1. Technical Field
A two-cylinder reciprocating compressor is disclosed with side foot mounts resulting in reduced compressor vibration and noise. An optimum height range as well as an optimum longitudinal or axial placement relative to the connecting rod for the foot mounts are also disclosed Further, an elevated o-ring gland or gasket is disclosed for sealing the heads to the valve plates. Still further, and improved head assembly design is disclosed that includes substantially flat valve plates, monolithically connected together through a raised central portion that defines tubes or passageways connecting the intake and output chambers associated with each cylinder
2. Description of the Related Art
Dual cylinder, reciprocating compressors generally include a pair of pistons which reciprocate within a pair of cylinders, a pair of valve plates, and a pair of cylinder heads or a single piece cylinder head assembly. Each cylinder head includes an enclosed intake volume and exhaust volume. The gas or air is valved into and out of the compressor cylinders from the enclosed intake volumes in communication with the compressor inlet, to the enclosed exhaust volumes in communication with the compressor outlet
In many compressor applications, compressor noise is an issue. For example, oxygen concentrators typically utilize a dual-cylinder compressor which must be located near the user (or patient) during operation. As a result, it is desirable to minimize the noise produced by the compressor.
Further, the design of the dual-cylinder reciprocating compressor continues to evolve as evidenced by U.S. Pat. Nos. 6,431,845 and 6,126,410, both of which are commonly assigned with the present application and which are incorporated herein by reference. The '410 patent discloses separate and relatively flat valve plates The intake and output chambers are formed by structurally connected heads that each have an irregularly shaped divider wall separating the intake and output chambers that are formed when the head is sealingly and abuttingly engaged with its respective valve plate. The outer periphery of each valve plate and the lower edge of each divider wall are disposed in a common plane. A planar but irregularly shaped gasket is disposed between each side of the unitary head and its respective valve plate, including the divider wall. The heads are connected together by a central section which includes two tubes or conduits that establish communication between the intake areas of each head and the output areas of each head respectively.
In contrast, the '845 patent discloses structurally separate heads or heads connected separately to structurally connected valve plates. Each valve plate forms the intake and output chambers with a straight divider wall separating the two chambers. The upper edge of the divider wall is coplanar with the outer periphery of valve plate, thereby enabling a relatively straightforward gasket design. The separate heads or heads are relatively flat and configuration.
In the '410 patent, the intake and output chambers are formed by the heads or heads; in contrast, the intake and output chambers of the '845 patent are formed by the structurally connected valve plates.
However, certain applications require compact and lightweight compressor design. It is believed that savings in terms of space (or height) as well as weight can be made by providing an interconnected head/gasket/valve plate design that is shorter and lighter than currently available designs, some of which are exemplified by the '410 and '845 patents as well as U.S. Pat. No. 6,056,521. Of course, any new design for a head/valve plate combination may also require a new gasket design as well.
Accordingly, new dual-cylinder rocking piston-type compressors are needed that are quieter, smaller and lighter without compromising output or performance.
In satisfaction of the aforenoted needs, an improved two-cylinder reciprocating compressor is disclosed with side foot mounts resulting in reduced compressor vibration and, consequently, noise. An optimum height for the foot mounts is also disclosed.
Further, a three-dimensional gasket is disclosed for sealing the heads or heads to the valve plates that includes a raised portion that traverses the raised central section monolithically connecting the two valve plates and further providing communication between the intake sides of the valve plates and the output sides of the valve plates
Also, an improved valve plate design is disclosed that includes substantially flat valve plates, monolithically connected together through a raised central portion that defines tubes or passageways connecting the intake and output chambers associated with each cylinder and defined by each valve plate and matching head.
In a refinement, a rocking piston compressor is disclosed which comprises a drive shaft passing through at least one piston, the drive shaft defining an axis The drive shaft and piston are accommodated in a housing. The housing comprises a body having a substantially U-shaped cross-section through which the axis of the drive shaft passes. The U-shaped body comprises an open top connected to a head assembly and two opposing sides connected by a bottom Each side of the U-shaped body is connected to at least one side foot mount. Each side foot mount comprises a bottom surface that is coplanar with the other side foot mount.
In a further refinement, the bottom surfaces of the side foot mounts are spaced vertically above a portion of the bottom of the U-shaped body that is in vertical alignment with the axis of the drive shaft by a first height. The axis of the drive shaft is spaced vertically above the portion of the bottom of the U-shaped body that is in vertical alignment with the axis of the drive shaft by a second height. The first height falls within the range of from about 1.5 times the second height to about 0.5 times the second height.
In a refinement, the first height is less than the second height.
In a refinement, the first height is in the range of from about 0.5 to less than 1.0 times the second height.
In still a further refinement, the side foot mounts ate also spaced axially or longitudinally along the compressor so that they are with in a proximity range of the closest connecting rod. In a preferred embodiment, the side foot mounts are spaced within 2 inches of either side of the closest connecting rod. In a still more preferred embodiment, the side foot mounts are spaced within about 1 inch of the closest connecting rod.
In a refinement, the drive shaft passes through two pistons and each side of the U-shaped body is connected to a pair of side foot mounts for total of four side foot mounts. Each foot mount is preferably spaced within about 2 inches laterally of the closest connecting rod and mote preferably within about 1 inch of the closest connecting rod
In a refinement, the bottom of the U-shaped body is connected to at least one bottom foot mount.
An improved dual-cylinder rocking piston compressor is disclosed which comprises a drive shaft passing through two pistons. The drive shaft defines an axis. The drive shaft and piston are accommodated in a housing. The housing comprises a body having a substantially U-shaped cross-section through which the axis of the drive shaft passes. The U-shaped body comprises an open top connected to a head assembly and two opposing sides are connected by a bottom. Each side of the U-shaped body is connected to at least a pair of foot mounts. Each side foot mount comprises a bottom surface that is coplanar with the bottom surfaces of the other side foot mounts. The bottom surfaces of the side foot mounts are spaced vertically above a lowermost portion of the bottom of the U-shaped body that is in vertical alignment with the axis of the drive shaft by a first height The axis of the drive shaft is spaced vertically above the lowermost portion of the bottom of the U-shaped body by a second height. The first height falls in the range of from about 1.5 times the second height to about 0.5 times the second height.
A method for reducing vibration and noise imparted by a dual-cylinder rocking piston-tight compressor is disclosed which comprises:
providing a dual-cylinder rocking piston-type compressor comprising a drive shaft passing through two pistons, the drive shaft defining an axis, the drive shaft and piston being accommodated in a housing, the housing comprising a body having a substantially U-shaped cross-section through which the axis of the drive shaft passes, the U-shaped body comprising an open top connected to a head assembly, and two opposing sides connected by a bottom, the axis of the drive shaft being spaced vertically above the portion of portion of the bottom of the U-shaped body that is in vertical alignment with the axis of the drive shaft by a shaft height,
connecting each side of the U-shaped body being at least one side foot mount, each side foot mount comprising a bottom surface that is coplanar with the bottom surfaces of the at least one other side foot mount, the side foot mounts being connected to the sides of the U-shaped body so that the bottom surfaces of the side foot mounts are spaced vertically above a portion of the bottom of the U-shaped body that is in vertical alignment with the axis of the drive shaft by a side foot mount height,
wherein the connecting of the side foot mounts further comprises connecting the side foot mounts to the sides of the U-shaped body so that the side foot mount height falls in the range of from about 1.5 times the shaft height to about 0.5 times the shaft height.
In a refinement, the connecting step comprises connecting each side of the U-shaped body to a pair offside mounts.
In a refinement, the side foot mount height is less than the shaft height.
In a refinement, the side foot mount height falls within the range of from about 0.5 to less than 1.0 times the shaft height
A head assembly for a compressor having dual cylinders is disclosed. The head assembly comprises a pair of valve plates connected by a raised central section. Each valve plate comprises an upper side that comprises a peripheral groove extending adjacent a perimeter of the valve plate and over a portion of the raised central section that connects the raised central section to said valve plate. Each valve plate further comprising a dividing groove that extends transversely across the valve plate between one end of said valve plate and the raised central section thereby dividing the upper side of the valve plate into an intake side and an output side. The head assembly also comprises a pair of heads with each valve plate being connected to one of the heads. Each head comprises a sidewall substantially perpendicular to the valve plate and extending adjacent the perimeter of the valve plate. Each side wall comprises an opening for receiving an end of the raised central section and each sidewall terminates at a lower mating surface that extends around the periphery of the sidewall and over the raised central section. Each head further comprises a divider wall that terminates in a lower mating surface that is in alignment with the divider groove of the valve plate to which it is connected. The divider wall of each head defines a intake volume and an output volume. The head assembly further comprising a pair of unitary gaskets. Each gasket comprising an outer peripheral portion disposed in the peripheral groove of its respective valve plate and a divider portion disposed in the dividing groove of its respective valve plate.
In a refinement, a portion of each unitary gasket extends through the portion of the peripheral groove that extends over the portion of the raised central section that is connected to its respective valve plate.
In a refinement, the valve plates are monolithically connected together by the raised central section.
In a refinement: the raised central section provides fluid communication between the intake sides of each valve plate and between the output sides of each valve plate.
A three-dimensional gasket for a dual-cylinder rocking piston-type compressor is also disclosed. The disclosed gasket comprises an outer peripheral section that forms a closed loop and the outer peripheral section of the gasket further comprises at least one raised portion. The gasket also comprises a dividing section that extends between the raised portion of the peripheral section and an opposing and of the peripheral section.
In a refinement, the dividing section divides the peripheral section into substantially mirror halves.
In a refinement, the gasket is unitary in this structure.
Other advantages and features will be apparent from the following detailed description when read in conjunction with the attached drawings
For a more complete understanding of the disclosed methods and apparatuses, reference should be made to the embodiment illustrated in greater detail on the accompanying drawings, wherein:
It should be under stood that the drawings are not necessarily to scale and that the disclosed embodiments are sometimes illustrated diagrammatically and in partial views. In certain instances, details which are not necessary for an understanding of the disclosed methods and apparatuses or which render other details difficult to perceive may have been omitted. It should be understood, of course, that this disclosure is not limited to the particular embodiments illustrated herein
Turning first to
The housing 33 is generally U-shaped with sidewalls shown generally at 37, 38 and a bottom wall shown generally at 39. It will be noted that a portion of the bottom wall 39 that is in vertical alignment with an axis 32′ of the drive shaft 32 and is the lowermost portion 39′ of the housing 33 as explained in greater detail below in connection with
Turning to
Thus, the effective height of the side foot mounts 34 as shown in
0.5 h2≦h1≦1.5 h2
or
h1=h2+/−0.5 h2
Further, the side foot mounts 34 are also preferably spaced laterally along the compressor 20 so that they are within a range of about +/−2 inches from the closest connecting rod. Lines indicating the relative positions of the connecting rods of the pump 20 are shown in phantom at 40 in
It is been found that the combination of elevating the foot mounts 34 in the manner disclosed herein increases the stability of the compressor 20 by a vertically locating the mounts 34 closer to the center of mass of the compressor 20. The new mount location disclosed herein reduces the rotating moments that can cause the compressor 20 to tip or become unstable during transportation and it will be noted that sometimes the compressors 20 are used in mobile applications.
Also in a preferred embodiment as shown in
Turning to
Generally,
Turning to
Turning to
Thus, an improved compressor 20 is disclosed which produces less vibration and less noise than predecessor models. Further the compressor 20 is shorter and lighter due to the head assembly 21 which combines a flat valve plate assembly 24 with low profile had covers 22, 23, thereby conserving space and weight. A unique gaskets system in the form of the gaskets 29 is also provided. An improved method for reducing sound and vibration by relocating or placing foot mounts on the sides of the compressor housing as opposed to on the bottom of the compressor housing is also disclosed. Without being down by theory, it is respectfully submitted that placing foot mounts on the sides of the compressor substantially reduces noise and vibration thereby making a compressor more versatile and useful in environments where noise and vibration are problematic.
While only certain embodiments have been set forth, alternatives and modifications will be apparent from the above description to those skilled in the art. These and other alternatives are considered equivalents and within the spirit and scope of this disclosure and the appended claims.
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Number | Date | Country | |
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20070280838 A1 | Dec 2007 | US |