical system characterized by being small.
4. In order from the enlargement side to the reduction side, a first lens group having a negative power and a positive power consisting of a second lens group, the reduction side from the second lens group is telecentric, the first lens group consists of a first a lens group having a negative power, a first b lens group having a negative power located on the reduction side of the first a lens group, and a first c lens group having a positive power located on the reduction side of the first b lens group, among the first a lens group, the first lens located on the most enlargement side has a negative power near the optical axis and has an aspherical shape on both surfaces, the first b lens group and the first c lens group each move in the direction of the optical axis during focusing, letting the focal length of the entire lens system be F, the focal length of the first b lens group be F1b, the focal length of the first c lens group be F1c, and the air-equivalent length of the back focus be BF, then all of the following conditional expressions ( 1) to (3) are satisfied, 0.2 < |F / F1b| < 0.6 (1) 0.0 < F / F1c < 0.14 (2) BF / F > 5.0 (3) When the position where the chief ray of the maximum picture angle in the second lens group intersects the optical axis is taken as the aperture stop, the second lens group includes a second a lens group and a second b lens group located on the enlargement side of the aperture stop, the second a lens group is located on the enlargement side of the second b lens group, the second a lens group and the second b lens group each move in the direction of the optical axis during zooming which is a projection optical system characterized by this.
5.
5. The second a lens group has a negative power and is located on the most magnifying side of the second lens group, The second b lens group has a positive power, and the projection optical system according to claim 4, characterized in that system.
6. When the focal length of the second a lens group is F2a and the focal length of the second b lens group is F2b, The projection optical system according to claim 5, characterized in that the following conditional expression (5) is satisfied. 1.0 < |F2a / F2b| < 4.0 (5)
7. The second lens group does not include a moving group and is fixed, When the focal length of the first lens group is F1 and the focal length of the second lens group is F2, then The projection optical system according to any one of claims 1 to 3, characterized in that the following conditional expression (6) is satisfied. system. 0.1 < |F1 / F2| < 0.5 (6)
8. The second lens group includes four cemented lenses, and the projection optical system according to any one of claims 1 to 7, characterized in that system.
9. An optical modulation element that modulates light emitted from a light source, The projection optical system according to any one of claims 1 to 8, which projects the light modulated by the optical modulation element, and A projector characterized by comprising.
Citation Information
Patent Citations
Zoom lens
JP2006078535A
Projection lens
JP2014190999A
Projection lens and projection display device
JP2015014677A
Image forming optical system and image projection device
JP2016095395A
Zoom lens for projection and image projection device
JP2018194619A