The invention relates to mechanical mechanisms, and more particularly, to mechanisms that toggle an element such as a camera shutter between two distinct positions.
A camera shutter is a mechanical device that is utilized to control the exposure of a camera's imaging system to electromagnetic radiation. In the case of an infrared camera, the shutter, when closed, can also be used as a uniform surface for calibration of the imaging system.
With reference to
In many combat situations, space, weight, and energy usage must all be conserved. A soldier can only carry a limited amount of weight and bulk, including batteries. In addition, a soldier can sometimes be endangered if his equipment makes audible noises. Missiles and some aircraft can also be limited in their available space, weight, and energy supply.
Nevertheless, due to the need for robustness, military grade camera shutters such as the one shown in
In addition, shutter mechanisms such as the one shown in
What is needed, therefore, is a mechanical device for transitioning an element such as a camera shutter between two distinct positions, wherein the device is robust in the face of harsh environmental conditions and yet the size, weight, energy consumption, cost, and noise generation of the device are all comparable to conventional, non-military camera shutters.
A robust, compact, lightweight, low energy, low cost, and low noise mechanical mechanism includes a Geneva drive directly connected to a camera shutter or other element whereby the Geneva drive transitions the shutter between two positions. Between transitions, the Geneva drive locks the shutter in place, and thereby isolates the remainder of the mechanism from the shutter. Due to this isolation, the remainder of the mechanism need not be robust beyond requirements that would apply to a conventional shutter mechanism, thereby reducing the weight, space, noise, cost, and power requirements of the mechanism.
In embodiments, the mechanism includes a rotary actuator. In other embodiments, the mechanism includes a linear actuator and a rack gear. In various embodiments, the motor is a piezomotor. In certain embodiments, the starting and ending positions of the mechanism are determined by sensors that sense the arrival of the mechanism at the starting and ending points, and in some embodiments the starting and ending points are adjustable.
Note that, except where the context specifically requires a camera shutter, the term “shutter” is used herein to refer to any physical element that is transitioned between two mechanical positions.
The present invention is an apparatus for transitioning a switchable element between a first switched position and a second switched position. The apparatus includes an actuating mechanism that can be transitioned between a first configuration and a second configuration and a Geneva drive that includes a drive section coupled to the actuating mechanism and a shutter section coupled to the switchable element. The drive section is rotated between a first orientation and a second orientation when the actuating mechanism is transitioned between the first configuration and the second configuration, the shutter section is rotated by the drive section between a first position and a second position when the drive section rotates between the first orientation and the second orientation, and the switchable element is thereby transitioned respectively between the first switched position and the second switched position. The shutter section is unable to apply a torque to the drive section when the drive section is in either of the first orientation and the second orientation.
In various embodiments, the switchable element is a camera shutter. In some embodiments, the actuating mechanism includes a rotary actuator.
In certain embodiments the actuating mechanism includes a linear actuator. In some of these embodiments the actuating mechanism includes a pivot gear.
In some embodiments, the actuating mechanism includes a piezomotor. Various embodiments further include sensors that detect when the actuating mechanism is in one of the first configuration and the second configuration.
In certain embodiments, at least one of the first and second switched positions can be adjusted by correspondingly adjusting at least one of the first configuration of the actuating mechanism and the second configuration of the actuating mechanism. In some of these embodiments, the actuating mechanism can be mechanically adjusted. And in other of these embodiments, the actuating mechanism includes a sensor that can sense a range of configurations of the actuating mechanism, and at least one of the first and second configurations of the actuating mechanism can be electronically adjusted by adjusting a setting of a controller that receives input from the sensor.
The features and advantages described herein are not all-inclusive and, in particular, many additional features and advantages will be apparent to one of ordinary skill in the art in view of the drawings, specification, and claims. Moreover, it should be noted that the language used in the specification has been principally selected for readability and instructional purposes, and not to limit the scope of the inventive subject matter.
With reference to
Between transitions, the Geneva drive 200 locks the shutter 202 in position, and thereby isolates the actuating mechanism from the shutter 202. Due to this isolation, the actuating mechanism need not be significantly more robust than in a conventional shutter mechanism, although in some applications it must be able to function over a wider temperature range. Isolation of the actuating mechanism by the Geneva drive thereby reducing the weight, space, noise, cost, and power requirements of the actuating mechanism.
In embodiments, the actuating mechanism includes a piezomotor. In some embodiments, the actuating mechanism includes a rotary actuator, while in other embodiments, the actuating mechanism includes a linear actuator.
In the embodiment of
The shutter section plane 406 includes a notch 416 into which the drive pin 412 can enter. The notch 416 is flanked on either side by an arced portion 418 that corresponds in position and shape to the round portion of the drive section upper layer 414.
The foregoing description of the embodiments of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of this disclosure. It is intended that the scope of the invention be limited not by this detailed description, but rather by the claims appended hereto.
This application claims the benefit of U.S. Provisional Application No. 61/441,364, filed Feb. 10, 2011, which is herein incorporated by reference in its entirety for all purposes.
The invention was made with United States Government support under Contract No. W91CRB-07-C-0098 awarded by the US Department of the Army. The United States Government has certain rights in this invention.
Number | Date | Country | |
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61441364 | Feb 2011 | US |