Systems and methods for inflator-based actuation
11220235 · 2022-01-11
Assignee
Inventors
- Andrew Delisle (Tiverton, RI, US)
- Richard Gagnon (Somerset, MA, US)
- Barry Holland (Jamestown, RI, US)
- Keith Amaral (Fairhaven, MA, US)
Cpc classification
B60R21/264
PERFORMING OPERATIONS; TRANSPORTING
F42B3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R21/268
PERFORMING OPERATIONS; TRANSPORTING
B60R21/274
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/2642
PERFORMING OPERATIONS; TRANSPORTING
F42B3/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R2021/26094
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R21/264
PERFORMING OPERATIONS; TRANSPORTING
F42B3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R21/268
PERFORMING OPERATIONS; TRANSPORTING
F42B3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R21/274
PERFORMING OPERATIONS; TRANSPORTING
F16K31/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R21/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An inflator-based system provides for the actuation of valves and other devices using automotive air bag inflators, for example. One or more inflators can be connected to a valve body with an adapter such that upon inflator activation, inflator gases can act on a piston or similar device to achieve desired movement or operation of the valve or device. An inflator-based actuator can provide for a single action or multiple actions of a valve or other device. Such a system can provide safer and more reliable alternatives to electro-explosive ordnance devices found in pyrovalves, for example. Other uses for an inflator-based actuation system can include a lanyard pull initiator, a dual cartridge cutter, a bolt cutter, a hot gas generator (HGG) body, and a HGG pressure cartridge, to name a few examples.
Claims
1. A modular actuation system, comprising: a valve body unit comprising: a valve body; an inlet; an outlet; a piston; a valve shuttle; a retaining cap; a gas generator adapter having a plurality of gas generator connection ports; and a plurality of gas generators operatively connected to the valve body via the plurality of gas generator connection ports, wherein said one or more gas generators each comprises an automotive airbag inflator device, said actuation system further comprising a controller for activating the gas generators in response to an activation signal, wherein, upon activation, gas from the one or more gas generators acts on the piston to achieve desired movement or operation of the actuation system.
2. The modular actuation system of claim 1, further comprising a directional control valve operatively connected to the gas generator adapter.
3. The modular actuation system of claim 1, further comprising a power supply.
4. The modular actuation system of claim 2, wherein the controller is configured to activate said plurality of gas generators sequentially and with a predetermined time delay.
5. The modular actuation system of claim 1, wherein the plurality of gas generators each comprise a cold-gas automotive airbag inflator.
6. The modular actuation system of claim 2, wherein the plurality of gas generators each comprise a cold-gas automotive airbag inflator.
7. The modular actuation system of claim 4, wherein the plurality of gas generators each comprise a cold-gas automotive airbag inflator.
8. The modular actuation system of claim 1, wherein the plurality of gas generators each comprise a hot-gas automotive airbag inflator.
9. The modular actuation system of claim 2, wherein the plurality of gas generators each comprise a hot-gas automotive airbag inflator.
10. The modular actuation system of claim 4, wherein the plurality of gas generators each comprise a hot-gas automotive airbag inflator.
11. The modular actuation system of claim 1, wherein the plurality of gas generators are removably connected to the valve body via the plurality of gas generator connection ports.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) As will be realized, different embodiments are possible, and the details disclosed herein are capable of modification in various respects, all without departing from the scope of the claims. Accordingly, the drawings and descriptions are to be regarded as illustrative in nature and not as restrictive. Like reference numerals or characters are used throughout the several views and embodiments to designate like components.
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DETAILED DESCRIPTION
(8) To facilitate an understanding of the principles upon which the subject matter disclosed herein is based, several illustrative embodiments are described hereinafter with reference to their implementation as an emergency valve control actuator or to replace the EED components in devices such as pyrovalves. It will be appreciated that the practical applications of these principles are not limited to these particular types of implementations. Rather, they can be equally employed in any other type of operating environment where it is desired to provide for the rapid and reliable actuation of valves and other devices.
(9) The disclosed exemplary embodiments innovate upon the principles disclosed in commonly owned U.S. Pat. No. 6,418,870, the disclosure of which is hereby incorporated by reference in its entirety. As used herein, the term “inflator” can be defined as including any replaceable, self-contained, sealed device that provides non-toxic, non-flammable, non-corrosive gases under pressure in a controlled manner, either as a by-product of a chemical reaction or through release of a stored inert compressed gas, or both, in response to an electrical signal. Exemplary inflators can include standard, commercial, off-the-shelf automotive air bag inflators, including those of the cold gas variety. Suitable inflators can also include hybrid gas inflators wherein a combination of compressed cold gas and some amount of energetic gas propellant can be employed. Propellant gas generators may also be used.
(10) Exemplary automotive airbag inflators can be thought of as essentially very small containers of highly pressurized inert gases that are released when a small initiator is activated. The internal shock wave from the initiator breaks a burst disc inside the inflator, releasing the inert gases. Activation of the initiator requires a very small amount of electrical current that can either be supplied from normal power systems, if available, or from a small battery or capacitor backup system, for example. Because of the very small size and low cost of the inflators and electrical backup system, the exemplary embodiments can be packaged in a small volume and can operate independent of other systems in an emergency.
(11) In an embodiment, an inflator can be a small, high pressure, high reliability flask that contains a quantity of one or more inert gases, such as argon and/or helium, under pressure. In an embodiment, on ignition, a small initiator can break a seal, releasing cold gas, or a small initiator can ignite solid propellant that can burn and generate a gas that mixes with the inert gases in the vessel to heat it. A seal of the pressure vessel containing the inert gases can be burned, burst, or ruptured using a piston or a shock wave. The gas from the propellant can be mixed with the inert gases and can escape through a thrust-neutralized port.
(12) Several known vendors, including ARC Automotive, Autoliv, and Key Safety Systems, produce known examples of suitable inflators. In various exemplary embodiments, a single size inflator, the Autoliv ACH 2.2 180 kPa model, can be used to suitably actuate a range of valve sizes typically used in Smart Valve systems, for example.
(13) Examples of known inflators are described in the following patents, the contents of which are expressly incorporated herein by reference: U.S. Pat. Nos. 7,883,108; 6,170,868; 5,979,936; 3,723,205; 3,756,621; 3,895,821; 5,033,772; 5,076,607; 5,345,876; 5,777,699; 5,899,411; 5,601,310; 5,747,730; 5,763,821; 5,850,053; 5,861,571; and 5,997,666. Such automotive cold gas generators can be desirable because they can be built to standards that are set by the automotive industry and that can exceed military standards for reliability. Such inflators can meet military-like specifications for longevity, impact resistance and insensitivity as munitions. The combustion product gas mix is typically benign. The firing readiness of such inflators typically does not degrade over time. Shelf life of these inflators can be approximately fifteen to twenty years with no maintenance or inspection required.
(14) Commercially available automotive airbag canisters can be adapted to provide the impulse power to enable actuation. Airbag systems can be simple and nearly 100% reliable and meet Department of Transportation standards similar to compressed gas cylinders. Commercially available inflators, with a long shelf life, are relatively inexpensive, reliable and permit the modularity of a completely sealed, maintenance-free valve actuation system.
(15) Referring to the exemplary embodiment of an IBEVAS shown in
(16) Valve actuators can be integrated with autonomous (“Smart Valve”) sensing technology. The inflator-based pneumatic valve actuator system can be used to provide energy to operate fluid system valves, especially in emergency situations where normal power sources might be lost. In piping systems, such as those found onboard ships, oil pipelines, chemical plants, nuclear power plants, etc., sensors can detect an unusual or emergency situation and send a signal to the inflator-based valve actuation system to automatically and remotely operate valves. Such remote actuation could be triggered by acoustic or RF signals, for example. The inflator-based system can help minimize the size of a valve assembly and can reduce or eliminate dependency on external power sources.
(17) In an embodiment, one or more airbag inflators, for example, can be threaded into an inflator adapter, e.g., a manifold, to hold inflators in a sturdy manner to allow inflators to be discharged into a valve body or directional control valve. The inflators can be sealed with an O-ring or similar sealing device.
(18) When multiple inflators are to be used, at an appropriate and predetermined time, for example, when the pressure has peaked and is beginning to decrease, the next inflator in the sequence can be initiated. This sequence may continue until all the inflators are discharged. This innovative process can minimize the forces on the internal components, thus minimizing unwanted damage. Any appropriate number of inflators could be provided depending on the nature of the job to be accomplished.
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(20) Regarding differences between an inflator-based pyrovalve and IBEVAS, one difference can be that IBEVAS allows putting a mechanism on top of an existing valve to automatically have it open/close/open or close/open/close (three actions). The operation of an inflator-based pyrovalve can be a single one-time opening of a normally closed valve or a single one-time closing of a normally open valve.
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(23) Some of the advantages of an inflator-based actuation system over known actuation systems can include:
(24) Small compact size (cigar to soup can size, depending on output requirements)
(25) Minimal power requirements to activate (simple battery backup)
(26) Proven reliability in the automotive industry (99.9999%)
(27) COTS availability in a wide range of power outputs
(28) Easily handled and stored (similar to CO2 cartridges)
(29) Increased safety and reduced maintenance by eliminating pressurized air systems
(30) Reduced training to operate and maintain the systems
(31) Reduced costs (maintenance and manning reductions)
(32) Other exemplary embodiments that include the concepts disclosed herein can include a hot gas generator (HGG) body, and a HGG pressure cartridge, to name a few non-limiting examples.
(33) The above description is presented to enable a person skilled in the art to make and use the systems and methods described herein and is provided in the context of a particular application and its requirements. Various modifications to the embodiments will be readily apparent to those skilled in the art, and generic principles defined herein may be applied to other embodiments and applications without departing from the spirit and scope of the claims Thus, there is no intention to be limited to the embodiments shown, but rather to be accorded the widest scope consistent with the principles and features disclosed herein.