Portable Carbon Dioxide Adapter System
20180274728 ยท 2018-09-27
Inventors
Cpc classification
F17C2205/0382
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2225/0123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0329
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0373
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B11/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F17C7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure discloses a portable carbon dioxide adapter system. The system includes a first collar assembly for connecting to a liquid carbon dioxide source; a gasifying/flow adjusting assembly that converts liquid carbon dioxide into gaseous carbon dioxide and may adjust gas flow; an injection nozzle valve assembly that abuts against a gas inflow valve of a gas-injection-by-adapter object so as to inject the gaseous carbon dioxide; and a second collar assembly with one end slidably receiving the injection nozzle valve assembly and the other end being securely connected to the gasifying/flow adjusting assembly. The liquid carbon dioxide source is a disposable carbon dioxide gas cylinder, and an opening unit for piecing the disposable carbon dioxide gas cylinder is mounted within the first collar assembly; and the gasifying/flow adjusting assembly has a volume-adjustable hollow inner cavity configuration.
Claims
1. A portable carbon dioxide adapter system, comprising: a first collar assembly for connecting to a liquid carbon dioxide source; a gasifying/flow adjusting assembly that converts liquid carbon dioxide into gaseous carbon dioxide and may adjust gas flow; an injection nozzle valve assembly that abuts against a gas inflow valve of a gas-injection-by-adapter object so as to inject the gaseous carbon dioxide; and a second collar assembly with one end slidably receiving the injection nozzle valve assembly and the other end being securely connected to the gasifying/flow adjusting assembly, wherein the liquid carbon dioxide source is a disposable carbon dioxide cylinder, and an opening unit for piercing the disposable carbon dioxide cylinder is mounted within the first collar assembly; and the gasifying/flow adjusting assembly has a volume-adjustable hollow inner cavity configuration.
2. The portable carbon dioxide adapter system according to claim 1, characterized in that: the injection nozzle valve assembly comprises a nozzle valve rod, an embedded sealing ring, an end sealing collar, an end locking cap, and a tension spring, wherein the nozzle valve rod slidably passes through a central through-hole of the second collar assembly, one end of the nozzle valve rod being a hollow nozzle hole, the other end thereof being a solid screw; in a peripheral direction of the nozzle valve rod is provided an annular groove receiving the embedded sealing ring, and meanwhile in a diameter direction of the nozzle valve rod is provided a gas inflow hole in communication with the hollow nozzle hole; compared with the gas inflow hole, the annular groove is disposed closer to the hollow nozzle hole; the end sealing collar is mounted on the solid screw of the nozzle valve rod and is secured through the end locking cap.
3. The portable carbon dioxide adapter system according to claim 2, characterized in that: the end sealing collar maintains sealing between the injection nozzle valve assembly and the gasifying/flow adjusting assembly in a non-gas-injecting state, while releases sealing between the injection nozzle valve assembly and the gasifying/flow adjusting assembly in a gas-injecting state.
4. The portable carbon dioxide adapter system according to claim 3, characterized in that: the gasifying/flow adjusting assembly comprises a gasification cavity body, a flow adjusting screw, a sealing piston, a pressure adjusting spring, and a locking bolt, wherein inside the gasification cavity body is provided the hollow inner cavity configuration; in two end faces of the gasification cavity body are provided a liquid carbon dioxide inflow hole and a gaseous carbon dioxide outflow hole, respectively; a through-hole having threads at both ends is provided in a direction perpendicular to the two end faces of the gasification cavity body; the flow adjusting screw is mounted to one end of the through-hole in a threaded manner, and the locking bolt tightly locks the pressure adjusting spring at the other end of the through-hole.
5. The portable carbon dioxide adapter system according to claim 4, characterized in that: an end of the flow adjusting screw is provided with a sealing gasket, the sealing piston being mounted between the pressure adjusting spring and the flow adjusting screw.
6. The portable carbon dioxide adapter system according to claim 1, further comprising: a sealing ring and guard ring assembly disposed between the opening unit and the gasifying/flow adjusting assembly, the sealing ring and the guard ring assembly being comprised of an O-shaped sealing ring and a silica gel guard ring, a center of the silica gel guard ring being provided with a through-hole.
7. The portable carbon dioxide adapter system according to claim 6, characterized in that: the opening unit is a drill tip-type opening unit.
8. The portable carbon dioxide adapter system according to claim 7, characterized in that: the first collar assembly and the second collar assembly are connected to the gasifying/flow adjusting assembly in a threaded manner and are locked by locking pins.
9. The portable carbon dioxide adapter system according to claim 8, characterized in that: the second collar assembly is a stepped cylinder, a fixed end of which connected to the gasifying/flow adjusting assembly is provided with an internal thread, while a free end on the opposite side is provided with an external thread.
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
[0016] Now, the present disclosure will be described through examples with reference to the accompanying drawings, in which:
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] Hereinafter, the technical solution of the present disclosure will be described in a clear and comprehensive manner in conjunction with the drawings. It is apparent that the embodiments as described here are only part of the embodiments of the present disclosure, rather than all of them. All other embodiments obtained by a person of normal skill in the art on the basis of the embodiments in the present disclosure fall within the protection scope of the present disclosure.
[0023] It should be noted that, in the description of the present disclosure, orientations or positional relationships indicated by the terms front/back, up/down, left/right, vertical/horizontal, and in/out and the like, which are based on the orientations or position relationships illustrated in the drawings, are merely for the purposes of describing the present disclosure and simplifying the description, rather than indicating or implying that the devices or elements as referred to must have particular orientations or must be constructed and operated with specific orientations; therefore, they should not be understood as limiting the present disclosure. In addition, the terms first, second, and third are used for descriptive purposes only, and should not be construed to indicate or imply relative importance.
[0024] In the description of the present disclosure, it should be noted that, unless explicitly specified or limited, the term mount, connect, and connected should be understood broadly. For example, they may be a fixed connection, or a detachable connection, or an integral connection; they may be a mechanical connection, or may be an electrical connection; they may be a direct connection, or may be an indirect connection through an intermediate medium, or may be a communication inside two elements. For a person of normal skill in the art., the specific meanings of the terms above in the present disclosure may be understood according to specific conditions.
[0025]
[0026] To facilitate user operation, as shown in
[0027]
[0028] As shown in
[0029]
[0030] The injection nozzle valve assembly 12 comprises a nozzle valve rod 121, an embedded sealing ring 122, an end sealing collar 123, an end locking cap 124, and a tension spring 125. The nozzle valve rod 121 is a stepped cylinder with outer diameters of two ends being smaller than an outer diameter of a central part; a left end of the nozzle rod is a hollow nozzle hole for injecting carbon dioxide gas, and a right end of the gas cylinder is a solid screw for engaging the end locking cap 124; on the larger-diameter central part of the cylinder is provided with an annular groove for receiving the embedded sealing ring 122; the embedded sealing ring 122 is for slidably sealing between the nozzle valve rod 121 and the adapter collar assembly 11 so as to avoid leakage of the carbon dioxide gas to an outer atmosphere during the gas-injection process. In addition, between the annular groove of the nozzle valve rod 121 and a right end face of the larger-diameter cylinder is further provided a gas inflow hole that is completely or partially through in the diameter direction and communicates with the nozzle hole. The end sealing collar 123 abuts against a right end face of the larger-diameter cylinder of the nozzle valve rod 121 and is secured through the end locking cap 124; the outer diameter of the end sealing collar 123 is larger than a left end through hole of the adapter collar assembly 11, such that the end sealing collar 123, when being tensioned by the tension spring 125, ensures sealing between the injection nozzle valve assembly 12 and the gasifying/flow adjusting assembly 13 in a non-gas-injection state. A left end of the tension spring 125 is snapped to a right end bulge of the end locking cap 124, while a right end of the tension spring 125 abuts against a left end face of the gasifying/flow adjusting assembly 13. When injecting gas to the gas-injection-by-adapter object, as the tension spring 125 is compressed, the sealing between the injection nozzle valve assembly 12 and the gasifying/flow adjusting assembly 13 is released, and the gas inflow hole of the nozzle valve rod 121 is exposed, such that high-pressure carbon dioxide gas enters into the gas inflow hole and reaches the hollow nozzle hole at the left end of the nozzle valve rod 121. Those skilled in the art will easily appreciate that by appropriately disposing the annular groove of the nozzle valve rod 121 and setting a maximum compressed amount of the tension spring 125, it is guaranteed that during the gas-injection process, the carbon dioxide only enters into the gas inflow hole, without compromising the slidable sealing of the embedded sealing ring 122.
[0031] The gasifying/flow adjusting assembly 13 comprises a gasification cavity body 131, a flow adjusting worm 132, a pressure adjusting spring 133, and a locking bolt 134. The gasification cavity body 131 is a hollow inner cavity configuration of a locally threaded hole that is top-down through; meanwhile, a gaseous carbon dioxide outflow hole is provided on a left end face of the gasification cavity body 131, and a liquid carbon dioxide inflow hole is provided on a right end face of the gasification cavity body 131; preferably, the liquid carbon dioxide inflow hole is greater than the gaseous carbon dioxide outflow hole, so as to prevent blockage or unsmooth flowing of the liquid carbon dioxide due to surface tension. Left and right ends of the gasification cavity body 131 are of an external thread structure, for being correspondingly engaged with inner threads of the adapter collar assembly 11 and the gas cylinder collar assembly 16, respectively. Preferably, a left end face of the gasifying cavity body 131 is of an inwardly recessed structure so as to securely receive the tension spring 125 of the injection nozzle valve assembly 12. The flow adjusting screw 132, the pressure adjusting spring 133, and a locking bolt 134 are connected or mounted in the top-down through locally threaded hole of the gasifying cavity body 131 so as to adjust the volume of the hollow inner cavity of the gasifying cavity body 131. Preferably, a sealing gasket is provided at an end of the flow adjusting screw 132, and a sealing piston (not shown) is mounted on the pressure adjusting spring 133; both of the sealing gasket and the sealing piston are for sealing the gasifying cavity body 131, avoiding leakage of the gasified carbon dioxide to the outside. The specific structures of respective components of the gasifying/flow adjusting assembly 13 as well as assembly manners thereof will be further illustrated with reference to the drawings.
[0032] The sealing ring and guard ring assembly 14 comprises an O-shaped sealing ring 141 and a silica gel guard ring 142. The O-shaped sealing ring 141 is for sealing between the gasification/flow adjusting assembly 13 and the gas cylinder collar assembly 16, which prevents the silica gel guard ring 142 from blocking the liquid carbon dioxide inflow hole on the right end face of the gasifying cavity body 131. The silica gel guard ring 142 can buffer an impact from the composite drill bit assembly 15, and a central opening of the silica gel guard ring 142 allows the liquid carbon dioxide to smoothly enter the gasifying/flow adjusting assembly 13 from the disposable carbon dioxide gas cylinder 13.
[0033] The composite drill bit assembly 15 comprises a drill bit-type opener 151 and a hollow drill bit holder 152. The hollow drill bit holder 152 is used to fixedly support the drill bit-type opener 151; a spiral groove shape of the drill-bit type opener 151 can ensure that the liquid carbon dioxide flows smoothly to the gasification cavity when the disposable carbon dioxide gas cylinder is opened. The hollow drill-bit holder 152 is a hollow cylinder, a left end face of which abuts against the sealing ring and the silica gel guard ring 142 of the collar assembly 14, and a right end face of which abuts against an inner annular flange of the gas cylinder collar assembly 16. In a state of use, the drill-bit type opener 151 held by the hollow drill bit holder 152 extends out of the hollow drill bit holder 152 and beyond the inner annular flange of the gas cylinder collar assembly 16 so as to open the disposable carbon dioxide gas cylinder. Additionally and alternatively, the hollow drill bit holder 152 and the drill-bit type opener 151 may also adopt an integrated structure instead of the split structure shown in the figure.
[0034] The gas cylinder collar assembly 16 comprises a gas cylinder collar body 161 and a locking pin 162. A left end of the gas cylinder collar body 161 is connected to a right end of the gasification/flow adjusting assembly 13 in a threaded manner. Likewise, the locking pin 162 is used for preventing thread loosening, such that the gas cylinder collar assembly 16 is securely locked to the gasification/flow adjusting assembly 13 during the gas-injection process. As mentioned above, the right end of the gas cylinder collar body 161 is used for being connected to a carbon dioxide source, that is, connected to a large volume disposable compressed carbon dioxide gas cylinder (e.g., CO2-88G) in a threaded manner.
[0035]
[0036]
[0037] The above disclosed are only preferred embodiments of the present disclosure, and the scope of the invention are not defined thereby, of course. Therefore, any equivalent changes within the patent application scope of the present disclosure fall within the scope of the invention. It is to be understood that the above description is intended to be illustrative and not restrictive. For example, the embodiments described above (and/or aspects thereof) may be used in combination with one another. In addition, many modifications may be made to adapt a particular situation or material according to the teachings of the invention without departing from the scope of the invention. By reading the description above, many other embodiments and modifications within the scope and spirit of the claims will be apparent to those skilled in the art.