Telescopic cylinder assembly in automatic reloading system of a toy gun
11067358 · 2021-07-20
Inventors
Cpc classification
F41B11/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/721
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41B11/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/89
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A telescopic cylinder assembly in automatic reloading system of a toy gun is disclosed. It comprises an external cylinder having an internal space formed therein, an internal cylinder located at the internal space of the external cylinder and configured to be movable in longitudinal direction of the external cylinder, a nozzle at least a part thereof is located inside the internal cylinder and configured to be movable in longitudinal direction of the external cylinder, a nozzle supporter connected to the internal cylinder and configured to support the nozzle, and a cylinder valve configured to open and close a front outlet of the nozzle. The internal space of the external cylinder is expanded primarily in accordance with the movement of the internal cylinder, and the internal space is further expanded secondarily in accordance with the movement of the nozzle.
Claims
1. A telescopic cylinder assembly in automatic reloading system of a toy gun comprising: an external cylinder having an internal space formed therein; an internal cylinder located at the internal space of the external cylinder and configured to be movable in longitudinal direction of the external cylinder; a nozzle at least a part of which is located inside the internal cylinder and configured to be movable in longitudinal direction of the external cylinder and both sides of which are open with a gas inlet; a nozzle supporter connected to the internal cylinder and configured to support the nozzle; and a cylinder valve configured to open and close the nozzle; wherein the internal space of the external cylinder is expanded primarily in accordance with the movement of the internal cylinder, and the internal space is further expanded secondarily in accordance with the movement of the nozzle.
2. A telescopic cylinder assembly of claim 1, the nozzle supporter further comprises: a supporting body formed as a hollow semi cylinder and configured to support around an outer side of the nozzle; and, an enclosure inserted and assembled into a protrusion formed at the internal cylinder.
3. A telescopic cylinder assembly of claim 1, further comprises: a first guide slot formed at both sides and in longitudinal direction of the external cylinder; and, wherein the protrusion of the internal cylinder is inserted to the first guide slot and configured to only move along the first guide slot.
4. A telescopic cylinder assembly of claim 1, further comprises: a first recoil spring with one end thereof connected to the external cylinder and the other end thereof connected to the nozzle; wherein the first recoil spring provides restoring force to the nozzle back in original position.
5. A telescopic cylinder assembly of claim 4, wherein the first recoil spring is connected to the nozzle with a pin installed across the longitudinal direction of the nozzle.
6. A telescopic cylinder assembly of claim 1, further comprises: a second recoil spring with one end thereof connected to the nozzle and the other end thereof connected to the cylinder valve; wherein the second recoil spring provides restoring force to the cylinder valve.
7. A telescopic cylinder assembly of claim 1, further comprises: a gas flow hole formed at one end of the internal cylinder; wherein the gas flow hole is configured so that gas introduced from a gas inlet at the nozzle goes into the internal space of the external cylinder.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE BEST MODE
(7) Hereinafter, embodiments will be described in detail with reference to exemplary drawings. It should be noted that, in adding reference numerals to the constituent elements of the drawings, the same constituent elements are denoted by the same reference numerals even though they are shown in different drawings. In the following description of the embodiments, detailed description of known functions and configurations incorporated herein will be omitted when it may make the best of an understanding clear.
(8) In describing the components of the embodiment, terms such as first, second, A, B, (a), and (b) may be used. These terms are intended to distinguish the constituent elements from other constituent elements, and the terms do not limit the nature, order or order of the constituent elements. When a component is described as being “connected”, “coupled,”, or “connected” to another component, the component may be directly connected or connected to the other component.
(9)
(10) As shown in the
(11) An internal space 111 is formed inside the external cylinder 110 and the size of the internal space 111 is primarily expanded as the internal cylinder 120 moves to extended. The inner space 111 can be expanded secondarily as the nozzle 130 moves to extend. Hereinafter, this will be described in detail.
(12) The telescopic cylinder assembly 1 may be used for a top gun such as a BB bullet gun. The telescopic cylinder assembly 1 is used for launching BB bullet by using gas pressure and exhaustion, so the external cylinder 110 may include the internal space 111 to house the gas.
(13) The internal cylinder 120 is located inside the external cylinder 110. One side of the internal cylinder 120 is open with a gas flow hole and the internal cylinder 120 can move in the longitudinal direction of the external cylinder 110.
(14) At least part of the nozzle 130 may be located inside the internal cylinder 120. Both sides of the nozzle unit 130 are open with holes and the nozzle 130 can move in the longitudinal direction of the external cylinder 110.
(15) Thus, the external cylinder 110, the internal cylinder 120, and the nozzle 130 in are placed in a superposed manner; the nozzle 130 is housed by the internal cylinder 120 and the internal cylinder 120 is housed by the external cylinder 110 respectively. The telescopic cylinder assembly 1 further includes a first recoil spring 131 and a second recoil spring 141, which provide corresponding parts with restoring forces.
(16) More specifically, the first recoil spring 131 may provide the internal cylinder 120 and the nozzle 130 with restoring force. One end of the first recoil spring 131 may be fixed to the external cylinder 110 and the other end may be connected to the nozzle 130. For example, the other end of the first recoil spring 131 may be attached by a pin 132 installed across the longitudinal direction of the nozzle 130. When the gas is infused to the internal space 111, the pressure originated by the gas will push the internal cylinder 120 and the nozzle 130 to move, then overall length of the cylinder assembly 1 will be increased. At this moment, the first recoil spring 131 is also extended. When gas removed from the internal space 111, the internal cylinder 120 and the nozzle 130 come back to original position by restoring force of the first recoil spring 131.
(17) The telescopic cylinder assembly 1 may include a cylinder valve 140 configured to open and close a front outlet of the nozzle 130. At this time, a portion of the cylinder valve 140 is smaller than inner diameter of the nozzle 130 so that the cylinder valve 140 is inserted into the nozzle 130.
(18) The second recoil spring 141 can provide the cylinder valve 140 with restoring force. The second recoil spring 141 may be connected to the nozzle 130 at one end and cylinder valve 140 to the other end. When the gas is infused to the internal space 111, the pressure originated by the gas will push the cylinder valve 140 and the front outlet of the nozzle 130 is closed by the cylinder valve 140. At this moment, the second recoil spring 141 is also compressed. When gas is removed from the internal space 111, the cylinder valve 141 is pushed back to original position by restoring force of the second recoil spring 141 and the front outlet of the nozzle 130 gets open.
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(20) A nozzle supporter 200 is formed as a supporting body 201 shaped as a hollow semi-cylinder type to surround and support a top portion of the nozzle 130. The nozzle supporter 200 further comprises with a ‘C’ shaped enclosure 202, 203 configured to at one end thereof to hold an extrusion 122 formed at outer side of the internal cylinder 120.
(21) Although the enclosure 202, 203 of the nozzle supporter 200 is disclosed in this embodiment, the present invention is not limited thereto. In particular, it can be used as a coupling, a coupling by a fastening mechanism such as a screw or a pin, and any physical/chemical connection method.
(22) The extrusion 122 formed at outer side of the internal cylinder 120 is guided by a first guide slot 112 formed at both sides of the external cylinder 110. The extrusion 122 limits the traveling distance of the internal cylinder 120 so that the inner space 111 kept being sealed. At this moment, the nozzle supporter 200 supports around the nozzle 130 simultaneously to prevent misalignment due to the pushing force by a magazine spring, which will be explained in detail later.
(23) Based on the present invention, the primary extension by the internal cylinder 120 and the secondary extension by the nozzle 130 is disclosed hereafter.
(24)
(25) In
(26) The internal cylinder 120 is configured to have a gas flow hole 121 at one end so that the gas coming through the gas inlet 134 passes through the nozzle 130 and the internal cylinder 120, reaching to the inner space 111 of the external cylinder 110. The pressure generated by the gas now pushes the internal cylinder 120, then the internal cylinder 120 starts moving positive Y direction based on the coordinate shown in
(27) The internal cylinder 120 is configured to move in the longitudinal direction of the external cylinder 110. The in space 111 may increase in volume, as the internal cylinder 120 moves to extend.
(28) A frictional member (not shown) may be provided on the surface of the nozzle 130 to provide a friction between the nozzle 130 and the internal cylinder 120. Then, the nozzle 130 the internal cylinder 120 may move like one body thanks to the friction at the time of the primary extension of the telescopic cylinder assembly 1.
(29) The movement of the internal cylinder 120 may be controlled by the protrusion 122 that moves along the first guide slot 112. The first guide slot 112 may have a length up to that the internal cylinder 120 maintains sealing of the inner space 111.
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(31) Referring to
(32) At this moment, the nozzle supporter 200 supports the nozzle 130 extended from the internal cylinder 120. In other words, the nozzle 130 tends to be misaligned due to the pushing force from the bottom by a magazine spring (not shown) and the nozzle support 200 prevents such error by supporting the top side of the nozzle 130.
(33) In a state that the internal space 111 is expanded in maximum, the gas supply may be shut off. When the supply of the gas is ceased, restoring force generated by a first recoil spring 131 and a second recoil spring 141 will bring back the nozzle 130 and the internal cylinder 120 in original position shown in
(34) While the present invention has been particularly shown and described with reference to exemplary embodiment thereof, it is to be understood that the invention is not limited to the disclosed exemplary embodiment. For example, it is to be understood that the techniques described may be performed in a different order than the described methods, and/or that components of the described systems, structures, devices, circuits, equivalents, even if it is replaced or replaced.
(35) Therefore, other implementations, other embodiments and equivalents to the claims are within the range of the following claims.