High pressure air system for airsoft gun
10598461 ยท 2020-03-24
Assignee
Inventors
Cpc classification
F41B11/723
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/73
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/723
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A high pressure air cylinder-nozzle assembly includes a cylinder frame body, a piston assembly including a piston base member and a nozzle, the piston base member being configured to move along an axis in the cylinder frame body relative to the nozzle in at least one stage of multi-stage piston assembly movements between forward and back positions, and simultaneously with the nozzle in at least another stage of the multi-stage piston assembly movements, and a solenoid valve to direct air to the piston base member to move the piston base member between the forward and back positions.
Claims
1. A high pressure air cylinder-nozzle assembly configured for use with a gun, comprising: a cylinder frame body; a piston assembly including a piston base and a nozzle, the piston assembly defining a central air channel through the piston base and nozzle, the piston base being configured to move along an axis in the cylinder frame body relative to the nozzle in at least one stage of multi-stage piston assembly movements between forward and back positions, and simultaneously with the nozzle in at least another stage of the multi-stage piston assembly movements; and a solenoid valve configured to direct air to the piston base to move the piston base between the forward and back positions.
2. The high pressure air cylinder-nozzle assembly of claim 1, wherein a physical coupling of the piston base and the nozzle causes the simultaneous movement of the piston base and the nozzle in the at least another stage of the multi-stage piston assembly movements.
3. The high pressure air cylinder-nozzle assembly of claim 1, further including a biasing member configured to bias the nozzle in a forward direction such that the nozzle moves simultaneously with the piston base in the at least another stage of the multi-stage piston assembly movements.
4. The high pressure air cylinder-nozzle assembly of claim 3, wherein the biasing member is a spring having a first end contacting a solenoid body containing the solenoid valve, and a second end coupled to the nozzle.
5. The high pressure air cylinder-nozzle assembly of claim 4, further comprising a piston insert provided inside the piston base between the spring and the nozzle and coupled to the nozzle, the piston insert being configured to physically interact with the piston base to simultaneously move the nozzle in the at least another stage of the multi-stage piston assembly movements.
6. The high pressure air cylinder-nozzle assembly of claim 5, further comprising a central head member at a forward end of the solenoid body, the central head member being configured to receive the first end of the spring.
7. The high pressure air cylinder-nozzle assembly of claim 3, wherein the nozzle is configured with a protruding member on an outer diameter thereof, the protruding member being configured to abut an inner surface of the cylinder frame body at a certain point along a forward movement of the piston assembly.
8. The high pressure air cylinder-nozzle assembly of claim 7, wherein a first stage of forward movement of the piston assembly includes the piston base member and the nozzle moving forward until the protruding member contacts the inner surface of the cylinder frame to stop movement of the nozzle, and a second stage of forward movement of the piston assembly includes the piston base member continuing to move forward until progress is physically impeded.
9. The high pressure air cylinder-nozzle assembly of claim 8, further comprising a baffle member at least partially enclosing the piston base member, and configured such that a portion of the piston base member contacts a portion of the baffle member to stop forward progress of the piston base member during a forward movement.
10. The high pressure air cylinder-nozzle assembly of claim 9, wherein an opening is created when the piston base member approaches an end of the forward movement, the opening allowing air from the solenoid valve to move through a central air channel formed in the nozzle.
11. The high pressure air cylinder-nozzle assembly of claim 9, wherein the solenoid valve closes after a predetermined time has passed since the piston base member completed the forward movement to the forward position.
12. The high pressure air cylinder-nozzle assembly of claim 11, further comprising an auxiliary air channel provided in the cylinder frame body to deliver air to a front portion of the piston base member when the solenoid valve is closed to force the piston base portion into a first stage of a backward movement.
13. The high pressure air cylinder-nozzle assembly of claim 12, wherein the piston base member is physically coupled to the nozzle after a certain length of backward movement relative to the nozzle, causing simultaneous movement with the nozzle until the piston assembly reaches the back position.
14. The high pressure air cylinder-nozzle assembly of claim 1, wherein the solenoid valve is a two-way valve.
15. The high pressure air cylinder-nozzle assembly of claim 1, wherein the gun is an airsoft gun.
16. The high pressure air cylinder-nozzle assembly of claim 1, wherein an antepiston chamber is formed behind the piston base during forward movement of the piston base.
17. A high pressure air cylinder-nozzle assembly configured for use with a gun, comprising: a solenoid having a solenoid valve; and a piston assembly including a piston base member and a nozzle to deliver high pressure air from the solenoid valve through a central air channel formed in the nozzle; wherein the high pressure air from the solenoid valve moves the piston assembly forward to create an opening to the central air channel; and wherein the piston base member moves relative to the nozzle during a portion of the forward movement, and simultaneously with the nozzle during another portion of the forward movement.
18. The high pressure air cylinder-nozzle assembly of claim 17, wherein closing of the solenoid valve redirects high pressure air to move the piston assembly backward to a back position such that the piston base member moves relative to the nozzle during a portion of the backward movement, and simultaneously with the nozzle during another portion of the backward movement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The following example embodiments are representative of example techniques and structures designed to carry out the objects of the present general inventive concept, but the present general inventive concept is not limited to these example embodiments. In the accompanying drawings and illustrations, the sizes and relative sizes, shapes, and qualities of lines, entities, and regions may be exaggerated for clarity. A wide variety of additional embodiments will be more readily understood and appreciated through the following detailed description of various example embodiments, with reference to the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
(15) Reference will now be made to the example embodiments of the present general inventive concept, examples of which are illustrated in the accompanying drawings, illustrations, and photographs. The example embodiments are described herein in order to explain the present general inventive concept by referring to the figures.
(16) The following detailed description is provided to assist the reader in gaining a comprehensive understanding of the structures and fabrication techniques described herein. Accordingly, various changes, modification, and equivalents of the structures and fabrication techniques described herein will be suggested to those of ordinary skill in the art. The progression of fabrication operations described are merely examples, however, and the sequence type of operations is not limited to that set forth herein and may be changed as is known in the art, with the exception of operations necessarily occurring in a certain order. Also, description of well-known functions and constructions may be simplified and/or omitted for increased clarity and conciseness.
(17) Note that spatially relative terms, such as up, down, right, left, beneath, below, lower, above, upper and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. Spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over or rotated, elements described as below or beneath other elements or features would then be oriented above the other elements or features. Thus, the exemplary term below can encompass both an orientation of above and below. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
(18) Disclosed herein are various example embodiments of a springless high pressure air cylinder to use in an airsoft gun or similar devices and systems. In some embodiments, the present general inventive concept encompasses a cylinder in which an imbalanced poppet valve directs and controls the axial motion of a piston. Some embodiments include a two-way solenoid valve. The solenoid valve controls the flow of air to drive a piston forward; air then pushes the piston back into place.
(19) Turning to the figures,
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(21) As air flows into the antepiston compartment 320, the air pushes on a primary piston head surface 222. Air pressure on the primary piston head surface 222 pushes the piston 210 forward within the cylinder frame body 110, until the piston 210 is in a forward position, illustrated in
(22) With the piston 215 in the forward position, the valve within the solenoid 310 closes, and high pressure air being fed into the HPA compartment 120, instead of flowing through the solenoid 310, flows through an auxiliary tube 130 and auxiliary line 135 into a forward air feed tube, which feeds the air into a forward air compartment 145 within the cylinder frame body 110. The air in the forward air compartment 145 exerts pressure on a secondary piston head surface 224, and that pressure drives the piston 210 to return to the back position shown in
(23) In some embodiments of the present general inventive concept, the two piston surfaces are opposite sides of the same piston, with the center diameter of the two sides differingthereby leading to a difference in the surface area of the two piston surfaces.
(24) Some further example embodiments of the present general inventive concept include assemblies in which a spring positioned within the cylinder frame body assists in returning the piston to the back position. This spring, then, supplements the motive force of the air supplied by the auxiliary line. Some further example embodiments of the present general inventive concept include assemblies in which a spring positioned within the cylinder frame body assists in returning the piston to the forward position. This spring, then, supplements the motive force of the air supplied by the auxiliary line.
(25) In some embodiments, the cylinder-nozzle assembly is designed to fit into an existing gear box. In some embodiments, the cylinder-nozzle assembly is designed to operate as a stand-alone unit to fit into an airsoft gun or other similar device or system.
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(27) The cross-sectional view of
(28) To move the piston 510, high pressure air enters the assembly through an air input channel to a HPA compartment 415. From the HPA compartment 415, air passes through a solenoid input channel 425 into the solenoid 610. Within the solenoid 610 is a valve, which is capable of switching between a closed state and an open state. When a trigger mechanism of the airsoft gun activates the solenoid 610, the valve within the solenoid 610 switches into its open state, allowing the passage of air from the input channel through the solenoid 610 and into an antepiston compartment defined by the cylinder frame body 110 and proximate to both the central head member 625 and to the piston base 520. As air flows into the antepiston compartment, the air pushes on a primary piston head surface. Air pressure on the primary piston head surface pushes the piston base 520 forward within the cylinder frame body 410 and baffle member 540, until the piston 510 is in a forward position, illustrated in the cross-sectional view in
(29) With the piston 510 in the forward position, the valve within the solenoid 610 closes, and high pressure air being fed into the HPA compartment 415, instead of flowing through the solenoid 610, flows through a secondary air line 435, which feeds the air into a forward air compartment within the cylinder frame body 410. The air in the forward air compartment exerts pressure on a secondary piston head surface, and that pressure drives the piston 510 to return to the back position shown in
(30) In the example embodiments illustrated thus far, the nozzle is substantially centered with respect to the cylinder frame body. However, other configurations are contemplated by the present general inventive concept. For example,
(31) In various example embodiments of the present general inventive concept, air flow through the cylinder-nozzle assembly may be altered by providing a multiple part piston and nozzle assembly that is configured to result in multi-stage movement in the cylinder-nozzle assembly. For example, rather than air moving directly into an antepiston compartment to gather and begin to move the piston, as described in reference to
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(34) To move the piston 920, high pressure air enters the assembly through an air input channel 912 toward a solenoid input channel 914 in the solenoid 930. Within the solenoid 930 is a valve that is capable of switching between a closed state and an open state. When a trigger mechanism of the airsoft gun, or other device employing the cylinder-nozzle assembly 900, activates the solenoid 930, the valve within the solenoid 930 switches into the open state, allowing the passage of the high pressure air from the air input channel 912 through the solenoid input channel 914 and solenoid 930 and to the air ports 946 provided in the central head member 944 proximate to the primary piston head surface 948 at the piston base portion 928. The pressure of the high pressure air moving through the air ports 946 to the piston base portion 928 forces the piston base portion 928 to start moving away from the solenoid 930. As previously noted, different example embodiments may include a host of different configurations for moving the high pressure air to the piston 920 without departing from the scope of the present general inventive concept.
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(36) As illustrated in
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(38) After a predetermined amount of time that is configured to allow a certain amount of pressurized air to pass through the central air channel 924, the valve within the solenoid closes, and the high pressure air traveling through the air input channel 912 of the cylinder-nozzle assembly 900 is diverted so as to travel through an auxiliary tube 960 leading to the cylinder-frame body 910 rather than the solenoid input channel 914.
(39) Although the example embodiment described above and illustrated in
(40) In various example embodiments of the present general inventive concept, a high pressure air cylinder-nozzle assembly is provided which includes a cylinder frame body, a piston assembly including a piston base member and a nozzle, the piston base member being configured to move along an axis in the cylinder frame body relative to the nozzle in at least one stage of multi-stage piston assembly movements between forward and back positions, and simultaneously with the nozzle in at least another stage of the multi-stage piston assembly movements, and a solenoid valve to direct air to the piston base member to move the piston base member between the forward and back positions. A physical coupling of the piston base member and the nozzle may cause the simultaneous movement of the piston base member and the nozzle in the at least another stage of the multi-stage piston assembly movements. The high pressure air cylinder-nozzle may further include a biasing member configure to bias the nozzle in a forward direction such that the nozzle moves simultaneously with the piston base member in the at least another stage of the multi-stage piston assembly movements. The biasing member may be a spring having a first end contacting a solenoid body containing the solenoid valve, and a second end coupled to the nozzle. The high pressure air cylinder-nozzle assembly may further include a piston insert provided inside the piston base member between the spring and the nozzle and coupled to the nozzle, the piston insert being configured physically interact with the piston base member to simultaneously move the nozzle in the at least another stage of the multi-stage piston assembly movements. The high pressure air cylinder-nozzle assembly may further include a central head member at a forward end of the solenoid, the central head member being configured to receive the first end of the spring. The central head member may be configured so as to have a neck of reduced diameter relative to a distal end of the central head member, and at least one pressurized air port provided to the neck to deliver pressurized air to the piston base member. The piston base member may be configured to receive and surround the central head member in the back position. The nozzle may be configured with a protruding member on an outer diameter thereof, the protruding member being configured to abut an inner surface of the cylinder frame body at a certain point along a forward movement of the piston assembly. A first stage of forward movement of the piston assembly may include the piston base member and the nozzle moving forward until the protruding member contacts the inner surface of the cylinder frame to stop movement of the nozzle, and a second stage of forward movement of the piston assembly includes the piston base member continuing to move forward until progress is physically impeded. The high pressure air cylinder-nozzle assembly may further include a baffle member at least partially enclosing the piston base member, and configured such that a portion of the piston base member contacts a portion of the baffle member to stop forward progress of the piston base member during a forward movement. An opening may be created when the piston base member approaches an end of the forward movement, the opening allowing air from the solenoid valve to move through a central air channel formed in the nozzle. The solenoid valve may close after a predetermined time has passed since the piston base member completed the forward movement to the forward position. The high pressure air cylinder-nozzle assembly may further include an auxiliary air channel provided in the cylinder frame body to deliver air to a front portion of the piston base member when the solenoid valve is closed to force the piston base portion into a first stage of a backward movement. The piston base member may be physically coupled to the nozzle after a certain length of backward movement relative to the nozzle, causing simultaneous movement with the nozzle until the piston assembly reaches the back position. The solenoid valve may be a two-way valve. The high pressure cylinder-nozzle assembly may be used in an airsoft gun. An antepiston chamber may be formed behind the piston base member during forward movement of the piston base member.
(41) In various example embodiments of the present general inventive concept, a high pressure air cylinder-nozzle assembly is provided which includes a solenoid having a solenoid valve, and a piston assembly including a piston base member and a nozzle to deliver high pressure air from the solenoid valve through a central air channel formed in the nozzle, wherein the high pressure air from the solenoid valve moves the piston assembly forward to create an opening to the central air channel, and wherein the piston base member moves relative to the nozzle during a portion of the forward movement, and simultaneously with the nozzle during another portion of the forward movement. The closing of the solenoid valve may redirect high pressure air to move the piston assembly backward to a back position such that the piston base member moves relative to the nozzle during a portion of the backward movement, and simultaneously with the nozzle during another portion of the backward movement.
(42) Numerous variations, modifications, and additional embodiments are possible, and accordingly, all such variations, modifications, and embodiments are to be regarded as being within the spirit and scope of the present general inventive concept. For example, regardless of the content of any portion of this application, unless clearly specified to the contrary, there is no requirement for the inclusion in any claim herein or of any application claiming priority hereto of any particular described or illustrated activity or element, any particular sequence of such activities, or any particular interrelationship of such elements. Moreover, any activity can be repeated, any activity can be performed by multiple entities, and/or any element can be duplicated.
(43) It is noted that the simplified diagrams, drawings, and photographs included in the present application do not illustrate all the various connections and assemblies of the various components, however, those skilled in the art will understand how to implement such connections and assemblies, based on the illustrated components, figures, and descriptions provided herein, using sound engineering judgment. Numerous variations, modification, and additional embodiments are possible, and, accordingly, all such variations, modifications, and embodiments are to be regarded as being within the spirit and scope of the present general inventive concept.
(44) While the present general inventive concept has been illustrated by description of several example embodiments, and while the illustrative embodiments have been described in detail, it is not the intention of the applicant to restrict or in any way limit the scope of the general inventive concept to such descriptions and illustrations. Instead, the descriptions, drawings, photographs, and claims herein are to be regarded as illustrative in nature, and not as restrictive, and additional embodiments will readily appear to those skilled in the art upon reading the above description and drawings. Additional modifications will readily appear to those skilled in the art. Accordingly, departures may be made from such details without departing from the spirit or scope of applicant's general inventive concept.