Greenhouse gas reduction with externally pressurized gas seal and gas lubrication for a reciprocating compressor
View Patent ↗Externally pressurized gas is used to provide a gas seal and gas lubrication for a piston rod packing unit of a reciprocating compressor. The externally pressurized gas can also be used to provide gas lubrication for the cylinder via flow of the externally pressurized gas through the piston of the reciprocating compressor. The gas seal and gas lubrication can reduce or eliminate greenhouse gas emissions from a reciprocating compressor used to compress natural gas.
1 . A process comprising:
permeating a piston gas through a porous media of a piston assembly of a piston of a reciprocating compressor and into a space between an inner surface of a cylinder of the reciprocating compressor and the porous media of the piston assembly, wherein the piston gas comprises a process compatible gas, a secondary gas, or both the process compatible gas and the secondary gas; and
forming, with the piston gas, a gas interface in the space between the inner surface of the cylinder of the reciprocating compressor and the porous media of the piston assembly,
wherein the gas interface lubricates the piston assembly and the cylinder, wherein the cylinder is not oil lubricated.
2 . The process of claim 1 , wherein the process compatible gas comprises a process gas or hydrogen.
3 . The process of claim 1 , wherein the secondary gas comprises nitrogen, argon, or a combination thereof.
4 . The process of claim 1 , further comprising:
receiving, by the reciprocating compressor, a process gas having a process pressure; and
compressing, by the reciprocating compressor, the process gas to form a compressed gas having a compression pressure, wherein the compression pressure is greater than the process pressure.
5 . The process of claim 4 , wherein a pressure of the piston gas is equal to or greater than the compression pressure.
6 . The process of claim 4 , further comprising:
injecting the piston gas into the piston assembly at an injection pressure that is greater than the compression pressure.
7 . The process of claim 1 , wherein the gas interface forms a gas seal that prevents a compressed gas from flowing through the space.
8 . The process of claim 1 , further comprising:
flowing the piston gas into one or more gas distribution channel of the piston assembly; and
flowing the piston gas from the one or more gas distribution channel to the porous media.
9 . The process of claim 1 , further comprising:
flowing the piston gas into a rod channel formed in a piston rod of the piston of the reciprocating compressor;
flowing the piston gas from the rod channel into one or more gas distribution channel of the piston assembly; and
flowing the piston gas from the one or more gas distribution channel to the porous media.
10 . A reciprocating compressor comprising:
a prime mover;
a crank shaft coupled to the prime mover, wherein the prime mover is configured to turn the crank shaft;
a connecting rod having an end coupled to the crank shaft;
a crosshead coupled to an opposite end of the connecting rod;
a piston comprising a piston assembly and a piston rod, the piston rod having an end coupled to the crosshead, wherein the piston assembly comprises a porous media;
a cylinder having an interior configured for a longitudinal movement of the piston assembly therein; and
a piston rod packing unit, wherein the piston rod extends through the piston rod packing unit;
wherein a piston gas permeates through the porous media of the piston assembly into a space between the porous media of the piston assembly and an inner surface of the cylinder to form a gas interface between the porous media of the piston assembly and the inner surface of the cylinder,
wherein the gas interface lubricates the piston assembly and the cylinder during a reciprocating movement of the piston assembly in the cylinder,
wherein the cylinder is not oil lubricated.
11 . The reciprocating compressor of claim 10 , wherein the piston assembly comprises:
one or more piston core comprising the porous media, wherein the porous media defines an outer surface of the piston core that faces an inner surface of the cylinder.
12 . The reciprocating compressor of claim 11 , wherein each piston core further comprises one or more gas distribution channel inside the piston core and in fluid communication with the porous media of the piston core.
13 . The reciprocating compressor of claim 11 , wherein each piston core further comprises a gas distribution core and a plurality of segments surrounding the gas distribution core.
14 . The reciprocating compressor of claim 13 , wherein the gas distribution core comprises a first gas distribution channel, wherein each of the plurality of segments comprises a second gas distribution channel, wherein the second gas distribution channel of each of the plurality of segments is in fluid communication with the first gas distribution channel of the gas distribution core and with the porous media.
15 . The reciprocating compressor of claim 11 , wherein the piston assembly further comprises:
a crank end; and
a head end,
wherein each of the one or more piston core is positioned between the crank end and the head end of the piston assembly.
16 . The reciprocating compressor of claim 10 , wherein the piston rod comprises a channel formed therein, wherein the channel is in fluid communication with the porous media of the piston assembly.