Claims
- 1. A zoom lens comprising at least two distinct groups of adjacent plates where each of said groups is spaced from the other along an optical axis by a distance, d, where the power of the zoom lens, taken as .phi.(x) is given by:
- .phi.(x)=.phi..sub.i (x)+.phi..sub.ii (x)-d.phi..sub.i (x).phi..sub.ii (x), where .phi.(x).sub.i and .phi.(x).sub.ii are the powers of the respective groups of said zoom lens and x is the displacement of the plates across said optical axis, each group of adjacent plates including at least two nonrotationally symmetric surfaces closely spaced to one another compared with the spacing, d, separating said groups along said optical axis and shaped so that said groups jointly image in a fixed plane behind said zoom lens and so that said nonrotationally symmetric surfaces of each of said groups individually can be moved within its respective groups relative to one another across said optical axis to provide said zoom lens with a continuously variable effective focal length over a predetermined range to change image scale, the power of said zoom lens, .phi.(x), being further related to the powers of said groups and said distance, d, by the following relationships:
- .phi.(x)=.phi..sub.i (x)/[1-.phi..sub.ii (x).times.d],
- so that the image focus throughout the zoom range is preserved in said fixed plane.
- 2. The optical system of claim 1 further including means for moving said plates of said groups in coordination with one another so that the optical action of said groups are compensated one for the other.
- 3. The optical system of claim 2 wherein said non-rotationally symmetric surfaces are mathematically describable in Cartesian coordinates by preselected polynomial equations having a non-zero term of at least fourth order.
- 4. The optical system of claim 3 wherein said polynomial equations are of the form:
- Z=K.sub.1 (xy.sup.2 1/3x.sup.3)-K.sub.2 x.sup.3 y+K.sub.3 xy.sup.3
- wherein K.sub.1 is an assignable constant and
- K.sub.2 =-1/3aK.sub.1 and K.sub.3 =-1/aK.sub.1.
- 5. The optical system of claim 1 wherein said non-rotationally symmetric surfaces of at least one of said groups are shaped so that the optical action which they effect by movement across said optical axis is by way of relative rotation of one with respect to another about a pivot axis offset and parallel to said optical axis.
- 6. The optical system of claim 1 wherein said non-rotationally symmetric surfaces of at least one of said groups are shaped so that the optical action which they effect by movement across said optical axis is by way of relative linear sliding action of one with respect to another.
- 7. The optical system of claim 6 wherein said non-rotationally symmetric surfaces are mathematically describable in Cartesian coordinates by preselected polynomial equations having a non-zero term of at least third order.
- 8. The optical system of claim 7 wherein said polynomial equation is of the form:
- Z=K.sub.1 (xy.sup.2 +1/3x.sup.3)
- where K.sub.1 is an assignable constant, Z is the direction of said optical axis and represents the surface depth measured from a plane that is at the origin of coordinates and perpendicular to said optical axis.
- 9. The optical system of claim 6 wherein said non-rotationally symmetric surfaces are mathematically describable in Cartesian coordinates by preselected polynomial equations having a non-zero term of at least fifth order.
- 10. The optical system of claim 9 wherein said polynomial equation is of the form:
- Z=ax+cx.sup.3 +3cxy.sup.2 +gx.sup.5 +10/3gx.sup.3 y.sup.2 +5gxy.sup.4
- where a, c and g are assignable constants and Z is the surface depth measured with respect to a plane at the origin of coordinates and normal to said optical axis with Z along said optical axis.
- 11. The optical system of claim 1 wherein said group of adjacent plates are two in number symmetrically arranged.
- 12. The optical system of claim 1 wherein said non-rotationally symmetric surfaces of each group are structured and arranged for movement in equal and opposite directions across said optical axis.
- 13. The optical system of claim 1 wherein each group of adjacent plates simulates a rotationally symmetric dioptric element of variable power.
- 14. The optical system of claim 13 wherein the dioptric power of each of said simulated dioptric elements ranges from plus to minus.
- 15. The optical system of claim 1 wherein said non-rotationally symmetric surfaces of each group are arranged so that the deviation to said optical axis caused by any one group tends to be corrected by the following group.
Parent Case Info
This is a continuation of application Ser. No. 156,409, filed Feb. 16, 1988.
US Referenced Citations (4)
Continuations (1)
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Number |
Date |
Country |
Parent |
156409 |
Feb 1988 |
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