US3769875A - Actuating mechanism - Google Patents

Actuating mechanism Download PDF

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US3769875A
US3769875A US00199390A US3769875DA US3769875A US 3769875 A US3769875 A US 3769875A US 00199390 A US00199390 A US 00199390A US 3769875D A US3769875D A US 3769875DA US 3769875 A US3769875 A US 3769875A
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cavity
body portion
rigid body
closed end
explosive charge
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US00199390A
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E Rakowsky
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Singer Co
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Singer Co
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02KJET-PROPULSION PLANTS
    • F02K9/00Rocket-engine plants, i.e. plants carrying both fuel and oxidant therefor; Control thereof
    • F02K9/95Rocket-engine plants, i.e. plants carrying both fuel and oxidant therefor; Control thereof characterised by starting or ignition means or arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42CAMMUNITION FUZES; ARMING OR SAFETY MEANS THEREFOR
    • F42C15/00Arming-means in fuzes; Safety means for preventing premature detonation of fuzes or charges
    • F42C15/28Arming-means in fuzes; Safety means for preventing premature detonation of fuzes or charges operated by flow of fluent material, e.g. shot, fluids
    • F42C15/29Arming-means in fuzes; Safety means for preventing premature detonation of fuzes or charges operated by flow of fluent material, e.g. shot, fluids operated by fluidic oscillators; operated by dynamic fluid pressure, e.g. ram-air operated
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05DINDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
    • F05D2260/00Function
    • F05D2260/99Ignition, e.g. ignition by warming up of fuel or oxidizer in a resonant acoustic cavity

Definitions

  • ABSTRACT [62] Division of 369,487 An actuating mechanism in which a source of fluid is directed against an end wall ofa rigid body portion hav- (521 U.S. Cl. 89/1 B, 102/497 ing an open Cavity formed therein to create Pressure [5 l] lqlii. Cl F4 1/04 waves offluid which pass through the length of the [58] held of Search 89/1 7; 42/1; ity to the closed end thereof to cause a temperature rise 102/81 at the closed end. This temperature rise is utilized to ignite an explosive device which, in turn, is utilized to [56] References Cited accomplish work,
  • This invention relates to an actuating mechanism and, more particularly, to such a mechanism utilizing a fluidic device to produce thermal energy.
  • actuating mechanisms employ electrical devices, such as spark gaps or resistance wires, which require electrical inputs.
  • the igniter for an oil burner in a home heating system uses a high voltage spark gap.
  • pyrotechnic devices are used and the igniter thereof is energized by a hot resistance wire.
  • explosive-actuated valves as well as solid grain hot gas generators, normally utilize an electrical initiated squib or exploding bridge to trigger the explosive charge.
  • false triggering can be induced by lightning, static electricity, radio frequency interference, nuclear radiation, etc.
  • the actuating mechanism of the present invention comprises a rigid body portion having a cavity formed therein, said cav ity having an open end and a closed end, means to direct a source of fluid against an end wall of said body portion and toward said open end to create pressure waves of fluid which pass through. the length of said cavity to said closed end. to cause a temperature rise at said closed end, and means responsive to said temperature rise for accomplishing work.
  • FIG. 1 is a cross-sectional view depicting the actuating mechanism of the present invention used in conjunction with a valve
  • FIG. 2 is a view similar to FIG. 1 but showing the actuating mechanism of the present invention used in conjunction with a hot gas generator.
  • the reference numeral refers to a housing in which a nozzle 12 is formed having an internally threaded entrance 14 adapted to accommodate a corresponding externally threaded tube or the like (not shown) for the introduction of pressurized fluid, such as gas, into the nozzle in the direction indicated by the arrow.
  • the exit end of the nozzle 12 converges as shown, and communicates with an opening 16 formed in the housing 10.
  • a tubular resonance cavity 18 is formed in a rigid body portion 19 of the housing 10, and the entrance to the cavity 18 communicates with the opening 16.
  • the other end of the cavity 18 is closed by a pyrotechnic explosive 20, in the form of a lead azide, or other similar material, which is adapted to ignite upon the latter end portion of the cavity 18 reaching a. certain temperature, as will be explained in detail later.
  • An additional housing 21 is provided which has one end threadably engaging an end of the housing 10, and two chambers 22 and 24 formed therein.
  • a piston 26 is reciprocally mounted in the chamber 22 with the stem of the piston slideably extending through a partition 28 formed through the housing 21 and into the chamber 24.
  • a guillotine 30 is formed on the other end of the stem in the chamber 24 and is disposed in proximity to a diaphragm 32 extending across the chamber 24 and adapted to prevent flow of an additional fluid through the chamber 24 from an inlet port 34 to an outlet port 36.
  • pressurized fluid such as gas
  • pressurized fluid such as gas
  • the nozzle 12 flows outwardly therefrom into the opening 16 in the direction indicated by the arrows, whereby a small portion enters the cavity 18 and the remaining portion impinges upon the front wall of the body portion 19 and exits from the system in a direction at right angles to the direction of flow into the cavity 18.
  • the cavity fills up and the entire flow impinges off of the wall and exits from the housing. In this manner an unstable wave will be formed at the entrance to the cavity 18, which wave oscillates back and forth and causes small pressure waves to travel the length of the cavity 18 and compress the gas trapped at the closed end thereof, thus.
  • a housing is provided which is identical to the housing 1 0 of the embodiment of FIG. 1 and therefore will not be described in detail.
  • a pyrotechnic explosive 20 closes the exit end of the cavity 18' formed in the housing 10.
  • an additional housing is provided.
  • the propellant 40 is threadably engaged to an end of the housing It), and houses a solid grain propellant 42 which may be in the form of an ammonium perchlorate.
  • the propellant 42 is cast in the form of a tube havinga hollow portion 44 and is adapted to be ignited by the thermal energy created by the explosive charge 20, to produce a hot gas.
  • the thermal energy created ignites the solid grain propellant 42, and generates the hot gas which passes from the housing 40 through an outlet port 46.
  • the pressure of the hollow portion 44 in the propellant 42 aids in the distribution of the thermal energy to the propellant 42 and in the flowing of the hot gas to the outlet port 46.
  • the hot gas thus created may be used for many applications, such as to ignite a rocket engine, etc.
  • the flow from the nozzle 12 can be supersonic, in which case the wave created at the entrance to the cavity 18 will be a shock wave.
  • the cavity 18 has been shown with a cylindrical cross section, it is understood that it can take other configurations such as rectangular, conical, etc.
  • various alternate configurations of the nozzle 12 may be employed such as a convergent-divergent type, and various stagings of the flow of the gas can be utilized.
  • An actuating mechanism comprising a rigid body portion having a cavity formed therein, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, means for accomplishing work comprising an explosive charge in heat exchange relation with said closed end, said temperature rise causing said explosive charge to ignite, a chamber in which said explosive charge is disposed, and a piston mounted in said chamber and adapted to move axially in said chamber in response to the thermal energy created by said ignition, an additional chamber having an inlet port and an outlet port for an additional fluid, a portion of said piston adapted tomove in said additional chamber in response to said ignition, and a diaphragm extending across said additional chamber and normally preventing the flow of said additional fluid through said additional chamber, said piston including means to sever said diaphragm upon said movement in said additional chamber to permit flow of said additional fluid through said additional chamber.
  • An actuating mechanism which comprises a first rigid body portion having a longitudinal axis and having a first cavity formed therein coaxially therewith, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said first body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, wherein said means to direct a source of fluid against the wall of said first rigid body portion includes a second rigid body portion fixedly connected to said first rigid body portion, said second rigid body portion having a longitudinal passage connected to said cavity coaxially therewith, said second rigid body portion having a transverse passage connected to said Iongitudinal passage and to said cavity and extending transverse to said longitudinal passage, said second rigid body portion having a radially outer surface, said longitudinal passage having a converging end portion having an outlet opening, said outlet opening facing said cavity open end coaxially therewith, said transverse passage having a radially inner inlet end disposed adjacent said cavity open

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Drilling And Exploitation, And Mining Machines And Methods (AREA)

Abstract

An actuating mechanism in which a source of fluid is directed against an end wall of a rigid body portion having an open cavity formed therein to create pressure waves of fluid which pass through the length of the cavity to the closed end thereof to cause a temperature rise at the closed end. This temperature rise is utilized to ignite an explosive device which, in turn, is utilized to accomplish work.

Description

United. States Patent Rakowsky Nov. 6, 1973 ACTUATING MECHANISM 3,302,319 2/1967 Rosselet 39 7 75 Inventor: Edward L. Rakowsky, Kinnelon, jfjgg "g g 2 [73] Assigneez The Singer Company, New York, Primary Examiner samuel w. Engle N.Y.
Attorney-S. A. Glarrantana et al. [22] Filed: Nov. 16, 1971 [21] Appl, No.: 199,390
Related U.S. Application Data [57] ABSTRACT [62] Division of 369,487 An actuating mechanism in which a source of fluid is directed against an end wall ofa rigid body portion hav- (521 U.S. Cl. 89/1 B, 102/497 ing an open Cavity formed therein to create Pressure [5 l] lqlii. Cl F4 1/04 waves offluid which pass through the length of the [58] held of Search 89/1 7; 42/1; ity to the closed end thereof to cause a temperature rise 102/81 at the closed end. This temperature rise is utilized to ignite an explosive device which, in turn, is utilized to [56] References Cited accomplish work,
UNITED STATES PATENTS 2,773,448 l2/l956 Jasse [OZ/49.7 X 2 Claims, 2 Drawing Figures 2/ M v or W7 A 26 1 25 /A I; 32
1\ \i\\\ We l9 22 4 ACTUATING MECHANISM This is a division of US. Pat. application Ser. No. 869,487, filed Oct. 27, 1969, now US. Pat. No. 3,630,150.
BACKGROUND OF THE INVENTION The invention herein described was made in the course of or under a contract or subcontract thereunder, with the Department of the Army.
This invention relates to an actuating mechanism and, more particularly, to such a mechanism utilizing a fluidic device to produce thermal energy.
Many existing actuating mechanisms employ electrical devices, such as spark gaps or resistance wires, which require electrical inputs. For example, the igniter for an oil burner in a home heating system uses a high voltage spark gap. Also, on many aerospace and ordinance systems it is desirable to initiate operations from a remote location, in which case pyrotechnic devices are used and the igniter thereof is energized by a hot resistance wire. Further, explosive-actuated valves, as well as solid grain hot gas generators, normally utilize an electrical initiated squib or exploding bridge to trigger the explosive charge. However, due to the low power consumption of the electrical igniter in these devices, false triggering can be induced by lightning, static electricity, radio frequency interference, nuclear radiation, etc.
SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide an actuating mechanism which is free from electrical components and connections, and which therefore eliminates the above disadvantages associated with an electrical actuating mechanism.
Toward the fulfillment of this object, the actuating mechanism of the present invention comprises a rigid body portion having a cavity formed therein, said cav ity having an open end and a closed end, means to direct a source of fluid against an end wall of said body portion and toward said open end to create pressure waves of fluid which pass through. the length of said cavity to said closed end. to cause a temperature rise at said closed end, and means responsive to said temperature rise for accomplishing work.
BRIEF DESCRIPTION OF THE DRAWINGS Reference is now made to the accompanying drawings for a better understanding of the nature and objects of the present invention. The drawings illustrate the best mode presently contemplated for carrying out the objects ofthe invention and are not to be construed as restrictions or limitations on its scope. In the drawings:
FIG. 1 is a cross-sectional view depicting the actuating mechanism of the present invention used in conjunction with a valve; and
FIG. 2 is a view similar to FIG. 1 but showing the actuating mechanism of the present invention used in conjunction with a hot gas generator.
DESCRIPTION OF THE PREFERRED EMBODIMENTS Referring specifically to the embodiment of FIG. 1, the reference numeral refers to a housing in which a nozzle 12 is formed having an internally threaded entrance 14 adapted to accommodate a corresponding externally threaded tube or the like (not shown) for the introduction of pressurized fluid, such as gas, into the nozzle in the direction indicated by the arrow. The exit end of the nozzle 12 converges as shown, and communicates with an opening 16 formed in the housing 10.
A tubular resonance cavity 18 is formed in a rigid body portion 19 of the housing 10, and the entrance to the cavity 18 communicates with the opening 16. The other end of the cavity 18 is closed by a pyrotechnic explosive 20, in the form of a lead azide, or other similar material, which is adapted to ignite upon the latter end portion of the cavity 18 reaching a. certain temperature, as will be explained in detail later.
An additional housing 21 is provided which has one end threadably engaging an end of the housing 10, and two chambers 22 and 24 formed therein. A piston 26 is reciprocally mounted in the chamber 22 with the stem of the piston slideably extending through a partition 28 formed through the housing 21 and into the chamber 24. A guillotine 30 is formed on the other end of the stem in the chamber 24 and is disposed in proximity to a diaphragm 32 extending across the chamber 24 and adapted to prevent flow of an additional fluid through the chamber 24 from an inlet port 34 to an outlet port 36.
In operation, pressurized fluid, such as gas, is introduced into the nozzle 12 and flows outwardly therefrom into the opening 16 in the direction indicated by the arrows, whereby a small portion enters the cavity 18 and the remaining portion impinges upon the front wall of the body portion 19 and exits from the system in a direction at right angles to the direction of flow into the cavity 18. After a very short time the cavity fills up and the entire flow impinges off of the wall and exits from the housing. In this manner an unstable wave will be formed at the entrance to the cavity 18, which wave oscillates back and forth and causes small pressure waves to travel the length of the cavity 18 and compress the gas trapped at the closed end thereof, thus.
adding energy to the gas at every cycle of oscillation. Accumulation of this energy input. per cycle causes the temperature at the closed end of the cavity 18 to rise appreciably to a point whereby it ignites the explosive The thermal energy thus created drives the piston 26 in a direction from left to right as viewed in FIG. 1, and causes the guillotine 30 to sever the diaphragm 32 and thus permit flow of the additional fluid from the inlet port 34 through the chamber 24 and out the outlet port 36.
It is thus seen that an effective valve is formed in the chamber 24 which is actuated by gas flow into the nozzle 12, while all electrical components' and connections are eliminated.
in the embodiment of FIG. 2, a housing is provided which is identical to the housing 1 0 of the embodiment of FIG. 1 and therefore will not be described in detail. As in the previous embodiment, a pyrotechnic explosive 20 closes the exit end of the cavity 18' formed in the housing 10.
According to this embodiment, an additional housing.
40 is threadably engaged to an end of the housing It), and houses a solid grain propellant 42 which may be in the form of an ammonium perchlorate. The propellant 42 is cast in the form of a tube havinga hollow portion 44 and is adapted to be ignited by the thermal energy created by the explosive charge 20, to produce a hot gas. In this manner, upon the temperature at the closed end of the cavity 18 reaching a temperature sufficient to ignite the explosive charge 20, the thermal energy created ignites the solid grain propellant 42, and generates the hot gas which passes from the housing 40 through an outlet port 46. The pressure of the hollow portion 44 in the propellant 42 aids in the distribution of the thermal energy to the propellant 42 and in the flowing of the hot gas to the outlet port 46. The hot gas thus created may be used for many applications, such as to ignite a rocket engine, etc.
It is noted that, in each embodiment, the flow from the nozzle 12 can be supersonic, in which case the wave created at the entrance to the cavity 18 will be a shock wave.
it is thus seen that, by use of the actuating mechanism of the present invention, electrical inductions and other cross coupling inputs from an adverse environment are eliminated, as well as the cost and vulnerability of sparkgaps to outside weather environments. Also, since high pressured air is normally readily available, the mechanism is relatively inexpensive in operation.
It can be appreciated that several variations in the above embodiments are possible without departing from the scope of the invention. For example, although the cavity 18 has been shown with a cylindrical cross section, it is understood that it can take other configurations such as rectangular, conical, etc. Also, various alternate configurations of the nozzle 12 may be employed such as a convergent-divergent type, and various stagings of the flow of the gas can be utilized.
Of course, other variations of the specific construction and arrangement of the mechanism disclosed above can be made by those skilled in the art without departing from the invention as defined in the appended claims.
I claim:
1. An actuating mechanism comprising a rigid body portion having a cavity formed therein, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, means for accomplishing work comprising an explosive charge in heat exchange relation with said closed end, said temperature rise causing said explosive charge to ignite, a chamber in which said explosive charge is disposed, and a piston mounted in said chamber and adapted to move axially in said chamber in response to the thermal energy created by said ignition, an additional chamber having an inlet port and an outlet port for an additional fluid, a portion of said piston adapted tomove in said additional chamber in response to said ignition, and a diaphragm extending across said additional chamber and normally preventing the flow of said additional fluid through said additional chamber, said piston including means to sever said diaphragm upon said movement in said additional chamber to permit flow of said additional fluid through said additional chamber.
2. An actuating mechanism which comprises a first rigid body portion having a longitudinal axis and having a first cavity formed therein coaxially therewith, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said first body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, wherein said means to direct a source of fluid against the wall of said first rigid body portion includes a second rigid body portion fixedly connected to said first rigid body portion, said second rigid body portion having a longitudinal passage connected to said cavity coaxially therewith, said second rigid body portion having a transverse passage connected to said Iongitudinal passage and to said cavity and extending transverse to said longitudinal passage, said second rigid body portion having a radially outer surface, said longitudinal passage having a converging end portion having an outlet opening, said outlet opening facing said cavity open end coaxially therewith, said transverse passage having a radially inner inlet end disposed adjacent said cavity open end and having a radially outer outlet end having a vent opening extending through said exterior surface, means comprising an explosive charge in heat exchange relation with said closed end, said temperature rise causing said explosive charge to ignite, and means for accomplishing work which comprises a housing fixedly connected to said first rigid body portion, said housing having a second cavity adjacent to said explosive charge, said cavity containing a tube of propellant, said tube having a third cavity adjacent to said explosive charge such that the thermal energy created by the ignition of said explosive charge is received in said third cavity and communicates with the inside wall of said tube of propellant to thereby ignite said propellant, said housing further including an outlet port said outlet port communicating with said third cavity, said outlet port channeling the hot gas developed by the ignition of said propellant tube to the outside of said mechanism.

Claims (2)

1. An actuating mechanism comprising a rigid body portion having a cavity formed therein, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, means for accomplishing work comprising an explosive charge in heat exchange relation with said closed end, said temperature rise causing said explosive charge to ignite, a chamber in which said explosive charge is disposed, and a piston mounted in said chamber and adapted to move axially in said chamber in response to the thermal energy created by said ignition, an additional chamber having an inlet port and an outlet port for an additional fluid, a portion of said piston adapted to move in said additional chamber in response to said ignition, and a diaphragm extending across said additional chamber and normally preventing the flow of said additional fluid through said additional chamber, said piston including means to sever said diaphragm upon said movement in said additional chamber to permit flow of said additional fluid through said additional chamber.
2. An actuating mechanism which comprises a first rigid body portion having a longitudinal axis and having a first cavity formed therein coaxially therewith, said cavity having an open end and a closed end, means to direct a source of fluid against a wall of said first body portion and towards said open end to create pressure waves of fluid which pass through the length of said cavity to said closed end to cause a temperature rise at said closed end, wherein said means to direct a source of fluid against the wall of said first rigid body portion includes a second rigid body portion fixedly connected to said first rigid body portion, said second rigid body portion having a longitudinal passage connected to said cavity coaxially therewith, said second rigid body portion having a transverse passage connected to said longitudinal passage and to said cavity and extending transverse to said longitudinal passage, said second rigid body portion having a radially outer surface, said longitudinal passage having a converging end portion having an outlet opening, said outlet opening facing said cavity open end coaxially therewith, said transverse passage having a radially inner inlet end disposed adjacent said cavity open end and having a radially outer outlet end having a vent opening extending through said exterior surface, means comprising an explosive charge in heat exchange relation with said closed end, said temperature rise causing said explosive charge to ignite, and means for accompliShing work which comprises a housing fixedly connected to said first rigid body portion, said housing having a second cavity adjacent to said explosive charge, said cavity containing a tube of propellant, said tube having a third cavity adjacent to said explosive charge such that the thermal energy created by the ignition of said explosive charge is received in said third cavity and communicates with the inside wall of said tube of propellant to thereby ignite said propellant, said housing further including an outlet port said outlet port communicating with said third cavity, said outlet port channeling the hot gas developed by the ignition of said propellant tube to the outside of said mechanism.
US00199390A 1969-10-27 1971-11-16 Actuating mechanism Expired - Lifetime US3769875A (en)

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US19939071A 1971-11-16 1971-11-16

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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2499379A (en) * 1944-12-26 1950-03-07 Garrett Emil Grenade thrower
US2773448A (en) * 1954-01-21 1956-12-11 Brandt Soc Nouv Ets Rocket projectile
US3302523A (en) * 1961-05-03 1967-02-07 Daisy Mfg Co Air operated projectile firing apparatus
US3302319A (en) * 1964-04-22 1967-02-07 Corat S A Cie De Rech S Et D A Devices for firing objects of the class of projectiles, plugs, pins and nails

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2499379A (en) * 1944-12-26 1950-03-07 Garrett Emil Grenade thrower
US2773448A (en) * 1954-01-21 1956-12-11 Brandt Soc Nouv Ets Rocket projectile
US3302523A (en) * 1961-05-03 1967-02-07 Daisy Mfg Co Air operated projectile firing apparatus
US3302319A (en) * 1964-04-22 1967-02-07 Corat S A Cie De Rech S Et D A Devices for firing objects of the class of projectiles, plugs, pins and nails

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