This disclosure relates generally to aerial delivery systems. More specifically, this disclosure relates to automatic systems employed for securing cargo to a platform and for releasing the cargo from the platform.
For aerial delivery systems to which the disclosure relates, a cargo is secured to a platform which is loaded into the aircraft. The platform is extracted from the aircraft by an extraction parachute. Suspension parachutes are subsequently opened to complete the aerial delivery. The cargo is secured to the platform by various techniques which may, for example, include flexible straps secured around the cargo and placed in tension. For aerial delivery which involves land delivery, upon landing of the cargo, the straps are released to obtain access or usage of the cargo. For aerial delivery of vehicles, the number of straps employed vary depending on weight and configuration of the payload. The straps are latched about the wheels, axles, or other connection points at the underside of the vehicle. Upon landing of the platform, typically, each of the four latch assemblies is independently released so that the cargo vehicle may be unloaded from the platform.
U.S. Pat. No. 8,414,235 describes a Single Point Release system which allows a series of latches to be simultaneously released from a single control lever. The manually actuated control lever disclosed in U.S. Pat. No. 8,414,235 is suitable for various applications, however in other applications it is desired to have the capability for dropping payloads autonomously, or remotely operated. Accordingly, there is a need for an improved single point release system.
Briefly stated, an automatic single point release system comprises a platform, a plurality of securement modules mounted to said platform, each said module comprising, a first strap anchored to said platform, a second strap anchored to said platform, and a latch connected between the first strap and the second strap, wherein the latch comprises a releasable latch arm, a rocker arm, a control cable, wherein the control cable is configured to control a position of the rocker arm, and wherein the latch arm is configured to be attachable and releaseable to a payload on the platform in response to the position of the rocker arm; a control box mounted to the platform, wherein the control box is connected to each control cable, wherein the control box is configured to automatically and concurrently release each said latch in response to a predetermined condition.
With reference to the drawings wherein like numerals represent like parts throughout the several Figures, an automatic single point release (ASPR) system for an aerial delivery system is generally designated by the numeral 10. The release system 10 functions to provide a single point for efficiently concurrently and automatically releasing the cargo retaining latches for an aerial delivery system. The automatic single point system is adapted to provide a quick release for land based delivery and a more reliable release for mid-air release requirements, such as for a rigid inflatable boat. The automatic single point release system is employed in conjunction with an airdrop platform 12 which may be Type V or any other platform employed for aerial delivery.
The Automatic Single Point Release (ASPR) system 10 is configured to automatically release the restraints fastening the airdrop payload to an airdrop platform based on sensor input to meet predetermined release conditions.
As such, the ASPR latches 16 are attached to clevises 24 (or equivalent tie down provisions) located on an airdrop payload 14. In this example, the each of the latches 16 are attached to the clevis (or equivalent tie down provision) 24 proximate a wheel of the vehicle, however in alternate embodiments, any suitable location or attachment point for the latch may be provided.
The latch straps 18 are then fastened to the airdrop platform 12 and tensioned. Each latch 16 is then connected to the control box 20, which includes sensors 26 and a control circuit 28. The control circuit 28 monitors the sensors 26 and determines when release conditions have been met. The control circuit then triggers the ASPR latches 16 to release the payload 14.
Referring now also to
The control box 20 includes the sensors 26, the control circuit (or logic circuit) 28, a timer 30, a power supply 32 (such as batteries, for example), and means of triggering the latches. In this embodiment, the control box 20 uses mechanical cables to trigger the latches 16 to release. The control box 20 further comprises a linear actuator 34 connected to a movable bridge (or driver bridge) 36, guide rails 38, and a fixed guide 40. The guide rails 38 are provided at opposite ends of the driver bridge 36 (with only one guide rail visible in the perspective view of
Still referring to
Referring now also to
The latch arm 50, the lever arm 52, and the rocker arm 54 are all pivotably connected to the main body portion 48 of the latch 16. The latch arm 50 is configured to fit around a portion of the corresponding clevis 24 (or equivalent tie down provision) in the closed position while the lever arm 52 secures the latch arm 50 in the closed position (as shown in
With the control box in the ‘locked’ position as shown in
Referring now also to
Referring now also to
Similar to the ‘locked’ position of the latch 16 in
Technical effects of any one or more of the exemplary embodiments provide significant improvements over conventional configurations including replacing the manually actuated control lever with an electrically controlled release means. As described above, in one embodiment the release means typically includes one electric actuator connected to the latches via mechanical control cables. In another embodiment, each individual latch includes an electric actuator, with the control box supplying a trigger signal. According to the various exemplary embodiments, the sensors may include pressure altimeter, accelerometers, or timer, to determine when the release means should trigger.
Additional technical effects of any one or more of the exemplary embodiments, provide reliable configurations when there is a need to drop payloads which can be autonomous, or remotely operated. In conventional configurations these payloads cannot be airdropped without support personnel because there is no means of releasing the payload from the airdrop platform. The various exemplary embodiments disclosed above add the capability of ‘releasing’ based on sensor input without having support personnel present. Automatically releasing the restraints may also speed recovery time, which is generally beneficial for all payloads. A further use of the system is to allow for mid-air release if this is desired, such as when airdropping watercraft.
It should be noted that the automatic single point release system of the present invention constitutes various improvements over the release system disclosed in U.S. Pat. No. 8,414,235. Except as described otherwise herein, various latches and other features may be similar to the latches disclosed in the above patent and therefore the disclosure of U.S. Pat. No. 8,414,235 is incorporated herein by reference in its entirety.
Referring now also to
While various exemplary embodiments have been described in connection with the control box comprising four control cables corresponding to four securement modules (with each securement module comprising a latch and a pair of straps), one skilled in the art will appreciate that the various exemplary embodiments are not necessarily so limited and alternate embodiments may provide a control box with more than four control cables and a corresponding number of securement modules.
Below are provided further descriptions of various non-limiting, exemplary embodiments. The below-described exemplary embodiments may be practiced in conjunction with one or more other aspects or exemplary embodiments. That is, the exemplary embodiments of the invention, such as those described immediately below, may be implemented, practiced or utilized in any combination (e.g., any combination that is suitable, practicable and/or feasible) and are not limited only to those combinations described herein and/or included in the appended claims.
In one exemplary embodiment, an automatic single point release system comprising: a platform; a plurality of securement modules mounted to said platform, each said module comprising: a first strap anchored to said platform; a second strap anchored to said platform; and a latch connected between the first strap and the second strap, wherein the latch comprises a releasable latch arm, a rocker arm, and a control cable, wherein the control cable is configured to control a position of the rocker arm, and wherein the latch arm is configured to be attachable and releaseable to a payload on the platform in response to the position of the rocker arm; a control box mounted to the platform, wherein the control box is connected to each control cable, wherein the control box is configured to automatically and concurrently release each said latch in response to a predetermined condition.
The automatic single point release system as above wherein the control cable comprises a mechanical cable.
The automatic single point release system as above wherein the control cable comprises an electrical cable.
The automatic single point release system as above wherein there are at least four securement modules.
The automatic single point release system as above wherein the control box comprises a control circuit, and sensor, and/or a timer.
The automatic single point release system as above wherein the sensor comprises a pressure altimeter and/or accelerometers.
In another exemplary embodiment, an automatic single point release system, comprising: a securement module comprising a latch; a control box connected to the latch, wherein the control box comprises a sensor; at least one processor; and at least one memory including computer program code, the at least one memory and the computer program code configured to, with the at least one processor, cause the system to perform at least the following: determine a release condition; and trigger the latch to move to a release position in response to the determined release condition.
In another exemplary embodiment, a computer program product comprising a computer-readable medium bearing computer program code embodied therein for use with a computer, the computer program code comprising: code for determining a release condition; and code for triggering a latch to move to a release position in response to the determined release condition.
It should be understood that components of the invention can be operationally coupled or connected and that any number or combination of intervening elements can exist (including no intervening elements). The connections can be direct or indirect and additionally there can merely be a functional relationship between components.
It should be understood that the foregoing description is only illustrative of the invention. Various alternatives and modifications can be devised by those skilled in the art without departing from the invention. Accordingly, the invention is intended to embrace all such alternatives, modifications and variances which fall within the scope of the appended claims.