1. Field
The invention relates generally to cameras and periscopes. More particularly, the invention relates to a fully articulated periscope camera system that can take stable pictures and video.
2. Background
Television and movie studios are increasingly using airplanes and helicopters to film television commercials, shows and movies. In some instances, a camera operator is in an airplane or helicopter holding the video camera steady to take the pictures and video. Alternatively, the video camera may be mounted to the airplane or helicopter and the camera operator may control the movement of the video camera. In both instances, the pictures produced may be blurry or the video produced may jitter due to vibrations of the camera operator and/or the airplane or helicopter.
Most high performance aerial video camera systems require effective vibration compensation of high frequency, airplane and wind vibration components for smooth, jitter-free pictures and video. Currently, effective vibration compensation is generally achieved by using some form of gyro-stabilization.
The camera or periscope system may include a taking lens, a beam steering device, a relay device, and an image rotation device. The camera or periscope system can be used to image in situations where the camera is not easily redirected to view a desired object of interest. The camera or periscope system is designed to be fixed to a mounting platform where the taking lens can be configured to point to the desired object of interest.
The camera or periscope system allows views that were not obtainable from previous methods for viewing from a moving platform. The camera or periscope system allows positioning of the taking lens in restricted spaces. The camera or periscope system has applications in cinematography, digital cinema, photography, reconnaissance and surveillance. The camera or periscope system improves the quality and capability of cinematography for various applications.
Some advantage of the camera or periscope system may include large pan and tilt ranges, an image stabilizing system for one or more axis, an ability to roll images, an easy to use system, an ability to capture stationary and still view objects located at virtually any location, and simplified alignment tolerances.
The exact nature of this invention, as well as the objects and advantages thereof, will become readily apparent from consideration of the following specification in conjunction with the accompanying drawings in which like reference numerals designate like parts throughout the figures thereof and wherein:
Apparatus, systems and methods that implement the embodiments of the various features of the invention will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate some embodiments of the invention and not to limit the scope of the invention. Throughout the drawings, reference numbers are re-used to indicate correspondence between referenced elements. In addition, the first digit of each reference number indicates the figure in which the element first appears.
The taking lens 105 may include one or more lenses configured to produce an image or form an intermediate image. For example, the taking lens 105 may be a zoom lens or a multi-element lens assembly configured to produce an image. The taking lens 105 can be any type or quantity of lenses of sufficient quality to generate an image. Preferably, the taking lens 105 is a multi-element zoom lens. The taking lens 105 can be electronically or manually controlled to rotate 360 degrees and move in vertical and/or horizontal directions to capture different images. Hence, the taking lens 105 can be referred to as a “rotatable” or “movable” taking lens 105. In one embodiment, a zoom camera lens is used as the taking lens 105.
The beam steering device 110 may redirect the light that forms the image and may be used to direct the light to the relay device 115. The beam steering device 110 may include one or more prisms, one or more mirrors, one or more field lenses, one or more coherent fiber optic bundles and combinations thereof. In one embodiment, the beam steering device 110 includes 3 right angle prisms and a field lens. As shown in
The relay device 115 may receive an image or light from the third right angle prism 110d or the second right angle prism 110c. The relay device 115 may re-image the light from the taking lens 105 and the beam steering device 110. The relay device 115 can magnify or demagnify the image as needed and can change the intermediate image size to match the desired format. The relay device 115 may include a multi-element lens assembly, a multi-element lens assembly positioned in a folded or straight housing 125, one or more relay lenses having different magnifications, and combinations thereof. In one embodiment, the relay device 115 may include a relay lens with a fixed focal length. A multi-element relay lens including more than one lens (e.g., between about 5-15 lenses) can be used as the relay device 115. The multiple lenses can be positioned within the housing 125 in an arrangement or configuration that allows for the multiple lenses to correct for aberrations produced by the beam steering device 110. In one embodiment, the relay device 115 comprises a plurality of different relay lenses having different magnifications. In one embodiment, the relay device 115 has the magnification for a 4-perferation film format. In another embodiment, the relay device 115 has the magnification for a 70 millimeter (IMAX) film format.
The image rotation device 120 rotates the image being produced or recorded. The rotation can be used to erect, roll or invert the image being produced or recorded. The image rotation device 120 may include one or more Pechan prisms and/or one or more Compact prisms. In one embodiment, the image rotation device 120 is a Pechan prism.
The image is projected onto an image plane 130, which can be film or an electronic sensor for a digital camera or a video High Definition (HD) camera or video recorder. The electronic sensor (e.g., electronic CCD) can capture the image and store the image in memory (not shown). The memory may be hardware and/or software such as RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, hard disk, removable disk, CD-ROM, or any other form of storage medium known in the art.
While certain exemplary embodiments have been described and shown in the accompanying drawings, it is to be understood that such embodiments are merely illustrative of and not restrictive on the broad invention, and that this invention not be limited to the specific constructions and arrangements shown and described, since various other changes, combinations, omissions, modifications and substitutions, in addition to those set forth in the above paragraphs, are possible. Those skilled in the art will appreciate that various adaptations and modifications of the just described embodiment can be configured without departing from the scope and spirit of the invention. Therefore, it is to be understood that, within the scope of the appended claims, the invention may be practiced other than as specifically described herein.
The present application for patent claims priority to U.S. Provisional Application No. 60/869,852 entitled “FULLY ARTICULATED PERISCOPE CAMERA SYSTEM,” filed Dec. 13, 2006, and assigned to the assignee hereof and hereby expressly incorporated by reference herein.
Number | Date | Country | |
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60869852 | Dec 2006 | US |