The invention herein resides in the art of cryogenic gas distribution systems and, more particularly, to a manifold for such systems adapted for interconnection between a gas source and an end user. More specifically, the invention relates to a universal manifold for such systems that accommodates a multiplicity of valves, meters, regulators, and sensors in such a manner as to readily tailor the interconnection from the gas source to the end user with state-of-the-art equipment and which accommodates ease of dismantling or modification when such use changes or is no longer required.
The instant invention deals with the transportation and distribution of industrial and/or medical gases from a bulk tank or source to an end user. By way of example, and as shown in
With reference to
As shown, the manifold 20A is formed from a matrix of interconnected pipes that are sweat-fit and/or threadedly interconnected with each other, with their various valves, gauges, regulators, and the like being appropriately interconnected within the matrix. This matrix of interconnected pipes 44 is then mounted to the side posts 26 by means of brackets and the like. Notably, the side posts 26 are totally passive, serving no other function than to support the matrix of pipes, valves, gauges, regulators, monitors, and the like.
Prior art manifolds, such as the manifold 20A, are typically location and utilization specific, being constructed for a specific adaptation and not given to reuse or subsequent adaptation for use in other cryogenic gas systems. It is not only costly to construct the manifold 20A of the prior art, but it is also costly in that any subsequent use, apart from the peculiarly adapted cryogenic gas system, is substantially impossible such that, upon dismantling of the cryogenic gas system, the manifold is typically discarded.
In light of the foregoing, it is a first aspect of the invention to provide a cryogenic gas manifold that does not rely upon the use of support stands serving no other purpose than supporting the manifold.
Yet another aspect of the invention is the provision of a cryogenic gas manifold that is adaptable to any of numerous cryogenic gas systems.
Yet a further aspect of the invention is the provision of a cryogenic gas manifold in which the stand itself provides conduits for the cryogenic gas handled by the system.
Still a further aspect of the invention is the provision of a cryogenic gas manifold that can be quickly and easily constructed while employing any of various commonly available valves, regulators, sensors, gauges, and the like.
Yet an additional aspect of the invention is the provision of a cryogenic gas manifold that is easy to assemble, disassemble, transport, and implement in a cryogenic gas system of any of various natures.
The foregoing and other aspects of the invention which will become apparent as the detailed description proceeds are achieved by a cryogenic gas manifold, comprising first and second tubular headers; said first tubular header having an input nipple extending from a side thereof; said second tubular header having an output nipple extending from a side thereof; and said first and second tubular headers each having a plurality of branch nipples extending from sides thereof.
Yet further aspects of the invention are attained by a cryogenic gas manifold interposed between a cryogenic gas source and a user of such gas, comprising first and second interchangeable tubular headers; each said tubular header having a nipple for receiving cryogenic gas from said source or providing it to the user; each said tubular header having opposed branch nipples; and devices interconnecting at least certain of said branch nipples of said first and second tubular headers with each other, said interconnection being by threaded engagement of at least certain of said devices with certain of said branch nipples.
For a complete understanding of the various aspects of the invention, reference should be made to the following detailed description and accompanying drawings wherein:
With reference to
The header pipe 46 includes a plurality of branch nipples or ports 50 and an inlet/outlet nipple or port 52 as shown. The nipples 50, 52 are preferably externally threaded and define apertures 54 for the branch nipples 50 and an aperture 56 for the inlet/outlet nipple 52.
With reference now to
The branch nipples 50 are also populated to finish the construction of the cryogenic gas manifold 20B. A relief valve 66 may be connected to a branch nipple 50 on the inlet side of the manifold as shown. A valve with an associated pressure gauge 68 may be threadedly connected to an associated branch nipple of the header pipe 46 on the outlet side of the manifold. According to the embodiment shown, devices 70, 72 are interconnected between opposite pairs of the threaded nipples 50 between the inlet header pipe 46 and the outlet header pipe 46, as shown. According to an embodiment of the invention, these devices may comprise a pair of redundant pressure regulators connected in parallel between the inlet side and outlet side of the manifold 20B, or they may include combinations of regulators, bypass valves, low-temperature shutoff valves, and the like, depending upon the needs of the associated cryogenic gas system. For example, various combinations 74, 76 of manual valves, couplers, connectors, regulators and the like may be employed between the threaded nipples of opposite header pipes 46 to achieve any of numerous manifold configurations. It is contemplated that the devices are typically threadedly connected, allowing for ease of assembly and disassembly. The manifold 20B is self-contained between the system inlet 62 and outlet 64 as at the nipples 52. It includes branch nipples 50 that are oppositely paired to accommodate any of numerous elements therebetween. The stand, comprised of header pipes 46, is an active stand, serving as a gas conduit to the various valves, regulators, monitors and the like. Moreover, the manifold 20B can be freestanding, as accommodated by the foot clamps 60.
The resulting cryogenic gas manifold 20B is not only active as compared to the prior art passive manifold stands, but it is also given to ease of assembly and disassembly, modification, and the like. Accordingly, the cryogenic gas manifold 20B of the invention is cost effective, not only from the implementation of a single design of header pipe, but also from the ease by which it can accommodate state-of-the-art gauges, monitors, valves, reducers, temperature shutoff valves, pressure regulators, and the like.
Thus it can be seen that the various aspects of the invention have been satisfied by the structure presented hereinabove. While in accordance with the patent statues only the best known and preferred embodiment of the invention has been presented and described in detail, the invention is not limited thereto or thereby. Accordingly, for an appreciation of the scope and breadth of the invention, reference should be made to the following claims.
Number | Name | Date | Kind |
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20080276998 | Boyher | Nov 2008 | A1 |
20150233528 | Macaluso | Aug 2015 | A1 |
Number | Date | Country | |
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20190285228 A1 | Sep 2019 | US |