Claims
- 1. A system for safe, precise laying of line and retrieval of objects between a launch point and a remote-spaced target zone including a launcher, a launchable tethered dart element, said system comprising:
(a) a portable launcher housing fitted with an enclosed, compressible coil spring, said housing having proximal handle and distal barrel portions; (b) said coils of said spring lying within a generally cylindrical exterior, said spring having opposed proximal and distal ends and further having free and compressed states, said spring retained within said launcher to maintain its axis, in either free or compressed state, substantially aligned with axis of said distal barrel portion; (c) said handle portion interior provided with a plurality of close-fitting stabilizer guide ribs spaced about said spring, all projecting inward and terminating toward the axis of said barrel portion, all terminating in a rounded end portion and extending longitudinally toward said barrel portion, said longitudinal orientation being substantially in a direction parallel to the axis of said barrel portion, said rounded surfaces of said end portions of said ribs all falling substantially tangent to a cylindrical surface which lies spaced apart from said spring coils and whose axis corresponds approximately to the axis of said barrel portion, whereby said spaced-apart stabilizer guide ribs provide oriented, low-friction lateral support to exterior of said spring during axial motions of the same; (d) said handle portion interior further provided with a pivoting release element, whereby said release element supports and retains said spring during compression and provides a lever for releasing said spring being held in said compressed state, said release element further provided with:
(d1) a pivot point whereby said release element is pivotingly attached to said housing portion, whereby said release element is allowed to rotate over a predefined angular range, (d2) a proximal arm provided with a coupler to retain said proximal end of said spring linked to said release element, whereby said spring remains connected during movements of said spring and said release element, (d3) a distal arm provided with an engagement feature, whereby said feature may engage a transverse flange on said dart element, and (d4) a trigger projection, whereby force may be applied to rotate said release element and thereby release said spring being held in said compressed state with resultant launching of said dart element; (e) said handle portion further provided with at least one pivot mounting device to engage said release element pivot point, whereby a fixed axis of rotation and attachment is established for said pivoting release element relative to axis of said spring and axis of said barrel; (f) said barrel portion interior provided with a plurality of close-fitting projectile guide ribs spaced about said dart element, all projecting inward and terminating toward the axis of said barrel portion, all terminating in a rounded end portion and extending longitudinally toward muzzle end of said barrel portion, said longitudinal orientation being substantially in a direction parallel to the axis of said barrel portion, said rounded surfaces of said end portions of said ribs all falling substantially tangent to a cylindrical surface which lies spaced apart from said dart element and whose axis corresponds approximately to the axis of said barrel portion, whereby said spaced-apart projectile guide ribs provide accurate, low-friction guidance to a said dart being launched therethrough; (g) a removable, stiff, elongated, tethered dart element having proximal and distal ends, said proximal end adapted to engage said spring distal end, whereby upon application of axial force to said distal end during insertion of said dart element into said barrel muzzle causes compression of said spring,
(g1) said dart element being provided with one or more transverse flanges adjacent its proximal end which are engageable with said release element proximal arm, whereby said spring may be held in a compressed state against a dart element loaded into a launch-ready state, (g2) said dart element being attached at its proximal end to a length of flexible tether line which is greater in length than said remote spacing distance, whereby said dart element may be retrieved, (g3) said external surface of said dart element being provided with one or more longitudinal recesses between said engagement flange and its distal end, said recesses being appropriate in size and shape to protect a length of tether laid therein prior to dart insertion, whereby said tether line is protected from interference with internal features of said barrel portion during movements of dart element within said projectile guide ribs; (h) a length of light, flexible tether line having proximal and distal ends, sufficiently long to reach said remote target from said launch point and having sufficient strength to retrieve said dart element and a small object, wire or cable attached thereto, wherein,
(h1) said length of tether line is provided from a supply reservoir external to said barrel portion, whereby line can be freely and rapidly played out under low tension after launch of said dart element, (h2) distal end of said tether line is attached to proximal end of said dart element, whereby the same may be retrieved, (h3) said tether line portion immediately adjacent said dart element attachment point being located within said longitudinal recesses of said dart element between said proximal attachment point and muzzle of said barrel portion, whereby said tether line portion is protected during movements of said dart element within said barrel portion and easily removed therefrom without substantial resistive forces when said launched dart element leaves said barrel portion, and (h4) proximal end of said tether line being fixed to a point adjacent said launcher, whereby said dart element and an object attached thereto may be retrieved by application of tension to said tether line.
- 2. The system of claim 1 wherein,
(a) said compression spring rate (K30) is in the range 0.2-2 N/mm,
(a1) said compression spring free length (L30) is in range 50-224 mm; (b) said elongated dart element has a central-zone length-to-diameter ratio, as defined by (L2)/(D1), in the range 4-16; (c) said projectile guides and said dart element transverse flange(s) are sized to provide alignment of said dart axis with said barrel axis to an angle within the range 0.01-0.05 deg.; (e) said target-spacing distance and tether line length are both in range 3-25 m, (f) said barrel-housing is provided with an additional, releasable safety latch mechanism whereby accidental release of the compressed spring and dart is prevented by mechanical interference between said safety latch and said pivoting lever, and (g) said tether line supply reservoir is selected from the group consisting of: an open-top container containing tether line is laid loose therein, a specific geometric arrangement consisting of: a loose array of said tether line positioned for easy play out from an adjacent surface and a known fishing-line reel, wherein
(g1) said fishing line reel is selected from the group consisting of: open spinning type, closed spinning type and bait-casting type; and further wherein,
(g2) said fishing-line reel is mounted external to and below said barrel portion.
- 3. The system of claim 2 wherein
(h) said launcher is additionally provided with a tiltable, external aiming device mounted in a socket external to said housing portion and capable of defining a line of sight between said launcher and said target zone, whereby said aiming device allows for adjusting the angle between said line of sight and said dart element axis thus providing for accurate targeting, said aiming device comprising:
an integrated mounting post adapted to engage a mounting socket located generally on top of said housing portion, whereby one said aiming device may be removed and another type mounted in its place, wherein, said aiming device is selected from the group consisting of: a simple optical view finder, an optical range finder and a beam generator, and wherein, said beam generator is selected from the group consisting of: visible laser, simple flashlight and focussing flashlight, and wherein, said fishing line reel is a known spinning-type fishing line reel mounted so that its spool axis lies parallel to and below said barrel axis.
- 4. The system of claim 2 wherein:
(a) said fishing line reel is a known spinning reel mounted so that its spool axis lies parallel to and below said barrel axis; (b) said aiming device is an optical view finder adapted to accept a removable, known focussable flashlight whereby an aiming beam, downrange illumination and general visualization of said target area is provided; (c) said tether line is synthetic polymer in one of the following known forms: monofilament, braided multifilament and twisted multifilament, wherein
(c1) said synthetic polymer is further provided with one or more known enhanced-visibility agents which alter the perceived color of said tether line to the human eye at low light levels and is selected from the group consisting of: coated with a durable film of such agents, surface treated with agents and blended with agents, wherein (c3) said humanly-perceived color is selected from the group consisting of: white, yellow, orange, red and green, and wherein (c4) said known enhanced-visibility agents for surface treating or blending are one or more of: a phosphorescent substance, fluorescent substance and a luminescent substance; and (d) said dart element includes one or more detection enhancements are selected from the group consisting of: surface features for enhanced visibility to humans in low light levels, integrated known electromagnetic signaling devices, integrated known dynamic flight-path tracer devices and integrated known position markers, wherein,
(d1) said surface features for enhanced human visibility are selected from the group consisting of: phosphorescent features, fluorescent features, luminescent features, reflective patches, a high-visibility surface color, high-visibility surface color-patterns, and highly-reflective patches, (d2) said integrated position markers are selected from the group consisting of: integrated permanent magnets, integrated emitter of high-energy particles, integrated emitter of visible light and integrated emitter of humanly-perceived vibratory-acoustic signals.
- 5. The system of claim 3 wherein:
(a) said aiming device is an optical view finder adapted to accept a removable, known focussable flashlight whereby an aiming beam, downrange illumination and general visualization of said target area is provided; (b) said tether line is synthetic polymer in one of the following known forms: monofilament, braided multifilament and twisted multifilament,
(b1) said synthetic polymer is further provided with one or more known enhanced-visibility agents which alter the perceived color of said tether line to the human eye at low light levels and is selected from the group consisting of: coated with a durable film of such agents, surface treated with agents and blended with agents, wherein (b3) said humanly-perceived color is selected from the group consisting of: white, yellow, orange, red and green, (b4) said known enhanced-visibility agents for surface treating or blending are one or more of: a phosphorescent substance, fluorescent substance and a luminescent substance; and (c) said dart element includes one or more detection enhancements selected from the group consisting of: surface features for enhanced visibility to humans in low light levels, integrated known electromagnetic signaling devices, integrated known dynamic flight-path tracer devices and integrated known position markers, wherein,
(c1) said surface features for enhanced human visibility are selected from the group consisting of: phosphorescent features, fluorescent features, luminescent features, reflective patches, a high-visibility surface color, high-visibility surface color-patterns, and highly-reflective patches, (c2) said integrated position markers are selected from the group consisting of: integrated permanent magnets, integrated emitter of high-energy particles, integrated emitter of visible light and integrated emitter of humanly-perceived vibratory-acoustic signals.
- 6. The system of claim 4 wherein
(a) pivot axis location of said pivoting release element is in a quadrant selected from the group consisting of: 3 and 4, (b) said pivoting attachment fitting of claim 1(d1), whereby said release element and said handle portion are connected, is selected from the group consisting of:
(b1) a removable, treaded metal fastener extending through the both said handle portion and said release element, (b2) a fixed, non-removable metal fastener extending through the both said handle portion and said release element and (b3) a trunnion attached to and extending from said release element and into mating holes in said handle portion, wherein (c) said trunnion material is selected from the group consisting of: molded-polymer formed integral with said release element, metal fastener insert-molded into said release element and metal fastener attached to said release element after molding, and (d) distal tip coils of said coil spring are formed to a known configuration selected from the group consisting of: cut, flattened and ground.
- 7. The system of claim 6 wherein
said formed distal tip of said coil spring is additionally fitted with a fixed insert adapted to matingly engage proximal tip of said dart element, said insert comprising:
(e) a threaded internal plug shaped to engage one or more end coils and provided with a concave distal tip, whereby said dart element proximal tip is reliably centered upon axis of said coil spring during insertion and compression thereof, wherein
(f) said plug is prepared from a known strong, low-density material selected from the group consisting of: polymers, metals and ceramics.
- 8. The system of claim 7 wherein
(g) said launcher is additionally provided with a tiltable, external aiming device mounted in a socket external to said housing portion and capable of defining a line of sight between said launcher and said target zone, whereby said aiming device allows for adjusting the angle between said line of sight and said dart element axis thus providing for accurate targeting, said aiming device comprising:
a integrated mounting post adapted to engage a mounting socket located generally on top of said housing portion, whereby one said aiming device may be removed and another type mounted in its place, wherein said aiming device is selected from the group consisting of: a simple optical view finder, an optical range finder and a beam generator, and wherein, said beam generator is selected from the group consisting of: visible laser, simple flashlight and focussing flashlight.
- 9. A method for safe, precise laying of cable, wire or filament between a launching point and a remote-spaced target zone including the following steps:
(1) providing a portable launcher at said launch point having: a retained compressible power spring, a set of stabilizer guide ribs surrounding said spring, a pivoting spring support release element including a trigger element for releasing said spring from its compressed state retainingly linked to proximal end of said spring, a barrel-housing assembly including a pivot-type mounting for said release element and a set of barrel guide ribs in bore of said barrel portion, said barrel guide ribs oriented in a barrel-axial direction and adapted to provide accurate guidance to a dart element being launched; (2) providing a removable, stiff, elongated, tethered dart element having opposed proximal and distal ends, a plurality of surface-connected recesses extending generally axially and at least one transverse flange spaced apart from said proximal end and adapted to compress said power spring during its insertion into said barrel muzzle of said launcher and to pass accurately along the axis of said barrel guides with minimal frictional resistance upon release of said spring, said dart element being attached at its proximal end to a length of unwindable, flexible tether line which is greater in length than said remote spacing distance, attached to and freely-displaceable from a known fishing-line reel attached to said launcher, said tether line having sufficient tensile strength to transmit forces needed to pull said cable between said point and target zone; (3) inserting proximal end of said dart element into muzzle of said barrel until said spring is compressed to the selected degree and said spring-release element engages prepared mating portion of said dart element, taking care during said insertion step to lay said tether closely alongside said dart in available surface recesses thereof, whereby mechanical energy is stored into said spring for later release and the length of tether line inside said barrel is positioned in said dart element surface recesses to prevent interference during the release process; (4) establishing an optimal pointing direction using known aiming technics to orient said barrel axis, taking care to adjust the angle between said pointing direction and said barrel axis to achieve compensation for target distance, resistance due to tether line and the selected degree of spring compression, whereby a accurate targeted trajectory of said tethered dart toward said target is defined; (5) applying sufficient force to said trigger to rotate said release element thereby to release energy stored in said spring, thereupon launching said dart which tows said connected tether line toward said target zone; (6) attaching said dart, after its arrival at the target zone, to said cable, wire or filament to be pulled and (7) recovering said tether line with said attached cable, wire or filament toward said launch site with said reel, whereby said tether line is rewound on said reel and said cable, wire or filament is laid between said launch point and said target.
- 10. The method of claim 9 wherein
(A) providing of step 1 is supplemented by additional steps comprising:
(A1) providing said launcher further with an attached, adjustable aiming device capable of defining a line of sight between said launcher and said target zone with provision for dart trajectory control according to vertical level differences between launcher and target zone, said length of the line of sight and tether and/or spring properties; (A2) providing said launcher further with an additional, releasable, 2-position trigger latch for said launcher which may be set into a “latched” state immediately upon insertion of said dart element and subsequently set into “released” state immediately prior to trigger release; and (B) providing of step 2. is supplemented by additional steps comprising:
(B1) providing distal tip of said dart element with a quick-attach element whereby cable or wire can be rapidly and securely fastened for pulling, said quick-attach element being selected from the group consisting of:
(B1a) an open-loop eye with an opening defined by (D6) in the range 7-19 mm, (B1b) an open-loop eye with an opening defined by (D6) in the range 7-19 mm, including a transverse pin across said opening, and (B1c) an open-loop eye with an opening defined by (D6) in the range 7-19 mm, including a transverse bar across said opening, said external surfaces of said eye loop formed with a high-friction texture; (B2) providing and connecting a substitute customized dart element with tailored physical attributes, said customized structure selected from the group consisting of:
(B2a) an integrated ballast weight attached onto or embedded within said dart element, said ballast having sufficient mass to displace dart's center of gravity significantly, whereby said ballast moves said dart's center of mass toward its distal tip, (B2b) a dart element prepared from a selected, known material having high density for the purpose of increasing its total mass, whereby more momentum can be stored than is possible with a lighter version, (B2c) a dart element assembled from selected components of differing density, whereby both its total mass and center of mass may be independently customized, and (B2d) a dart element prepared with a larger length: diameter ratio defined by (L2)/(D1), whereby its total mass and center of mass may be independently customized; (B3) providing and connecting a substitute, customized replacement line spool for said reel, said spool provided with a sufficient length of tether line having custom physical properties selected from the group consisting of:
(B3a) custom line diameter, whereby strength, stiffness and air resistance may be customized, (B3b) custom Tex or mass/unit length, whereby lower Tex values may increase range, (B3c) custom tensile strength, creep resistance and spool-set resistance resulting from known upgraded polymer formulations and known special mechanical treatments, whereby higher strength will provide for transmission of larger pull force, (B3d) custom line elasticity resulting from known advanced materials and other known line treatments, whereby increased values of the tensile modulus will provide for reduced plastic extension under higher pull loads, and (B3e) custom surface finish on said tether line, said custom finish selected from the group consisting of:
(B3e1) post-extrusion drawing and smoothing, using known methods, of monofilament, and (B3e2) coating or impregnating said tether line surface with a known surface lubricant, whereby said tether line experiences lower sliding friction against solid surfaces, and (B4) providing and connecting a substitute, customized replacement line spool for said reel, said spool provided with a sufficient length of tether line having known custom visualization surface coatings or treatment selected from the group consisting of: phosphorescent, fluorescent and luminescent emitters responsive to an illumination beam; (B5) providing and connecting a substitute customized dart element with tailored, distinctive visualization attributes formed onto or attached to external surface thereof, said customized visualization features selected from the group consisting of phosphorescent, fluorescent and luminescent markers responsive to an illumination beam; (C) establishing of step 4. is supplanted by one or more replacement steps selected from the group consisting of:
(C1) instead of said pointing defined in step 4, establishing a line of sight between said remote target zone using said aiming device defined in step A1(above), taking care to adjust the angle between said sight line and said barrel axis to achieve compensation for target distance and the selected degree of spring compression, whereby the flight trajectory of said tethered dart is defined; and (C2) in case of defective trajectory from said step C1, fire and recover an additional test shot to confirm initial estimated-settings of aiming device and reset any aiming corrections which may be needed; and (D) recovery and cable-pulling step 7 is divided into multiple steps comprising:
(D1) using mass of said launcher, hanging pendant and applying force to said attached cable, to accomplish a pull length of about 1 m, (D2) recovering sufficient tether line into said reel to position said reel again to a location from which it is able to repeat the pendant pull of step D1, (D3) after determining whether said pendant launcher is sufficient to pull the cable depending therefrom, providing as needed, adequate and repeated additional coaxing forces and displacements to said cable being pulled from said target zone, whereby said cable may be pulled by one person across a suspended ceiling or advanced past obstructions not able to be surpassed otherwise.
- 11. The method of claim 9 wherein
said provided dart element of step 2 is further provided with features which enhance the visibility thereof to a human eye in low light levels selected from known enhancements selected from the group consisting of known: light-emitting sources, light-reflecting zones, and light-responsive zones, and said attached tether line of step 2 is further provided with features which enhance the visibility thereof to a human eye in low light levels selected from the group of known enhancement consisting of known: light-emitting sources, light-reflecting zones, and light-responsive zones.
- 12. The method of claim 9 wherein
said provided dart element of step 2 is further provided with features which enhance its velocity, range and accuracy selected from enhancements consisting of:
adding concentrated ballast weights internal or external to said dart element, providing alternative substitute dart elements, each prepared of a single material, but each having a different specific gravity in the range 3-10, and preparing said dart element by assembling components made of materials with different specific gravity values, whereby total mass and center of mass thereof may be independently controlled, said attached tether line of step 2 further delivers enhanced levels of known properties selected from the group consisting of: increased elastic modulus, increased strength, reduced thermal expansion coefficient, smoother surface, increased resistance to creep, increased resistance to taking a spool set and increased ratio of strength: mass per unit length, whereby air resistance can be reduced.
- 13. A apparatus for safe, precise laying of line between a launch site and a remote-spaced target zone comprising:
a portable dart launcher having housing and barrel portions, fitted with a coil-type internal coil spring having compressed and free states, whereby a dart element is propelled accurately toward said target zone, said interior housing portion including a plurality of spring-guides, said spring guides oriented substantially parallel to axis of said barrel portion, a pivoting release element with a trigger extension, said housing portion further including a fixed pivot mounting for said release element, said spring support element coupled mechanically to said spring, said barrel portion interior including a plurality of dart guides oriented in a direction generally parallel to axis thereof and adapted to provide accurate guidance to said dart element being launched therethrough, said dart element being a removable, stiff, elongated, tethered element adapted to engage and compress said spring during insertion thereof into said dart guides of said barrel portion and to pass accurately along the axis of said guides with minimal frictional resistance upon release of said spring, said dart element being attached at its proximal end to a length of unwindable, flexible tether which is greater in length than said remote spacing distance, an interchangeable, adjustable aiming device removably attached to said housing portion, said aiming device being capable of defining a line of sight between said barrel axis and said target zone whereby flight trajectory of said dart element is accurately controlled, said tether line being freely-displaceable from a known storage reel of sufficient capacity, efficiency and potency to store, deploy and rewind said tether line, said reel being removably attached to said housing-portion, whereby a dart element being held by said release element against said spring in a compressed state may be launched by application of sufficient force to said release trigger.
- 14. The apparatus of claim 13 further comprising:
said housing portion interior is fitted with a user-actuated sliding safety latch having “safe” and “off” positions and a projection engageable from exterior of said housing portion wherein said latch when in said “safe” position interacts mechanically with said release element when same is supporting said dart element against said spring in said compressed state and when in said “off” position allows said release element to pivot under application of force to said trigger, thereby to launch said dart element, said housing portion includes an external socket adapted to receive one or more interchangeable, adjustable aiming devices selected from the group consisting of: simple optical viewfinder, an optical rangefinder and a beam generator, wherein said beam generator is selected from the group consisting of: visible laser, simple flashlight and focusing flashlight, said housing portion having an external shape selected from the group consisting of: pistol configuration, rifle configuration, and non-firearm configuration, said housing portion including one or more known alternative mounting devices selected from the group consisting of: socket for attachment to a surface-standing tripod, C-clamp for mounting to neighboring structure and socket for magnetic attachment, said trigger extension is provided with coupling fittings for releasable attachment of a known remote triggering device which is adapted to provide sufficient force to release said trigger, wherein said remote device is selected from the group consisting of: extended pull cable, spring-drive mechanical actuator, air or pneumatic-drive actuator, electromagnetic actuator, radio-triggered actuator and optically-triggered actuator, tip of said barrel portion is reinforced by a bonded, external, one-piece muzzle collar band, and said collar band may be prepared with an integral external clip adapted to releasably store a spare dart element alongside said barrel.
- 15. A size-scaleable hand-held, line-laying device comprising:
a hand-grippable pistol body portion, a finger-actuatable trigger element, an elongated tube-like barrel extension having: a centerline axis, opposed breech and muzzle ends, said barrel tube extension provided with a plurality of separate, opposing, longitudinal barrel guides protruding inward relative to the bore thereof and extending along the length thereof, a separable, launchable dart element, a length of tether line connecting between said dart element and said pistol body, and a retained coil spring supported to be: (A) compressed during insertion of said dart element into said barrel muzzle end, (B) held in a compressed state ready to propel said dart element and (C) releasable by a torque force acting upon said trigger element, wherein,
a. inward orientation directions of said plurality of said opposed barrel guides, when viewed in a section plane perpendicular to said barrel tube bore axis, are selected from the group consisting of: all lying in radial directions, all lying in chordal directions of the interior of said barrel tube and lying in mixed chordal and radial directions, all said barrel guides further extending a distance toward said muzzle end thereof sufficient to enclose said uncompressed spring and substantially parallel to the centerline axis of said barrel-tube, b. said body-portion interior provides a pivot-type mounting for a U-shaped release lever which is rotatable between two predetermined travel limits while retaining and supporting a coil spring, c. said U-shaped release lever travel limits defining “armed” and “released” angular orientations relative to said barrel axis, d. said U-shaped release lever having first proximal and second distal, parallel, spaced-apart arms extending from ends thereof and connected by a base link, said release lever providing a pivoting support for a coil spring aligned generally with axis of said barrel, said arms both extending from the same side of said base link, said proximal arm mechanically coupled to retain said coil spring, e. said trigger element extending from said base link in a direction opposite to said parallel arms whereby application of torque thereto causes said release lever to rotate about said pivot point, said pivot point defined by a pivot axle rotatably connecting said release lever to said body portion, f. said coil spring having a spring rate in the range 500-1500 N/m and a length compression of approximately 50-150 mm, said first arm of release lever adapted to support and retain proximal end of said spring, g. said release lever having sufficient strength and deflection resistance to support and retain said coil spring and said dart element during spring compression to said “armed” orientation, h. said pivot point being positioned to permit said U-shaped release lever to pivot over an angular range of 0-5 deg. measured relative to axis of said barrel guides, li. said release lever pivot point being located in Quadrant 3 or Quadrant 4, as defined by polar coordinates relative to a reference point defined by the intersection of said barrel axis with said first proximal arm when said release lever is in said “released” orientation, j. said ejectable dart element being prepared with an overall length defined by L2+L3+L4, at least one transverse circular flange adjacent proximal end thereof of diameter D3, where L2 is in the range 86-217 mm, L3 is in the range 5-12 mm and L4 is in the range 21-52 mm and diameter D3 is scaled in the range in the range 1-2 times the OD of the free coil spring, D30.3, k. engagement surface of said at least one circular flange:
k1. lying generally in a plane perpendicular to axis of said dart element, and k2. being releasably engageable with surface of said second parallel arm of said pivoting release element, and k3. being spaced apart from proximal tip along axis of said dart element by a distance defined by L3 which is scaled in the range 1-2 times the OD of the free coil spring, D30.3, L. said barrel guides are adapted in size, shape and orientation to afford:
L1. a predetermined radial clearance with said flanges for a dart element centered upon the barrel axis and L2. line contact with said dart element flanges for a dart element not centered on the barrel axis, whereby intermittent and low-friction contacts with said guides provide sufficient angular guidance during travel thereof along said barrel to achieve a predetermined, post-launch flight trajectory, m. said body portion is provided with a two-position, releasable external safety latch, said latch mounted to said body portion so that in at least one of said positions it engages and retains said release lever against movement when said release lever is in its said “armed” orientation, said latch being moveable to an opposite non-engaging position which allows full pivoting of said release lever, n. said body portion is also provided with a support socket for a detachable, known spinning reel attached adjacent said muzzle end of said barrel, said reel being adapted to hold, release and rewind said tether line, o. said tether line is an extended length of flexible line of sufficient length, breaking strength and suppleness to assure retention of said dart element, whereby said tether line can be laid accurately and forcefully from said reel toward a selected remote target zone by pointing said pistol barrel tube toward said zone and ejecting a loaded dart element, whereby a separate length of cable may then be attached at said target zone to either: the distal end of said tethered dart element or distal end of said tether line at the end of its trajectory, thereby allowing said cable to be towed back to said original launch position by retrieval of said tether line.
- 16. The device of claim 15 wherein,
(a) said pistol body portion, including said barrel extension, is prepared by assembling mating, molded-polymer halves together; (b) said release lever and said dart element are both formed from a material selected from the group consisting of: metal, polymer; ceramic, glass-like materials and composites thereof, and said dart element is prepared with an additional intermediate transverse flange spaced distally a distance L1 from said proximal flange; (c) said coil spring is prepared from spring-type alloy and provided with one or more known surface finishes selected from the group consisting of: a smoothed coil OD surface, coated with a known lubricant coating and coated with a corrosion-resistant surface film; (d) said molded pistol body halves being assembled with one or more additional, non-integral barrel guide inserts, said inserts prepared from a material selected from the group consisting of: coated metallic alloy, coated polymer and coated ceramic, wherein said insert coating is a known surface deposit which exhibits low sliding friction against said material from which dart element is prepared; (e) said molded pistol body is fitted with a removably-mounted tether line store device selected from the group consisting of: spinning reel, conventional winder and open-top tether line container, (f) said molded pistol body additionally provided with an aiming device selected from the group consisting of: optical aiming ring, laser source and collimated light source; (g) said molded pistol body additionally provided with a mounting to hold an additional interchangeable dart element having selected physical properties, whereby said additional dart is immediately available for attachment and launching; (h) said tether material is a synthetic polymer monofilament having a breaking strength of at least 1N; and (i) said coil spring being sized and prepared to exhibit a rate of approx. 900 N/m.
- 17. The device of claim 16 wherein
(a) said assembly together of said molded-polymer body halves is accurately controlled by using an alignment jig selected from the group consisting of: an external barrel-guide alignment clamp and a fitted mandrel inserted into the barrel guides to simulate the cylinder swept out by said dart alignment flanges, including sufficient radial clearance tolerance of said dart element during launching; (b) said dart element is molded from polymer of sufficient strength and further provided with additional known processing whereby axial straightness, diameter and roundness and diameter tolerances of said alignment flanges are accurately controlled to achieve repeatable, accurate line laying for a distance of at least 5 meters.
- 18. The device of claim 17 wherein said body further provided with:
(a) a mounting device for removable attachment of a known remote-release system adapted to apply sufficient force to actuate said trigger, and (b) a mounting device for removable attachment of a known clamping system whereby said body portion is fixed securely to a fixed object, said clamping system selected from the group consisting of: a tripod, a C-clamp and a magnet.
- 19. The system of claim 3 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 20. The system of claim 4 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 21. The system of claim 8 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 22. The system of claim 7 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 23. The method of claim 10 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping, said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 24. The method of claim 15 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tube and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(1)30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 25. The method of claim 12 wherein
said dart element is prepared with 2 said transverse flanges spaced apart a distance defined by L1, whereby said spring may be compressed and retained to two predetermined degrees; said dart element interior is prepared with a high-elastic-modulus stiffener having a form selected from the group consisting of: rod, splined-surface rod, tie and splined-surface tube extending over at least a portion of the length thereof; said release element proximal end is flexibly coupled to said proximal end of said spring by a retainer device selected from the group comprising:
a mating axial-tang-in-axial-aperture device, a mating transverse-tang-in-transverse-aperture device, a mating axial-post-spring-end-coil-interference device, a mating retainer-tab-and-proximal-end-dumbell-plug device wherein said retainer device may be further provided with additional known fixation selected from the group consisting of: bending, welding, bonding, locking ring, tapered sleeve and crimping; said release element pivot point location is defined in polar coordinates by a vector, i.e., pivot-point position vector re reference point P12 having a length “r” and an angle “theta”, pivot position vector=r(theta) where the vector length “r” is in the range 0.05(D30.3) to 3(D30.3) and the vector angle “theta” is in the range 0 to 360 degrees; section form of said release element is selected from a known beam, column or channel sections, whereby elastic deflection due to spring compression is reduced; said release element is prepared as a composite member with a high-elastic-modulus stiffener, whereby elastic deflection thereof due to spring compression is reduced; angle A12 of proximal arm of said release element is a value in the range 85-90 deg.; and angle A13 of distal arm of said release element is a value in the range 90-105 deg.
- 26. Apparatus for laying a flexible line (9) across an intervening space, comprising a portable launcher, a projectile (1) capable of being launched from a barrel of the launcher by release of a potential energy storage device (20), and a flexible tether line (9) contained in a line store (70) on or adjacent to the launcher and having one end secured to the projectile (1), so that launching the projectile across the intervening space towards a target destination causes the tether line (9) to be drawn from the line store (70) to cross that intervening space, enabling the projectile (1) and any object attached thereto to be retrieved by pulling back the tether line (9);
- 27. Apparatus according to claim 26, wherein the projectile (1) has, on its proximal portion, a plurality of axially spaced flanges (2, 3) for engagement by the second limb of the release element (10), corresponding to different degrees of compression of the compressible device or element and different ranges of travel for the released projectile.
- 28. Apparatus according to claim 27, wherein the compressible device or element of the potential energy storage device (20) is a coil spring.
- 29. Apparatus according to claim 28 wherein the line store (70) is a fishing line reel of the open spinning type, the closed spinning type or the bait casting type, or a sinusoidal line store in which the line (9) is loose-laid.
- 30. Apparatus according to claim 29 wherein the tether line (9) is a synthetic polymer line which is a monofilament line, a braided multifilament line or a twisted multifilament line.
- 31. Apparatus according to claim 30, wherein the launcher is provided with a tiltable aiming device (60) mounted on the exterior of the barrel for defining a line of sight between the launcher and the target zone for accurate targeting, the aiming device incorporating one or more of: a simple optical view finder, an optical range finder; and a beam generator, which latter may be a visible laser, a simple flashlight or a focussing flashlight.
- 32. Apparatus according to claim 31, wherein the release element pivot point (11) is below the intersection of the axial center line of the barrel and the distal end of the compressible device or element, and either directly beneath the said intersection or displaced towards the muzzle or breech end of the launcher barrel (zones 3 or 4 of FIG. 2f16).
- 33. Apparatus according to claim 32, wherein the distal end of the compressible device or element is provided with an axial locating means (12.1) and the proximal end of the projectile is provided with a cooperating axial locating means so that by cooperation of the said means the projectile (1) is axially centrally located within the barrel and guide ribs (50) when the compressible device or element bears against it.
- 34. Apparatus according to claim 33, wherein the release element has associated therewith a safety catch (40) having safety and armed positions, wherein the safety catch (40) in its safety position interferes with the pivotal movement of the release element (10) and prevents its movement into the position effective to release the projectile (1); and in its armed position permits such pivotal movement of the release element (10).
- 35. A method of safely and precisely laying a cable, filament or wire between two spaced points, which comprises using apparatus according to any of claims 1 to 8, 13 to 25 and 26 to 34 to launch the tethered projectile (1) from a first of the two points to the second, attaching to the projectile (1) at said second point an end of the cable, filament or wire to be laid, and then drawing the attached cable, filament or wire from the said second of the points back to the first by retraction of said tether.
CROSS-REFERENCE TO RELATED INVENTIONS
[0001] This is a CIP application filed during the pendancy in USPTO of U.S. Utility App: 09/432327; it claims the priority of the following applications:
[0002] U.S. Provisional App: 60/111573, Filed: Dec. 9, 1998
[0003] U.S. Utility App: 09/432327, filed Nov. 2, 1999
[0004] PCT/US99/29328, int. filing date Dec. 9, 1999 and related foreign filings in DE and GB
Provisional Applications (1)
|
Number |
Date |
Country |
|
60111573 |
Dec 1998 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09432327 |
Nov 1999 |
US |
Child |
09893224 |
Jun 2001 |
US |