WO2006055641A1 - Devices and methods for providing wide field magnification - Google Patents
Devices and methods for providing wide field magnification Download PDFInfo
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- WO2006055641A1 WO2006055641A1 PCT/US2005/041543 US2005041543W WO2006055641A1 WO 2006055641 A1 WO2006055641 A1 WO 2006055641A1 US 2005041543 W US2005041543 W US 2005041543W WO 2006055641 A1 WO2006055641 A1 WO 2006055641A1
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B3/00—Simple or compound lenses
- G02B3/0006—Arrays
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B13/00—Optical objectives specially designed for the purposes specified below
- G02B13/06—Panoramic objectives; So-called "sky lenses" including panoramic objectives having reflecting surfaces
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B23/00—Telescopes, e.g. binoculars; Periscopes; Instruments for viewing the inside of hollow bodies; Viewfinders; Optical aiming or sighting devices
- G02B23/02—Telescopes, e.g. binoculars; Periscopes; Instruments for viewing the inside of hollow bodies; Viewfinders; Optical aiming or sighting devices involving prisms or mirrors
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B3/00—Simple or compound lenses
- G02B3/0006—Arrays
- G02B3/0037—Arrays characterized by the distribution or form of lenses
-
- G—PHYSICS
- G02—OPTICS
- G02C—SPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
- G02C7/00—Optical parts
- G02C7/02—Lenses; Lens systems ; Methods of designing lenses
- G02C7/08—Auxiliary lenses; Arrangements for varying focal length
-
- G—PHYSICS
- G02—OPTICS
- G02C—SPECTACLES; SUNGLASSES OR GOGGLES INSOFAR AS THEY HAVE THE SAME FEATURES AS SPECTACLES; CONTACT LENSES
- G02C7/00—Optical parts
- G02C7/02—Lenses; Lens systems ; Methods of designing lenses
- G02C7/08—Auxiliary lenses; Arrangements for varying focal length
- G02C7/088—Lens systems mounted to spectacles
Definitions
- the present invention generally- relates to optical devices that magnify distant and near objects to assist normally sighted and visually impaired users. More particularly, the present invention relates to optical devices having a plurality of telescopic lens sets that provide an enlarged filed of view for distance viewing and near visual tasks, such as, reading.
- Prior art optical devices include many types of magnifiers, telescopes, and telemicroscopes prescribed to assist the normally sighted and the visually impaired, for example, people with poor vision, to see objects at a distance and close up.
- Almost all of the existing telescopes designed for the visually impaired are conventional Galilean-type or terrestrial Keplerian-type telescopes.
- these conventional telescopes have restricted fields of view that depend mainly on their magnification, degree of optical correction, and the corresponding complexity of their optical design.
- the field of view (FOV) of a Galilean telescope depends on the diameter of its objective lens.
- increasing the lens diameter of a Galilean telescope exponentially increases the transverse spherical aberration and coma, two common forms of optical aberration.
- aspects of the present invention provide an apparent field of view greater than that what is presently provided by the prior art.
- aspects of the invention can provide a 2x Galilean-type telescope having a magnification of 2 and an apparent FOV of greater than 70 degrees, that is, more than triple the FOV of the prior art 2.1x telescopes in the above Table.
- aspects of the present invention also facilitate following moving targets, for example, even following the flight of birds.
- Other aspects of the invention providing a bioptic array will help the ambulatory user to avoid hazards in the peripheral field.
- aspects of the present invention that provide wide peripheral field coverage will be especially useful to patients with central vision loss, hemianopsia, etc.
- Working distance is an important characteristic of prior art telemicroscopes. As with all telemicroscopes, the working distance will be significantly greater than with a simple magnifier. For example, a 4x telescope with a 2x cap will have a magnification of 8x and a working distance of 125 mm compared with a working distance of 31 mm for an 8x magnifier. Aspects of the present invention can facilitate reading because the lower spatial frequencies of magnified text provided by aspects of the present invention may increase the tolerance to defocus. As noted by Legge, et al. ["Tolerance to visual defocus", Journal of the Optical Society of the American Medical Association, 1987 May: 4(5): 851-863], individuals with low acuity are more tolerant to defocus than people with normal vision.
- optical devices that provide an improved field of view that can, among other things, improve distance vision and near vision, for the visually impaired and the non- visually impaired.
- the present invention provides optic devices that provide wide angular fields of view, even extremely wide angular fields of view, for optical systems such as telescopes, telemicroscopes, and magnifiers. Aspects of the present invention comprise an array of telescopes that may provide more than double the field of view of currently available devices.
- the three film images become one 146-degree wide image with two degrees of overlap on a curved screen, in what could be referred to as a wide screen "mosaic.” Aspects of the present invention apply this "mosaic" principle to optic devices, somewhat like the compound eyes of insects, to improve the sight of the visually impaired, and others.
- One aspect of the invention is an optical device including a plurality of telescopic lens sets, each telescopic lens set comprising an objective lens and an ocular lens positioned in telescopic relationship; and a plurality of refracting optical elements, for example, prisms, positioned in front of at least some of the objective lenses, the refracting optical elements adapted to at least partially redirect light rays toward at least some of the objective lenses.
- Another aspect of the invention is a method of providing wide field magnification, the method including providing a plurality of objective lenses; positioning a plurality of ocular lens in telescopic relationship with the plurality of objective lenses wherein an image of an object viewed by a user through the objective lenses and ocular lenses is magnified; and refracting light from the object before the light enters the objective lenses wherein a viewer viewing the object through the plurality of ocular lenses views a substantially contiguous wide field view of the object.
- refracting light from the object comprises positioning a plurality of refracting optical elements, for example, prisms, in front of at least some of the objective lenses.
- the prisms for example, wedges of refracting material, refract and deviate the path of the light from the object.
- a further aspect of the invention is a wide field optical magnification system including a plurality of telescopic lens sets, each telescopic lens set comprising an objective lens, an ocular lens positioned in telescopic relationship with the objective lens, and a prism positioned before the objective lens; and a support structure adapted to position the plurality of lens sets; wherein at least some of the prisms comprise a prism angle ⁇ chosen to refract light toward at least some of the objective lenses to provide a substantially contiguous magnified wide field of view to a user.
- the angle ⁇ may be chosen to refract and deviate light toward at least some of the objective lenses.
- FIGURE 1 is a schematic diagram of a typical prior art lens arrangement for a Galilean telescope showing light rays entering the iris, that is, the aperture stop, of a human eye.
- FIGURE 2 is a schematic plan view of an arrangement of three telescopic lens sets according to one aspect of the present invention.
- FIGURE 3 is a schematic diagram of the optical characteristics of a typical prism.
- FIGURE 4 is a schematic plan view of an arrangement of seven telescopic lens sets according to one aspect of the present invention.
- FIGURE 5 is a schematic plan view of an arrangement of two telescopic lens sets according to one aspect of the present invention.
- FIGURE 6 is a schematic plan view of an arrangement of telescopic lens sets adapted for binocular vision according to another aspect of the invention.
- FIGURE 7 is a schematic plan view of an arrangement of telescopic lens sets having lens caps that provides a telemicroscopic device according to another aspect of the invention.
- FIGURE 8 is a schematic plan view of an arrangement of telescopic lens sets and a single meniscus lens that provides a telemicroscopic device according to another aspect of the invention.
- FIGURE 9 is a schematic plan view of an arrangement of telescopic lens set housings according to one aspect of the invention.
- FIGURES 10 is a top plan view of an optical device having a plurality of lens set housings mounted therein according to one aspect of the invention.
- FIGURE 11 is a front elevation view of optical device shown in FIGURE 10 as viewed along lines 11-11 shown in FIGURE 10.
- FIGURE 12 is a cross-sectional view of the optical device shown in FIGURES 10 and 11 as viewed along lines 12-12 in FIGURE 11.
- FIGURE 13 is a top plan view of the base of the optical device shown in FIGURES 10, 11, and 12.
- FIGURE 14 is a side elevation view of the base shown in FIGURE 13 as viewed along lines 14-14 in FIGURE 13.
- FIGURE 15 is a top plan view of the cover of the optical device shown in FIGURES 10, 11, and 12.
- FIGURE 16 is a side elevation view of the cover shown in FIGURE 15 as viewed along lines 16-16 in FIGURE 15.
- FIGURE 17 is a side elevation view the lens holder shown in FIGURE 12 according to one aspect of the invention.
- FIGURE 18 is a plan view of the lens holder shown in FIGURE 17 as viewed along lines 18-18 in FIGURE 17.
- FIGURE 19 is a side elevation view of the lens holder shown in FIGURE 17 as viewed along lines 19-19 in FIGURE 17.
- FIGURE 20 is a front development elevation view of an arrangement of multiple rows of telescopic lens sets according to another aspect of the invention.
- FIGURE 21 is schematic front elevation view of a row of telescopic lens sets as positioned about a spherical surface according to another aspect of the invention.
- FIGURE 1 is a schematic diagram of a typical prior art lens set 10 coupled to a human eye (not shown) having an iris, that is, an aperture stop, 21.
- Lens set 10 may be typical of a lens arrangement that may be used for telescopes and telemicroscopes and may be referred to herein as a "telescopic lens set.”
- lens set 10 includes an objective lens 14 and an ocular, or eye, lens 16.
- objective lens 14 collects light, as indicated by an axial collimated pencil of light rays 13, from a distant object (not shown), and converges that light to a point or focus at the second focal plane lens (not shown) of the objective.
- the objective lens 14 also collects collimated pencils of light from both edges of the FOV 17.
- Light pencils 19 are each focused as points in the second focal plane of objective lens 14.
- Ocular lens 16 intercepts the converging pencils of light before they reach the focal plane of objective 14 and recollimates the pencils with magnified angles and directs these pencils of light to the entrance pupil of the eye.
- Light pencils 19 represent field angles having 50% vignetting (that is, these light rays fill half of the diameter of the aperture stop 21).
- the outermost rays of the pencils 19 are the chief rays.
- Field of view is typically specified by the ray pencils that are 50% vignetted.
- the magnified angles produced by the ocular lens 16 enlarge the image formed on the retina of the eye (not shown).
- Objective lens 14 and ocular lens 16 are positioned in "telescopic relationship," that is, objective lens 14 and ocular lens 16 are sized and positioned whereby an object appears magnified in size when viewed through
- Telescopic lens set 10 may comprise a Galilean-type lens set, where objective lens 14 is a convex lens and ocular lens 16 is a concave lens, or a Keplerian-type lens set, where objective lens 14 and ocular lens 16 may both be convex lenses.
- the image seen by the user is upside-down (inverted).
- Keplerian telescope designs may be modified to erect the image by variously inserting relay lenses, prisms and/or mirrors between the objective and ocular lenses. So modified, Keplerian telescopes may be used as terrestrial telescopes. Typically, the observer's eye is relatively fixed in position behind the telescope in viewing its magnified image.
- FIGURE 1 a Galilean lens set was chosen for lens set 10 for simplicity and since it provides erect images.
- the field of view of lens set 10 is defined by arcs 15 and 17, where arc 15 represents the real field of view at 50 % vignetting, and arc 17 represents the apparent filed of view at 50% vignetting ("vignetting" is a term of the art that is discussed below).
- the light rays defining the range of the real field of view defined by arc 15 are the 50% vignetted light rays 19 in FIGURE l.
- an array of telescopes or telescopic lens sets, which provide the viewer with a wide field of view, for example, a wide contiguous field of view, as shown in FIGURE 2.
- the observer's eye 34 is mobile; it rotates about its center of rotation to view a wide contiguous field of view through the array of telescopes.
- the design of an array of telescopes requires the consideration, analysis, and specification of several optical and mechanical parameters.
- optical and mechanical design parameters that are considered are: lens diameters and powers, eye pupil size, angular magnification, eye relief, telescope field of view (FOV) based on appropriate vignetting, angular and geometric alignments of telescopes, lens aperture shape, and the specification of prisms to obtain contiguity of magnified field elements, among others. These and other parameters will be defined and discussed below.
- the field of view of Galilean telescopes is dependent upon the size of the objective lens, which cannot be arbitrarily set in the array design.
- the inventor has shown that the widths of the objective lenses seen in the front view are affected, and in some instances fixed, by the need to provide physical clearance of adjacent lenses and the desire to provide contiguous horizontal fields of view.
- the vertical field of view of individual telescopes may be larger than the horizontal field, but the vertical filed of view may be limited by the need to avoid too complex an objective lens design to correct the concomitant increase in aberrations.
- magnification (M) of lens set 10 is typically given by Equation 1 :
- Equation 2 the distance between objective lens 14 and ocular lens 16, that is, the "lens separation,” d, is given by Equation 2:
- the lens separation is identified by 18 in FIGURE 1.
- the relative aperture opening, F/# or f- stop, chosen for objective lens 14 determines the diameter of objective lens, D 0 , 14 and is governed by Equation 3 :
- Objective lens 14 and ocular lens 16 are separated by a distance 18 and ocular lens 16 and eye are separated by a distance 20, that is, the "eye relief, "e.
- the diameter of the ocular (or eye) lens 16 is represented by D e .
- the eye position is basically fixed when looking through a single telescope. To view different directions, the telescope and head of the viewer must turn. To view the wide FOV presented by aspects of the present invention, the mobile eye must rotate in its socket about its center of rotation O, as it normally does in everyday seeing.
- the diameter of the hypothetical aperture stop at the center of rotation O is represented by D a -
- the desirable distance from the ocular lenses to the center of rotation O that is, the eye relief, e, is generally 27 mm.
- the arrays of one or more telescopic lens sets may be arranged so that the optical axes of all lens sets intersect at the center of rotation of the eye, O.
- a hypothetical aperture stop 21, D 8 is located at the center of rotation, O.
- the optical effect referred to as "vignetting" is significant.
- vignetting is the gradual reduction of image illuminance as the off-axis angle increases, resulting from limitations of the clear apertures of elements within an optical system.
- the standard definition of field of view (FOV) is the angle at which vignetting is 50%.
- 50% vignetting is not the optimum amount of vignetting for optimal contiguity.
- the inventor developed Equation 4.
- u is one-half the FOV of the optic, in degrees;
- D 0 is the diameter (or width) of the objective lens, a length, for example, millimeters; M is the magnification of the lens set, a ratio;
- D a is the diameter of the hypothetical aperture stop at the center of rotation, a length, for example, millimeters;
- e is the eye relief, a length, for example, millimeters;
- d is the lens separation, a length, for example, millimeters;
- V is the vignetting percent or ratio expressed as a decimal.
- Equation 5 to determine the diameter of the ocular lens, De, as a function of vignetting V.
- the variables in Equation 5 are the same
- Equation 8 the object space half-field of view, u, of optic arrangement 10 is evaluated in Equation 8 as:
- a rectangular lens shape will maximize contiguity of an azimuthal array of adjoining telescopic lens sets 10.
- the objective lenses of adjacent lens sets may have straight and parallel sides.
- the image space, u', or apparent field of view is twice as large, that is, about 34.32 degrees and about 80.1 degrees, respectively.
- other numbers of lens sets will provide corresponding total real and apparent fields of view.
- each lens arrangement 10 may cover a larger field in elevation.
- the field of view of a Galilean telescope depends on the size of the objective lens.
- vignetting may be varied.
- vignetting may vary from 50% to 100%, or be selected at any value in between 50% and 100 %.
- vignetting may be constant for all lens sets hi an array.
- the vignetting may vary from one lens set to another, or from one row or section of lens sets to another row or section of lens sets in an array of lens sets.
- FIGURE 2 is a schematic plan view of an arrangement or array 30 of three telescopic lens sets 31, 32, and 33 coupled to a human eye 34 according to one aspect of the invention.
- lens sets 31, 32, and 33 comprise telescopes, for example, Galilean telescopes.
- the object space axial rays 51, 52 and 53 continue into and coincide with telescopic lens sets 31, 32, and 33, respectively, and substantially intersect at the center of rotation of the eye, O.
- telescopic lens sets 31, 32, and 33 include objective lens 35, 36, and 37, respectively, and ocular lenses 38, 39, and 40, respectively.
- the total real and apparent fields of view of arrangement 30 are indicated by arcs 44 and 46, respectively, in FIGURE 2.
- the edge rays associated with each lens set 31, 32, and 33 are designated with the letters "a" and "b.”
- the lower edge ray entering lens set 31 is designated 51a and the upper edge ray is designated 51b. Similar designations are also shown for the other lens sets 32 and 33 in FIGURE 2.
- the actual inner and outer edges of the edge-of-the-field ray angles of adjacent lens sets are preferably substantially identical and the objective lens preferably do not overlap.
- At least one optical element 41, 42, and 43 may be positioned in front of each lens set 31, 32, and 33.
- Optical element 41, 42, and 43 may be a refracting optical element, that is, any element that refracts light rays wherein the light rays are at least partially redirected, for example, toward their respective objective lens.
- optical elements 41, 42, and 43 refract or bend the incoming light to deviate adjacent real object space fields so that their corresponding magnified fields in image space are seen by the viewer to be adjacent to each other.
- Optical elements 41, 42, and 43 may comprise prisms, for example, plastic or glass prisms, diffractive optical elements, or mirrors, among others.
- optic elements 41, 42, and 43 may be any refracting optical element, in the following discussion and in the accompanying claims, optical elements 41, 42, and 43 will be referred to as prisms 41, 42, and 43.
- optical element 42 may be referred to as a "prism," in some aspects of the invention, the optical element positioned along the centerline 45, for example, optical element 42 in FIGURE 2, may refract little or no incoming light, that is, optical element 42 may not be a prism. Since the light passing through objective lens 36 is transmitted from the object directly into objective lens 36, no optical deviation of this light may be necessary.
- the optical element positioned along the centerline 45 may non-deviating, for example, a window, or may be omitted.
- the lens sets 31, 32, and 33 are preferably pointed to magnify contiguous real FOVs into contiguous apparent FOVs. As discussed above, the half FOV in object space for each lens set is the value u.
- prisms 41, 42 and 43 are preferably provided, for example, with a power P to deviate incoming light rays to provide a contiguous apparent FOV with the required magnification.
- the axial rays are separated by an angle of M x 2 u.
- M 2.
- the two object space edge rays for lens set 32 make angles of -2.86 degrees and + 2.86 degrees with reference to the centerline 45; the two object space edge rays of lens set 33 make angles of +2.86 degrees and +8.58 degrees (that is, 2.86 + 5.72); and the two object space edges of lens set 31 make angles of -2.86 degrees and -8.58 degrees.
- the axial rays 51, 52 and 53 in object space of each lens set 31, 32, and 33, to provide contiguity are preferably, -5.72 degrees, 0 degrees, and + 5.72 degrees, respectively.
- these angular values in image space will be magnified by magnification M to provide the apparent angular values for each lens set.
- magnification M 2
- the axis of lens set 33 will be directed at + 11.44 degrees, midway between + 5.72 and +17.16 degrees (that is, [5.72 + 17.16]/ 2).
- the edge rays for each lens set are shown individually for the sake of clarity.
- the edge rays of the FOVs of adjacent lens sets are preferably substantially collinear and parallel, thus providing a substantially contiguous FOV to the viewer.
- the total real FOV for the array 30 shown in FIGURE 2 is about +/- 8.58 degrees (that is, 17.16 degrees.); the total apparent FOV is about +/- 17.17 degrees (that is, 34.34 degrees).
- optical elements 41, 42, and 43 may be designed to refract or deviate light rays from the center of the object field so that the light rays emerge perpendicular to the rear surface of each prism.
- this perpendicular direction may be coincident with the alignment angle (or telescope pointing angle), ⁇ , of each lens set (or telescope) 31, 32, and 33.
- the alignment angle of a lens set is the angle the centerline of the lens set makes with the centerline 45 of the array of lens sets, for example, angle ⁇ in FIGURE 2 is the alignment angle of lens set 33.
- the angle in object space of center ray 53 that will coincide with the axis of lens set 33 and thus establish its alignment angle is a function of half FOV, u.
- the angle of orientation of the axial rays of a lens set, ⁇ may also be a function of u.
- u 2.86 degrees
- the alignment angle ⁇ and the angle of the object space axial ray line ⁇ for each lens set 31, 32, and 33, according to one aspect of the invention are summarized in Table 1, where nominal values correspond to the axial rays.
- Table 1 also provides the slopes in object space of the edge rays 51a, 51b, 52a, 52b, 53a and 53b for each of the lens sets 31, 32, and 33, respectively.
- the slopes of these rays after deviation by the prisms are increased by the lens set magnification.
- the slopes of edge rays 51b and 52a of lens sets 41 and 42 are substantially equal, as are the edges rays 52b and 53a of lens sets 42 and 43, thus providing contiguity.
- the edge and axial rays are each deviated to different degrees by prisms 31 and 33, errors in contiguity may occur.
- the prism deviation angle, ⁇ that is, the angle through which the incident light is bent by a prism
- ⁇ the angle through which the incident light is bent by a prism
- Equation 10 The refraction of light through a prism is governed by Snell's law for refraction that is expressed in Equation 10.
- FIGURE 3 A typical prism 50 and the related geometry and light paths are illustrated in FIGURE 3.
- Prism 50 is characterized by a prism angle ⁇ and a prism deviation angle, ⁇ .
- A is an incoming light beam
- B is the point of contact of light beam A with the surface of prism 50
- C is the point of emergence of the refracted light beam D
- E is the path light beam A would take if not refracted by prism 50.
- N is the normal to the incident surface of prism 50 at the point of contact B.
- Angle ⁇ is the angle between the direction of the incoming light beam A and normal N.
- Angle ⁇ ' is the angle between the direction of the refracted light beam D and normal N.
- light beam D may emerge perpendicular to the surface of prism 50 at point C.
- Equation 11 The variables in Equation 11 were defined above.
- n 1.517 (for example, for a borosilicate crown glass prism)
- angle ⁇ of prism 43 may have a value of about 10.819 degrees.
- the corresponding prism angles ⁇ for prisms 41, 42, and 43 are also listed in Table 1. The angles presented in Table 1 are nominal angles. Because the edge and axial rays may each be deviated to different degrees by the prisms 41 and 43, errors in contiguity may occur. In one aspect, these errors may be minimized or eliminated by iteratively evaluating Equation 10 to trace edge rays through the prisms until adjacent edge rays of adjoining ray sets are substantially equal and, thereby, correct the deviation angles and prism angles.
- Additional modifications may be made as a result of trigonometric ray tracing used to design the ray sets. Errors in contiguity, for example, due to manufacturing tolerances, can be corrected by adjusting the values of angle ⁇ and/or adjusting the orientation of the lens sets. This may require one or more iterations.
- the vignetting (V) of the optical device may be optimized to provide optimal contiguity between fields of view.
- 50% vignetting is used to define the field of view (FOV); however, 50% vignetting may result in undesirable overlapping of FOVs by the lens sets of one aspect of this invention.
- a maximum of 100% vignetting is provided. Though 100% vignetting may preclude overlap of FOVs by adjacent lens sets, a falloff of illumination at the edges of the FOVs may be perceived as a gap in the FOV. Manufacturing tolerances may, for example, also result in gaps between FOVs of adjacent lens sets.
- the vignetting may be greater than about 50% and less than about 100%.
- a slight overlap in the FOVs may be preferred.
- the vignetting may be between about 85% and about 95%, for instance, about 90%.
- At least 2 telescopic lens sets may be used to provide the benefits of the present invention.
- at least three lens sets may be used as shown in FIGURE 2.
- the number of lens sets is only limited by acceptable size of the optical system, by the physical restrictions of the user, for example, having one or two eyes, having a limited field of view, for example, less than 180 degrees.
- 4, 5, 6, 7, or 8 or more lens sets may be used.
- aspects of the invention may not be limited for use by humans, but may be coupled to any light-detecting device, for example, close-coupled devices (CCD), to detect light.
- CCD close-coupled devices
- lens sets may be arranged in arrays spanning at least 180 degrees or more, for example, even 360 degrees, in the azimuthal (or circumferential) direction.
- lens set arrays may be positioned in rows above and below the horizontal azimuthal plane, for example, the elevation FOV of the horizontal azimuthal ray set may be about +u and about -u degrees, or multiples thereof.
- the elevation FOV of the rows of lens sets above the azimuthal plane may range from about +u to about +3u degrees, or more
- the elevation FOV of the rows of lens sets below the azimuthal plane may range from about -u to about -3u degrees, or more.
- the total elevation FOV equals about 6u degrees.
- the lens sets may be arranged in multiple altitudes or rows, each altitude or row spanning an azimuthal field angle.
- lens sets may be arranged in a spherical configuration having azimuths ranging from 0 degrees to 360 degrees and altitudes scanning from 0 degrees to 360 degrees, or any azimuth or altitude angle in between these extremes.
- FIGURE 4 is a schematic plan view of an arrangement 60 of seven telescopic lens sets 61, 62, 63, 64, 65, 66, and 67 according to one aspect of the present invention.
- Lens sets 61 through 67 direct light a hypothetical aperture stop 121 of a representative human eye 68 having center of rotation O.
- each lens set 61, 62, 63, 64, 65, 66, and 67 includes an ocular lens 71, 72, 73, 74, 75, 76, and 77; an objective lens 81, 82, 83, 84, 85, 86, and 87; and a prism 91, 92, 93, 94, 95, 96, and 97, respectively.
- axial rays and edge rays associated with each lens sets 61 through 67 are designated with the letters "a,” “b,” and “c,” where the axial ray associated with a lens set is designated with a “c,” the lower edge ray is designated with an "a,” and the upper edge ray is designated with a "b.”
- lens set 61 receives an axial ray 61c, a lower edge ray 61a, and an upper edge ray 61b. Similar designations are also shown for the lens sets 62 and 67, but are omitted from lens sets 63 through 66 for the sake of clarity.
- prism 94 may be a non- deviating window. Again, in one aspect of the invention, prism 94 may be omitted without affecting the performance of the invention.
- Table 2 The corresponding lens set parameters for telescopic lens sets 61 through 67 according to one aspect of the invention are summarized in Table 2; again, a half FOV angle of 2.86 degrees is assumed.
- the real FOV for the array 60 shown in FIGURE 4 is about 40.04 degrees (that is, 7 x 5.72); the apparent FOV is about 80.08 degrees (that is, 7 x 2 x 5.72), assuming a half FOV, u, of 2.86 degrees.
- edge and axial rays may each be deviated to different degrees by any one of the prisms 91, 92, 93, 94, 95 96 and 97, errors in contiguity may occur. In one aspect of the invention, these errors may be minimized or eliminated by adjusting the axis angles and/or the prism angles.
- the flanking, or off-centerline, telescopic lens sets may provide the wider peripheral fields which are used to acquire objects of interest that are then viewed through the center lens set 64 by turning the head toward the objects acquired by the off-center lens sets.
- the extreme object space edge rays 61a and 67b in FIGURE 4 are oriented at about +20.04 degrees and about -20.04 degrees to the centerline. Edge rays 61a and 67b delimit the real FOV 69 of the array of lens sets.
- the apparent FOV 70 in FIGURE 4 is delimited by the projection of rays 61a and 67b in image space (after magnification by the respective lens sets). For a magnification, M, of 2, the corresponding angles of FOV 70 are about +40.07 degrees and about -40.07 degree, respectively.
- FIGURE 5 is a schematic plan view of an arrangement 100 of two telescopic lens sets 101 and 102 according to another aspect of the present invention.
- lens sets 101 and 102 straddle the centerline 110 of arrangement 100 and direct light to representative human eye 103.
- Lens sets 101 and 102 include ocular lenses 104 and 105, objective lenses 106 and 107, and prisms 108 and 109, respectively.
- additional lens sets may be introduced to arrangement 100 to broaden the field of view of arrangement 100, for example, arrangement 100 may include at least 3 lens sets, 4 lens sets, or 8 or more lens sets.
- FIGURE 6 is a plan view of binocular arrangement or array 120 of telescopic lens sets according to another aspect of the invention.
- binocular arrangement 120 is associated with right eye 122 and left eye 124.
- Arrangement 120 includes a right eye lens set array 130 comprising lens sets 131, 132, 133, and 134; and left eye lens set array 140 comprising lens sets 141, 142, 143, and 144.
- Lens sets 131-134 and 141-144 each include an ocular lens, an objective lens, and refracting element (for example, a prism), as is typical of other aspects of the invention.
- the total apparent field of view of lens arrangement 120 is represented by arc 146 and the total real field of view of lens arrangement 120 is represented by arc 148.
- right eye 122 looks through a center telescopic lens set 131 and the right flanking lens sets 132, 133, and 134 to view the field of view to the right.
- Left eye 124 looks through a center telescopic lens set 144 and the left flanking lens sets 141, 142, and 143 to view the field of view to the left.
- only the center lens sets 131, 144 may have substantially identical fields of view and provide binocular vision.
- each lens set 131 through 134 and 141 through 144 are designated "a,” “b,” and “c" to facilitate discussion of these rays. Again, not all rays are identified in FIGURE 6 for the sake of clarity.
- axial rays 144c and 131c may have zero slopes, rays 144a and 131a may have slopes of -u, and rays 144b and 131b have slopes of +u relative to the centerlines of each lens set.
- the flanking telescopic lens sets may provide the wider peripheral fields which are used to acquire objects of interest that are then viewed through the center lens sets 131, 144 by turning the head toward the objects acquired by the off-center lens sets.
- FIGURE 6 illustrates four lens sets associated with each eye 122, 124
- binocular lens array 120 may include any number of lens sets.
- lens array 120 may only comprise a right eye array 130 or a left eye array 140.
- arrays 130 and/or 140 may include 1, 2, 3, 4, 5, or more lens sets each.
- the optical design parameters of the telescopic lens sets shown in FIGURE 6 may be determined in a similar, if not identical, manner as the corresponding lens sets discussed above, that is, in the monocular arrays.
- FIGURE 7 illustrates a plan view of one telemicroscope device 150 according to one aspect of the invention.
- device 150 includes a plurality of lens sets 151, 152, 153, 154, 155, 156, and 157 for magnifying an object, for example, as indicated by object plane 160, such as, a page of a book.
- object plane 160 such as, a page of a book.
- the magnified image is directed toward an eye (not shown) identified by the center of rotation O.
- device 150 may include 2 or more lens sets, for example, as shown in FIGURES 2, 4, and 5.
- Lens sets 151 through 157 may be similar to other lens sets described previously, for example, lens sets 61 through 67 shown in FIGURE 4, and include corresponding ocular lenses, objective lenses, and refracting elements, such as prisms.
- lens sets 151 through 157 may be designed, for example, with appropriate parameters ⁇ , ⁇ , ⁇ , etc. discussed above, to provide the substantially contiguous field of view, as also discussed above.
- At least some lens sets 151 through 157 may also include at least one magnifying optical element 161, 162, 163, 164, 165, 166, and 167, for example, mounted in front of at least some of the refracting elements of lens sets 151 through 157.
- magnifying optical elements 161 through 167 may comprise any optical element adapted to collimate light from near objects and magnify the light image introduced to lens sets 151 through 157.
- substantially all of lens sets 151 through 157 include at least one magnifying element 161 through 167.
- magnifying elements 161 through 167 may be a magnifying convex lens or a lens cap.
- the separation between the objective and the ocular lenses may be varied, for example, increased, to vary the focus of the lens set.
- the separation between lenses may be increased to improve the focus on near objects. However, this may result in less magnification than with the use of lens caps.
- magnifying elements 161 through 167 each may have dioptric power, that is, the refractive power of the lens.
- the dioptric power of the magnifying elements 161 through 167 will be dependent upon the desired magnification and/or distance from the object, for example, a book, being viewed.
- the magnifying element or lens cap may serve as a simple magnifier.
- M magnification of a magnifying lens
- M F/4, where F is the dioptric power of the magnifying lens.
- the dioptric power of a lens is equal to reciprocal of its focal length in meters.
- a magnifying lens for example, lens cap 161
- the magnification power of the magnifying element 161 through 167 is multiplied by the magnifying power of the lens set 151 through 157, respectively, to provide the total magnifying power of the combination of lens set and magnifier element.
- magnifying lenses 161 through 167 may have a magnification greater than Ix, or greater than 2x, or more, for example, 4x or 6x or more.
- magnifying lens sets 161 through 167 are designed to ensure the desired vignetting of the array of lens sets to which that are applied, for example, to maintain the approximately 100% vignetting desired in one aspect of the invention.
- the magnifying optical elements 161 through 167 may have a magnification M c of 250/f c , where f c is the focal length, in mm, of the magnifying optical element.
- M c 250/f c
- Other magnifications and relationships to focal length may also be used as appropriate.
- elements 161 through 167 may have the same shape as the prisms with which the respective elements are associated, for example, circular or polygonal in shape, for example, hexagonal, and may mount in front of their respective prisms, for example, mounted at a common radius of a circle, cylinder, or sphere.
- magnifying optical elements 161 through 167 are adapted to address the disadvantage of increasing obliquity that can occur with lens caps of telemicroscopes.
- the focal length of the lens cap may be varied, for example, increased, as a function of its position with respect to the central axis of the array. This may correct the blurred image due to the increased distance to the object for obliquely pointed lens sets, that is, telemicroscopes.
- the focal lengths of adjacent lens caps, 165, 166, and 167 may be 100.5 mm, 102.0 mm, and 104. 7 mm, respectively.
- the angular magnification of these lens caps may be reduced to less than the nominal magnification. For example, if the nominal magnification of lens set 154 having lens cap 164 is 5.0, the magnification of lens sets 165, 2 66, and 167 may become 4.98, 4.90, and 4.78, respectively.
- Magnifying optical element 161, 162, 163, 164, 165, 166, and 167 may be provided as individual elements for mounting in front of their corresponding prisms and objective lenses.
- elements 161 through 167, or a subset thereof may be provided as an array of elements, for example, a molded array of elements that may be mounted before one or more prisms and objective lenses. These elements may be removably attached whereby they may be removed, for example, for viewing distant objects.
- FIGURE 8 is a schematic plan view of another telemicroscope device 170 according to another aspect of the invention.
- device 170 includes a plurality of lens sets 171, 172, 173, 174, 175, 176, and 177 for magnifying an object, for example, as indicated by object plane 180, such as, a page of a book.
- the magnified image is directed toward an eye (not shown) identified by the center of rotation O.
- device 180 may include 2 or more lens sets, for example, as shown in FIGURES 2, 4, and 5.
- Lens sets 171-177 may be similar to other lens sets described previously, for example, lens sets 61 through 67 shown in FIGURE 4, and include corresponding ocular lenses, objective lenses, and refracting elements, such as prisms. According to this aspect of the invention, lens sets 171 through 177 may be designed, for example, with appropriate parameters ⁇ , ⁇ , and ⁇ discussed above, to provide the substantially contiguous field of view, as also discussed above. [0076] According to this aspect of the invention, one or more meniscus lenses 181 may be positioned before and refract at least some light entering at least some lens sets in the array of lens sets 171 through 177 to provide a telemicroscopic device.
- the dioptric power of the meniscus lens 181 will be dependent upon the desired magnification and/or distance from the object 180, for example, a book, being viewed.
- meniscus lens 181 may have a magnification power greater than Ix, or greater than 2x, or more, for example, 4x or 6x.
- the corresponding refractive powers of meniscus lens 181 may be 8, 16, and 32 diopters.
- the shape of the meniscus lens may be wide enough to extend to the extreme azimuthal object space edge rays of at least some of, preferably all of, lens sets 171 and 177.
- the height of the meniscus lens 181 may cover at least some of, again, preferably, all of, the extreme elevation object space edge rays of all ray sets. For example, see the front elevation view in FIGURE 11 of a lens set that meniscus lens 181 may cover both the azimuthal and elevation object space of, according to one aspect of the invention.
- each telescopic lens set in an array may be mounted in an individual housing as shown in FIGURE 9.
- the sides of adjacent set housings block "crosstalk", that is, the housings may minimize or prevent light from the FOV of a given lens set from entering an adjoining lens set.
- FIGURE 9 is a plan view of an arrangement 190 telescopic lens set housings 191, 192, 193, 194, 195, 196, and 197. The magnified image is directed toward an eye identified by the center of rotation O.
- arrangement 190 may include 2 or more lens set housings, for example, 2, 4, 5, 8 or more housings.
- Lens set housings 191 through 197 may include lens sets similar to other lens sets described previously, for example, lens sets 61 through 67 shown in FIGURE 4, and may include corresponding ocular lenses, objective lenses, and refracting elements, such as prisms (all shown in phantom).
- Lens sets 191 through 197 may also include one or more magnifying elements, such as, lens caps as described with respect to FIGURE 7.
- lens sets in lens set housings 191 through 197 may be designed, for example, with appropriate parameters ⁇ , ⁇ , ⁇ , etc., discussed above, to provide the substantially contiguous field of view, as discussed above.
- the lens sets in lens set housings 191 through 197 (and any other telescopic lens sets disclosed herein) may be set to afocal by adjusting the spacing between the respective objective and ocular lenses.
- the arrangement or array 190 may be housed in a support structure or base (see FIGURES 10, 11, and 12) that may allow fine or gross azimuthal angular and/or fine or gross altitudinal angular adjustments of the axes of the individual lens set housings 191 through 197 to optimize contiguity.
- the arrangement or array 190 may be enclosed by a cover that attaches to the support structure or base.
- FIGURES 10, 11 5 and 12 illustrate one optical device 200 for mounting a plurality of lens sets according to one aspect of the invention.
- FIGURE 10 is a top plan view of a the device
- FIGURE 11 is a front elevation view of optical device 200 shown in FIGURE 10 as viewed along lines 11-11 shown in FIGURE 10. Again, though a total of seven lens set housings are shown in FIGURE 10, according to aspects of the invention, device 200 may include 2 or more lens set housings, for example, 2, 4, 5, 8 or more housings.
- Lens set housings 201 through 207 may include lens sets similar to other lens sets described previously, for example, lens sets 61 through 67 shown in FIGURE 4, and may include corresponding ocular lenses, objective lenses, and refracting elements, such as prisms. Lens sets
- housing 210 includes a base 212 and a cover 214 mounted to base 212, for example, by means of mechanical fasteners.
- FIGURE 12 is a cross-sectional view of device 200 shown in FIGURES 10 and 11 as viewed along lines 12-12 in FIGURE 11.
- FIGURE 12 illustrates a cross-section of base 212, cover 214, and lens set housing 202.
- lens set housing 202 may include a lens housing 220 having an ocular lens 222, an objective lens 224, a prism 226, and optionally a lens cap 228.
- lens set housing 202 may be supported by a lens set holder 230.
- Lens holder 230 may be mounted to base 212 by conventional means, for example, an adhesive, welding, or mechanical fasteners, such as, one or more screws 213.
- lens set holders 201 through 207 and the elements they contain may be rectangular in shape. In other aspects of the invention, lens sets 201 through 207 and the elements they contain may be circular, oval, or polygonal in shape, for example, triangular, square, pentagonal, or hexagonal, among other shapes.
- FIGURES 13, 14, 15, and 16 illustrate detailed views of base 212 and cover 214 according to one aspect of the present invention.
- FIGURE 13 is a top plan view of base 212.
- FIGURE 14 is a side elevation view of base 212 as viewed along lines 14-14 in FIGURE 13.
- Base 212 includes a bottom plate 215 and two side plates 216.
- Base 212 and 215 may comprise an integral construction, for example, machined from a single block, forged, cast, or welded, or separate parts assembled by an adhesive or mechanical fasteners.
- Base 212 may be adapted to mount and position the lens set housings, for example, lens set housings 201 through 207 shown in FIGURES 10 and 11.
- base 212 includes a plurality of holes 217 for mounting lens set housings 201 through 207 to base 212, for example, a plurality of counter-sunk through holes.
- Side plates 216 may also be adapted to mount cover 214, for example, side plates 216 may include one or more threaded holes 218 adapted to accepted threaded fasteners (not shown).
- Base 212 may be metallic or non-metallic.
- base 212 may be made from one or more of the following metals: iron, steel, stainless steel, aluminum, titanium, nickel, magnesium, brass, bronze, or any other structural metal.
- Base 212 may also be made from one or more the following plastics: polyamide (PA), for example, nylon, polyethylene (PE), polypropylene (PP), polyester (PE), polytetraflouroethylene (PTFE), acrylonitrile butadiene styrene (ABS), and polyvinylchloride (PVC), among other plastics.
- PA polyamide
- PE polyethylene
- PP polypropylene
- PET polypropylene
- PE polytetraflouroethylene
- ABS acrylonitrile butadiene styrene
- PVC polyvinylchloride
- FIGURE 15 is a top plan view of cover 214.
- FIGURE 16 is a side elevation view of cover 214 as viewed along lines 16-16 in FIGURE 15.
- Cover 214 may include a plurality of holes 219 for mounting cover 214 to base 212, for example, a plurality of counter-sunk through holes.
- Cover 214 may be metallic or non-metallic and made from one or more of the metals or plastics listed above with respect to base 212.
- base 212 and cover 214 may vary depending upon the size of the optics mounted therein.
- base 212 and cover 214 may have a length 221 of between about 25 mm and about 3 meters, typically, between about 50 mm and about 100 mm, for example, about 60 mm.
- base 212 and cover 214 may have an inner radius 223 of between about 5 mm and about 250 mm, typically, between 20 mm and about 40 mm, for example, about 29 mm.
- base 212 and cover 214 may have an outer radius 225 of between about 5 mm and about 250 mm, typically, between 35 mm and about 55 mm, for example, about 44 mm.
- base 212 may have a height 227 of between about 5 mm and about 250 mm, typically, between about 5 mm and about 25 mm, for example, about 13 mm.
- cover 214 may have a thickness 229 of between about 1 mm and about 50 mm, typically, between about 1 mm and about 5 mm, for example, about 3 mm.
- FIGURES 17, 18, and 19 illustrate views of lens holder 230 shown in FIGURE 12 according to another aspect of the invention.
- FIGURE 17 is a side elevation view of lens holder 230.
- FIGURE 18 is a plan view of lens holder 230 as viewed along lines 18-18 in FIGURE 17.
- FIGURE 19 is a side elevation view of lens holder 230 as viewed along lines 19-19 in FIGURE 17.
- lens holder 230 includes a first section 231 adapted to receive the objective lens end of a lens set housing, such as, lens set housings 201 through 207 of FIGURE 10, and a second section 232 adapted to receive the ocular lens end of a lens set housing.
- Section 232 may comprise a slope having an angle of between about 10 and 50 degrees, depending upon the size of the optics being used. In one aspect, section 232 comprises an angle of between about 20 degrees and about 30 degrees, for example, about 22 degrees. Sections 231 and 232 may included rounded depressions (not shown) adapted to receive a circular lens set housing. Lens holder 230 may include one or more holes, for example, one or more threaded holes by which lens holder 230 may be mounted to housing 210, for example, threaded holes 234, 235, and 236 (shown in phantom).
- lens holder 230 may vary depending upon the size of the optics mounted therein.
- lens holder 230 may have a length 237 of between about 5 and about 50 mm, typically, between about 8 and about 16 mm, for example, about 11 mm.
- lens holder 230 may have a width 238 of between about 3 and about 25 mm, typically, between about 5 and about 12 mm, for example, about 7 mm.
- lens holder 230 may have a height 239 of between about 2 and about 25 mm, typically, between about 3 and about 7 mm, for example, about 5 mm.
- Lens holder 230 may be metallic or non-metallic, for example, lens holder 230 may be made from one or more of the metals or plastics identified above with respect to base 212.
- FIGURE 20 is a front development elevation view of an array or arrangement 240 of multiple rows of telescopic lens sets according to one aspect of the invention.
- array 240 may include 2 or more lens sets per row, for example, 3, 4, 5, 8 or more lens sets per row, and 2 or more rows.
- the lens sets in array 240 may include lens sets similar to other lens sets described previously, for example, lens sets 61 through 67 shown in FIGURE 4, and may include corresponding ocular lenses, objective lenses, and refracting elements, such as prisms.
- the lens sets in array 240 may also include one or more magnifying elements, such as, lens caps, as described with respect to FIGURE 7. According to this aspect of the invention, lens sets in array 240 may be designed, for example, with appropriate parameters ⁇ , ⁇ , ⁇ , etc., discussed above, to provide the substantially contiguous field of view, as discussed above.
- FIGURE 20 comprises a development for ease of illustration.
- aspects of the invention may provide an array 240 having a plurality of lens sets arranged in a planar fashion
- the array 240 may be arranged whereby the lens sets are arranged in an array having a radius, for example, as shown in FIGURES 3, 4, and 7.
- the radiused array 240 may be arranged in a cylindrical fashion, that is, where the lens sets are arranged as if mounted on the surface of a circular cylinder, or in spherical fashion, wherein the lens sets are arranged as if they were mounted on the surface of a sphere, for example, having the sphere's center coincident with the center of rotation of the eye.
- FIGURE 21 is schematic front elevation view of a row of telescopic lens sets 280 as positioned in a spherical fashion about sphere 290 according to one aspect of the invention.
- the radius of sphere 290 may vary from between about 5 mm and about 250 mm, typically, between 35 mm and about 55 mm, for example, about 44 mm.
- each lens set is identified by a two integer code (x, y), where x is the row of the lens set and y is the relative position of the lens set in each row with respect to the vertical centerline 242 of array 240.
- x is the row of the lens set
- y is the relative position of the lens set in each row with respect to the vertical centerline 242 of array 240.
- the middle row of the array aligned along horizontal centerline 244 is designated the "0" row.
- the center lens set is designated (0, 0) and the right-most lens set in the upper row is designated (1, 3).
- the lens set housings of the lens sets in FIGURE 20 may be shaped to conform to adjacent housings in the array.
- the housings of the lens sets are hexagonal in shape to provide for optimum compatibly and packing of the lens set housings.
- the housings may also be circular, oval, triangular, square, rectangular, or any polygonal shape.
- the lens sets may be mounted in a staggered relationship relative to adjacent lens sets.
- the lens sets may be arranged directly on top of the lens sets above and below, whereby the centerlines of the lens sets are substantially aligned with the centerlines of the lens sets above and below.
- the centerlines of lens sets in adjacent rows may not be aligned.
- the lens sets and prisms above and below the row of lens sets shown may require progressive changes in shape and orientation due their positioning on tilted great circles of sphere 290.
- aspects of the invention provide methods and devices for improving the vision of both those of normal vision and the visually impaired by providing a wider field of view than provided by the prior art, and in some aspects, a contiguous wide field of view.
- Aspects of the invention may be used to facilitate the acquisition of targets of interest, for example, street signs or driving hazards, and allow the user to turn and view the target.
- Aspects of the invention may be used for opera-type glasses and provide a wider field of view of the stage, the track, the court, or the field for the opera or theater lover or sports fan.
- the wider field of view provided by aspects of the present invention may also improve outdoor tracking or viewing, such as in military surveillance or bird watching.
- Other applications of aspects of the invention will be apparent to those familiar with the art.
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Abstract
Description
Claims
Priority Applications (2)
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| GB0709648A GB2434218B (en) | 2004-11-18 | 2005-11-10 | Devices and methods for providing wide filed magnification |
| CA002587902A CA2587902A1 (en) | 2004-11-18 | 2005-11-10 | Devices and methods for providing wide field magnification |
Applications Claiming Priority (2)
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| US10/991,917 | 2004-11-18 | ||
| US10/991,917 US7477451B2 (en) | 2004-11-18 | 2004-11-18 | Devices and methods for providing wide field magnification |
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| WO2006055641A1 true WO2006055641A1 (en) | 2006-05-26 |
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| CA (1) | CA2587902A1 (en) |
| GB (1) | GB2434218B (en) |
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2004
- 2004-11-18 US US10/991,917 patent/US7477451B2/en not_active Expired - Fee Related
-
2005
- 2005-10-26 TW TW094137401A patent/TWI270686B/en not_active IP Right Cessation
- 2005-11-10 CA CA002587902A patent/CA2587902A1/en not_active Abandoned
- 2005-11-10 WO PCT/US2005/041543 patent/WO2006055641A1/en not_active Ceased
- 2005-11-10 GB GB0709648A patent/GB2434218B/en not_active Expired - Fee Related
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| GB840843A (en) * | 1955-08-05 | 1960-07-13 | British Iron Steel Research | Improvements in or relating to optical systems |
| US3329818A (en) * | 1963-03-08 | 1967-07-04 | Walter E Woehl | Photoelectric tracking system comprising a plurality of telescopes viewing adjacent fields |
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Also Published As
| Publication number | Publication date |
|---|---|
| TW200622293A (en) | 2006-07-01 |
| US7477451B2 (en) | 2009-01-13 |
| GB2434218A (en) | 2007-07-18 |
| GB2434218B (en) | 2009-07-01 |
| US20060103924A1 (en) | 2006-05-18 |
| CA2587902A1 (en) | 2006-05-26 |
| TWI270686B (en) | 2007-01-11 |
| GB0709648D0 (en) | 2007-06-27 |
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