PISTON COMPRESSOR AND METHOD OF OPERATING THE SAME
20210388824 · 2021-12-16
Assignee
Inventors
Cpc classification
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2015/081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The piston compressor comprises a cylinder as well as a piston arranged therein, a carrier housing with a crosshead mounted in the carrier housing, a spacer which connects the cylinder to the carrier housing, as well as a piston rod extending in a longitudinal direction (L) which connects the crosshead to the piston, wherein the spacer comprises a plurality of support arms, wherein the support arms are connected to and support the cylinder.
Claims
1. Piston compressor comprising a cylinder and a piston arranged therein, a carrier housing with a crosshead mounted in the carrier housing, a spacer which connects the cylinder to the carrier housing, and a piston rod extending in a longitudinal direction (L), which connects the crosshead to the piston, the spacer comprising a plurality of support arms extending in the longitudinal direction (L), wherein the support arms are each individually connected to the cylinder towards the cylinder.
2. Piston compressor according to claim 1, wherein the cylinder has a plurality of attachment points, and wherein one support arm is attached to one attachment point in each case.
3. Piston compressor according to claim 2, wherein the attachment points are mutually symmetrically arranged with respect to the longitudinal direction (L).
4. Piston compressor according to claim 3, wherein the cylinder has a plane of symmetry (S) extending in the longitudinal direction (L) along the piston rod, and wherein the attachment points and the support arms are arranged symmetrically with respect to the plane of symmetry (S).
5. Piston compressor according to claim 1, wherein the spacer is U-shaped, with two support arms extending in the longitudinal direction (L), and the cylinder has two attachment points to which the support arms are fastened.
6. Piston compressor according to claim 2, wherein each attachment point has a width (C) in the circumferential direction of the cylinder in the range between 10° and 30°.
7. Piston compressor according to claim 4, wherein the cylinder comprises an inlet valve and an outlet valve, and the inlet valve and the outlet valve are mutually symmetrical with respect to the plane of symmetry (S).
8. Piston compressor according to claim 7, wherein the cylinder comprises a first cylinder cover as well as a second cylinder cover, and wherein both the first and the second cylinder cover comprise an inlet valve as well as an outlet valve, so that the cylinder and the piston are double-acting.
9. Piston compressor according to claim 1, wherein a plurality of cylinders with pistons arranged therein are arranged mutually spaced apart on the carrier housing and are each connected to the carrier housing via a separate spacer.
10. Piston compressor according to claim 9, wherein a piston rod is assigned to each piston, wherein the carrier housing is designed as a monoblock, and wherein the monoblock has a number of bores corresponding to the number of piston rods, in each of which bores a crosshead is displaceably mounted, each piston being connected to an assigned crosshead via a piston rod.
11. Piston compressor according to claim 10, wherein the carrier housing and the crosshead are made of a metal having a thermal conductivity in the range between 100 and 300 (W/m.Math.K).
12. Piston compressor according to claim 11, wherein the carrier housing and the crosshead are made of aluminum or an aluminum alloy.
13. Piston compressor according to claim 1, wherein at least one of the cylinder and the piston consists of a metal with a thermal conductivity in the range between 100 and 300 (W/m.Math.K).
14. Piston compressor according to claim 13, wherein the cylinder and the piston are made of aluminum or an aluminum alloy.
15. A method of operating a reciprocating compressor comprising a cylinder and a piston disposed therein, a carrier housing having a crosshead mounted in the carrier housing, a spacer connecting the cylinder to the carrier housing, and a piston rod extending in a longitudinal direction (L) and connecting the crosshead to the piston, wherein the spacer comprises a plurality of support arms extending in the longitudinal direction, wherein the support arms are each connected individually to the cylinder towards the cylinder via attachment points, so that thermal energy, due to a thermal difference between the attachment points, is not exchanged directly in the circumferential direction relative to the longitudinal direction (L) between the attachment points, but via the support arms extending in the longitudinal direction (L).
16. Method according to claim 15, wherein an inlet fluid (F.sub.E) is supplied to the cylinder via an inlet valve, and wherein the fluid located in the cylinder is expelled from the cylinder as an outlet fluid (F.sub.A) via an outlet valve, wherein the inlet valve and the outlet valve are arranged symmetrically with respect to a symmetry plane (S) extending along the longitudinal direction (L) of the piston rod, so that the cylinder is heated during the conveyance of the fluid in the region of the plane of symmetry (S) to an average temperature which lies between the temperature of the inlet fluid (F.sub.E) and the outlet fluid (F.sub.A), and wherein the support arms are connected to the cylinder in the region of the plane of symmetry (S) via attachment points.
17. Method according to claim 16, wherein the inlet fluid (F.sub.E) is supplied at a temperature in the range between −162° C. and −40° C., and wherein the outlet fluid (F.sub.A) is heated by compression by a temperature difference in the range between 100° C. and 150° C.
18. Method according to claim 16, wherein the attachment points each have a center point S.sub.3 in the region of the plane of symmetry (S), which are tempered to essentially the same temperature during the conveying of the fluid.
19. Method according to claim 15, wherein the spacer is U-shaped, with a support section and two support arms extending in the longitudinal direction (L), wherein thermal energy is exchanged between the cylinder and the carrier housing via the support arms and the support section.
20. Method according to claim 18, wherein each attachment point has a width (C) in the circumferential direction of the cylinder in the range between 10° and 30°, wherein each attachment point is arranged symmetrically with respect to the center point S.sub.3, and wherein thermal energy is transmitted in the circumferential direction from the respective support arm along the attachment point.
21. Method according to claim 16, wherein the piston rod extends in the region of the plane of symmetry (S) and is tempered to substantially the same temperature as the attachment points while the fluid is conveyed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The drawings used to explain the embodiments show:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030] In principle, the same parts are given the same reference signs in the drawings.
DETAILED DESCRIPTION
[0031]
[0032] In the longitudinal direction L, a first, a second and a third stuffing box chamber 50, 51.52 are arranged downstream of the center section 12h. The first, second and third stuffing box chamber 50, 51.52 are arranged downstream of the center section 12. The spacer 40 has a spacer interior 40a in which an oil scraper packing 55, shown only schematically, is arranged, preferably comprising a guide which encloses the piston rod 24. In addition, an oil screen 54 is arranged on the piston rod 24. The support housing 60 includes a bore 60a that forms a sliding surface for the crosshead 63 so that the crosshead 63, the piston rod 24 connected to the crosshead 63, and the piston 20 connected to the piston rod 24 can reciprocate in the longitudinal direction L. Preferably, the sliding surface for the crosshead is lubricated, preferably with oil, although this lubrication is not shown in detail.
[0033] The cylinder 10 and/or the piston 20, and preferably also the carrier housing 60 and the crosshead 63, are made of a metal having a thermal conductivity in the range of preferably between 100 and 300 (W/m.Math.K), preferably aluminum or an aluminum alloy. Advantageously, the cylinder 10 and the piston 20, and preferably also the carrier housing 60 and the crosshead 63, are made of the same material so that they have the same properties with regard to thermal expansion.
[0034]
[0035] The reciprocating compressor according to the invention is particularly suitable for compressing a fluid whose inlet fluid FE flowing in via the inlet valve 90 and whose outlet fluid FA flowing out via the outlet valve 91 have a high temperature difference of, for example, between 100° C. to 150° C. For example, the inlet fluid FE, for example exhaust gas of liquefied natural gas, may have a temperature of −160° C., and the outlet fluid FA may have a temperature of −40° C., so that it has a temperature difference of 120° C. The symmetrical arrangement of inlet valve 90 and exhaust valve 91 with respect to the plane of symmetry S has the advantage that the cylinder 10 as well as the piston 20 assume an average temperature during operation in the region of the plane of symmetry S and the longitudinal axis L extending along the piston rod 24, respectively, the temperature of the cylinder 10 and of the piston 20 perpendicular to the longitudinal axis L usually decreasing towards the inlet valve 90 and increasing towards the exhaust valve 91. In the direction of the longitudinal axis L, the cylinder 10 preferably exhibits only small temperature differences. Since the cylinder 10 and the piston 20 have an average temperature in the area of the longitudinal axis L during operation, the cylinder 10, the piston 20 and the piston rod 24 experience no or negligible distortion caused by temperature differences in these parts or changes in length caused by temperature differences. In an advantageous embodiment, the cylinder 10 and/or the piston 20 are made of a material with good thermal conductivity, for example aluminum, which gives the advantage of reducing the temperature differences applied to the cylinder 10 and the piston 20 during operation.
[0036] The piston compressor according to the invention is advantageously operated at ambient temperature. If the reciprocating compressor according to the invention is used to compress exhaust gas from liquid natural gas, the outer surface of the cylinder 10 is heated with air at ambient temperature, which further reduces temperature differences applied to the cylinder 10, especially if the cylinder 10 or at least the cylinder covers 11, 12 are made of a material that conducts heat well.
[0037] In a reciprocating compressor 1, a gas space is understood to be the space between a fluid supply line 15 and the inlet valve 90 or the space between the outlet valve 91 and a fluid discharge line 16. The piston compressor 1 according to the invention advantageously has no or a very small gas space, in that the fluid supply line 15 or a flange 14 is arranged in the fluid flow direction F directly upstream of the inlet valve 90, via which the fluid is supplied to the cylinder 10 from the outside, or in that a fluid discharge line 16 or a flange 14 is arranged in the fluid flow direction F directly downstream of the outlet valve 91, via which the fluid is discharged from the cylinder 10 to the outside. Thus, the pumped fluid is no longer in direct heat-conducting contact with the cylinder 10 until immediately upstream of the inlet valve 90 or immediately downstream of the outlet valve 91. As a result, the cylinder 10 is cooled to a lesser depth.
[0038] In a further advantageous embodiment, at least one of the components inlet valve 90, outlet valve 91 and flange 14 are designed in such a way that they have an increased thermal resistance to the cylinder cover 11, 12 in order to extract heat from the cylinder cover 11, 12 only to a reduced extent due to the cool fluid flowing through the inlet valve 90, the outlet valve 91 and/or the flange 14.
[0039] In an advantageous embodiment, the inner surface of the first or second cylinder cover 11, 12 and the outer surface of the first or second piston cover 21, 22 are designed to match each other in such a way that the so-called damage space remains as small as possible.
[0040] As shown in
[0041] In one possible embodiment, the first cylinder cover 11 and/or the second cylinder cover 12 could have an end face extending perpendicular to the longitudinal axis L, in which the inlet valve 90 as well as the outlet valve 91 are arranged. Particularly advantageously, however, the first cylinder cover 11 and/or the second cylinder cover 12 are designed as shown in
[0042]
[0043] In
[0044]
[0045] The cylinder 10 comprises at least three parts, the first cylinder cover 11, the second cylinder cover 12 and a preferably tubular cylinder jacket 13, wherein the cylinder jacket 13 is arranged between the first cylinder cover 11 and the second cylinder cover 13.
[0046] The piston 20 includes at least three parts, a first piston cap 21, a second piston cap 22, and a piston skirt 23 disposed between the first and second piston caps 21,22. This layered structure of cylinder and/or piston allows a particularly favorable maintenance, because on the occasion of the maintenance only those parts have to be replaced, which could show a considerable wear, for example the cylinder jacket 13 and the piston jacket 23. Advantageously the piston jacket 23 has at least partly a labyrinth-shaped outer surface 23a, so that the piston compressor 1 is designed as a labyrinth piston compressor. In a further advantageous embodiment, instead of the labyrinthine outer surface 23a, at least one sealing ring is arranged on the piston skirt 23, the piston skirt 23 preferably having at least one circumferential groove in which the sealing ring is arranged, so that the piston compressor 1 is designed as a ring-sealed piston compressor 1.
[0047] The second cylinder cover 12 has attachment points 12e, 12f, preferably arranged on its outer edge 12i, to which the support arms 42, 43 are fastened by a fastening means not shown, preferably a screw. The attachment points 12e, 12f are preferably mutually symmetrical with respect to the plane of symmetry S.
[0048] In an advantageous embodiment, at least one of the two piston covers 21, 22 has a piston end face 21a, 22a which projects towards the associated cylinder cover 11, 12 and is convex in particular, the associated cylinder cover 11, 12 having a correspondingly projecting cylinder cover outer face 11c, 12c or a cylinder cover inner face 11d, 12d which recedes correspondingly with respect to the piston end face 21a, 22a, as shown for example in
[0049] The second cylinder cover 12 has in its center a passage opening 12g extending in longitudinal direction L, along which the piston rod 24 extends, wherein preferably in longitudinal direction L downstream of the passage opening 12g, outside the cylinder cover 12, at least one stuffing box chamber 50 is arranged and preferably a plurality of stuffing box chambers are arranged.
[0050] In an advantageous embodiment of the reciprocating compressor, at least one of inlet valve 90, outlet valve 91 and flange 14 is not in contact with the first or second cylinder cover 11,12 with the entire possible surface area, but is only in contact with the first or second cylinder cover 11,12 with a partial surface area, i.e. with a part of the possible total surface area, in order to increase the thermal resistance between inlet valve 90, outlet valve 91, flange 14 and first or second cylinder cover 11,12.
[0051]
[0052]
[0053] In an advantageous embodiment, the reciprocating compressor 1 comprises a cylinder 10 and a piston 20 disposed therein, a carrier housing 60 having a crosshead 63 mounted in the carrier housing 60, a spacer 40 connecting the cylinder 10 to the carrier housing 60, and a piston rod 24 extending in a longitudinal direction L and connecting the crosshead 63 to the piston 20, the spacer 40 comprising a plurality of support arms 42, 43, the support arms 42, 43 being connected to and supporting the cylinder 10. Advantageously, the cylinder 10 comprises a plurality of attachment points 12e, 12f mutually symmetrically arranged with respect to the longitudinal axis L, to which the support arms 42, 43 are fastened. The piston compressor has a plane of symmetry S extending in the longitudinal direction L along the piston rod 24, the attachment points 12e, 12f and the support arms 42, 43 being arranged symmetrically with respect to the plane of symmetry S. Advantageously, the spacer 40 is U-shaped, with two support arms 42, 43 extending in the longitudinal direction L, the cylinder 10 having two attachment points 12e, 12f to which the support arms 42, 43 are attached. Advantageously, each attachment point 12e, 12f has a width C in the range between 10° and 30° in the circumferential direction of the cylinder 10. Advantageously, the cylinder 10 comprises an inlet valve 90 and an outlet valve 91, the inlet valve 90 and the outlet valve 91 being mutually symmetrical with respect to the plane of symmetry S. Advantageously, the cylinder 10 comprises a first cylinder cover 11 as well as a second cylinder cover 12, wherein both the first and the second cylinder cover 11,12 comprise an inlet valve 90 as well as an outlet valve 91, so that the cylinder 10 and the piston 20 are double-acting. Advantageously, a plurality of cylinders 10 with pistons 20 arranged therein are mutually spaced on the carrier housing 60 and are each connected to the carrier housing 60 via a separate spacer 40. Advantageously, a piston rod 24 is assigned to each piston 20, the carrier housing 60 being designed as a monoblock, and the monoblock having a number of bores corresponding to the number of piston rods 24, in each of which a crosshead 63 is displaceably mounted, each piston 20 being connected to the assigned crosshead 63 via a piston rod 20 in each case. Advantageously, the monoblock and the crosshead 62 are made of a metal with a thermal conductivity in the range between 100 and 300 (W/m.Math.K), preferably aluminum or an aluminum alloy. Preferably, the cylinder 10 and/or the piston 20 is made of a metal having a thermal conductivity in the range between 100 and 300 (W/m.Math.K), preferably aluminum or an aluminum alloy.
[0054] The piston compressor 1 comprising a cylinder 10 and a piston 20 arranged therein, a carrier housing 60 with a crosshead 63 mounted in the carrier housing 60, a spacer 40 which connects the cylinder 10 to the carrier housing 60, and a piston rod 24 extending in a longitudinal direction L and connecting the crosshead 63 to the piston 20, is advantageously operated in such a way that thermal energy, caused by a thermal difference present between the cylinder 10 and the carrier housing 60, is exchanged via a plurality of support arms 42, 43. Advantageously, an inlet fluid FE is supplied to the cylinder 10 via an inlet valve 90, and the fluid located in the cylinder 10 is expelled from the cylinder 10 via an outlet valve 91 as an outlet fluid FA, wherein the inlet valve 90 and the outlet valve 91 are arranged symmetrically with respect to a plane of symmetry S extending along the longitudinal direction L of the piston rod 24, so that the cylinder 10 is heated during the conveyance of the fluid in the region of the plane of symmetry S to a mean temperature which lies between the temperature of the inlet fluid FE and the outlet fluid FA, the support arms 42, 43 being connected to the cylinder 10 in the region of the plane of symmetry S via attachment points 12e, 12f. Advantageously, the two center points S3 between the attachment points 12e, 12f are tempered to essentially the same temperature while the fluid is being conveyed. Advantageously, the piston rod 24 extends in the region of the plane of symmetry S, and this is tempered to substantially the same temperature as the attachment points 12e, 12f while the fluid is being conveyed.
[0055] The piston compressor 1 shown in
[0056] The cylinder 10 has a plurality of attachment points 12e, 12f, with one support arm 42, 43 attached to each of the attachment points 12e, 12f.
[0057] The attachment points 12e, 12f are arranged symmetrically with respect to each other in the longitudinal direction L.
[0058] The compressor according to the invention can be designed as a labyrinth piston compressor or as a compressor comprising at least one piston with sealing rings.
[0059] The method of operating a reciprocating compressor 1 includes a cylinder 10 and a piston 20 disposed therein, a carrier housing 60 having a crosshead 63 supported in the carrier housing 60, a spacer 40 connecting the cylinder 10 to the carrier housing 60, and a piston rod 24 extending in a longitudinal direction L and connecting the crosshead 63 to the piston 20, wherein the spacer 40 includes a plurality of support arms 42 extending in a longitudinal direction L, 43, wherein the support arms 42, 43 are each individually connected to the cylinder 10 via attachment points 12e, 12f, so that thermal energy, due to a thermal difference present between the attachment points 12e, 12f, is not exchanged directly in the circumferential direction with respect to the longitudinal direction L between the attachment points 12e, 12f, but is exchanged via the support arms 42, 43 extending in the longitudinal direction L.
[0060] In the process, the inlet fluid FE is preferably supplied at a temperature in the range between −162° C. and −40° C., and the outlet fluid FA is preferably heated by a temperature difference in the range between 100° C. and 150° C. due to compression.
[0061] During the process, the attachment points 12e, 12f each have a center point S3 in the region of the plane of symmetry S, which are tempered to essentially the same temperature while the fluid is conveyed.
[0062] In the method, the spacer 40 is U-shaped with a support section 41 and two support arms 42, 43 extending in the longitudinal direction L, wherein thermal energy is exchanged between the cylinder 10 and the carrier housing 60 via the support arms 42, 43 and the support section 41.
[0063] In the method, each attachment point (12e, 12f) has a width C in the circumferential direction of the cylinder 10 in the range between 10° and 30°, each attachment point 12e, 12f being arranged symmetrically with respect to the center point S3 so that thermal energy is transferred in the circumferential direction from the respective support arm 42,43 along the attachment point 12e, 12f.