Compressor comprising purging and method for purging the compressor housing with purge gas
09726169 · 2017-08-08
Assignee
Inventors
Cpc classification
F16J15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0207
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B53/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In order to prevent working medium from accumulating in the compressor housing (2) of a piston compressor (1) in a simple manner by means of a sealing of the piston rod (7) in the form of sealing medium barrier supplied by a hydraulic unit (12), it is provided that a ventilator (32) and a sealing medium container (37), which is partially filled with sealing medium, are provided in the hydraulic unit (12), wherein the ventilator (32) suctions air from the free space of the sealing medium container (37), and the free space (45) in the sealing medium container (37) is connected via a line (15, 17) to the compressor housing (2), and an opening (16) is provided at the compressor housing (2) for connecting the interior of the compressor housing (2) to a purge gas reservoir (18).
Claims
1. A piston compressor comprising a sealing arrangement arranged in a compressor housing for sealing a reciprocating piston rod of the piston compresso, the sealing arrangement having a first and a second sealing element which are arranged axially spaced apart in a recess of the sealing arrangement, wherein a feed line for a sealing medium is provided, which feed line is connected to the recess, and the sealing elements are pressurized by the sealing medium, and wherein a hydraulic unit is provided for generating the pressure of the sealing medium, wherein a ventilator and a sealing medium container, which is partially filled with sealing medium, are provided in the hydraulic unit, wherein the ventilator suctions air from the free space of the sealing medium container, and that the free space in the sealing medium container is connected via a line to the compressor housing, and an opening is provided at the compressor housing for connecting the interior of the compressor housing to a purge gas reservoir.
2. The piston compressor according to claim 1, wherein a ventilator chamber is provided in the hydraulic unit, in which ventilator chamber the ventilator is arranged and the ventilator chamber is connected to the free space in the sealing medium container.
3. The piston compressor according to claim 1, wherein the sealing medium container is closed by a separating part, and a recess is arranged in the separating part, via which recess the ventilator suctions air from the sealing medium container.
4. The piston compressor according to claim 1, wherein the line is implemented as a drainage line for sealing medium or as a separate suction line.
5. The piston compressor according to claim 1, wherein a heat exchanger is arranged in the hydraulic unit, through which heat exchanger the sealing medium from sealing medium container is circulated and over which the air flow flows that is blown out by the ventilator.
6. A method for purging a compressor housing of a piston compressor in which a sealing arrangement for sealing a reciprocating piston rod of the piston compressor is arranged, and the sealing arrangement is supplied with pressurized sealing medium via a hydraulic unit, and a ventilator in the hydraulic unit suctions air from the interior of a sealing medium container, wherein the interior of the sealing medium container is connected to the compressor housing so that purge gas is suctioned through an opening in the compressor housing and the compressor housing is purged therewith.
7. The method according to claim 6, wherein the ventilator is operated for a given time period prior to the startup of the piston compressor.
Description
(1) The present invention is explained in greater detail below with reference to the
(2)
(3)
(4)
(5) The piston compressor schematically illustrated in
(6) For sealing the piston rod 7, a first sealing arrangement 10 in the form of a sealing medium barrier is provided. The first sealing arrangement 10 is arranged here in the spacer 4. Between the spacer 4 and the crankcase 3, a second sealing arrangement 11 can be arranged, e.g. in the form of radially and tangentially cut or segmented sealing rings, known from the prior art, that are arranged axially next to one another. The sealing arrangement 11 can also comprise wiper rings by means of which crankcase oil can be wiped off from the piston rod 7. Likewise, a second spacer can also be provided, e.g., between the spacer 4 and the crankcase 3, wherein for sealing, a further sealing arrangement can also be provided in the further spacer.
(7) The first sealing arrangement 10 is explained in greater detail with reference to
(8) The sealing elements 22 can rest axially against the axial partition walls of the chamber plates 24, 25. As an alternative, support rings 21 can be provided against which the sealing elements rest axially, wherein the support rings 21 each rest axially against the axial partition wall of the recess 20, here, against the radial leg of the chamber plate 24, 25. The support rings 21 prevent that the sealing element 22 extrudes, due to the high pressure acting on the sealing element 22, into the annular gap between the chamber plate 24, 25 and the piston rod 7.
(9) Furthermore, a feed line 27 is provided in the sealing arrangement 10, which feed line is connected to the recess 20 and via which a sealing medium such as, e.g., oil can be fed into the recess 20 under a pressure p.sub.oil that is higher than the pressure p.sub.d to be sealed. In the case of a dynamically changing working pressure p.sub.d, naturally, p.sub.oil>p.sub.d,max must apply, or the pressure of the sealing medium is dynamically adjusted to the pressure of the working medium so that always p.sub.oil>p.sub.d applies. The sealing medium acts radially on the outside and axially on the sealing elements 22 which therefore are pressed against the partition walls of the recess 20 and thus provide sealing. Thereby, a sealing medium barrier is created that prevents the gaseous working medium to be sealed of the piston compressor 1 from leaking along the piston rod 7.
(10) The sealing element 22 rests with its radially inner circumferential surface, or with a portion thereof, against the piston rod 7 against which it is pressed with the high pressure p.sub.oil of the sealing medium. This results in high frictional load which the sealing element 22 has to resist for a sufficiently long time. The sealing element 22 therefore is preferably made from a tribologically advantageous and, at the same time, mechanically highly loadable and temperature-stable material, preferably plastic material such as, e.g., modified polyetherketone (PEEK) or polyphenylene sulfide (PPS) materials. The pressure p.sub.oil of the sealing medium generates forces which act on the sealing element 22 and which press the sealing element 22 axially against the partition wall of the recess 20 or against the support ring 11 and radially against the piston rod 7. As a result, at a sealing medium pressure p.sub.oil of ca. 50 bar, friction forces in the amount of several hundred Newton, typically between 100 N and 250 N, and friction power in the amount of several hundred Watt, typically between 500 W and 1000 W, can occur between the sealing element 22 and the piston rod 7.
(11) On that axial front surface of the sealing element 22 that faces towards the support ring 21 or the axial partition wall of the recess 20, a spring ring 23 can be placed on which a spring element 28 acts in the axial direction so as to axially preload the sealing element 22 against the partition wall of the recess 20. The spring element 28 can be arranged here between the spring ring 23 and an axial limit stop in the sealing arrangement 10, here, e.g., the separating plate 26. The spring element 28 is implemented, e.g., in the form of a plurality of spiral springs that are distributed over the circumference. Thus, the position of the sealing element 22 at standstill of the piston compressor 1 is defined in order to enable a controlled startup of the piston compressor 1. It is also possible here that the spring ring 23 rests via a shoulder against the radially outer circumferential surface of the sealing element 22 in order to fix the radial position of the spring ring 23. The spring ring 23 is preferably configured as a rigid one-piece ring, e.g. a metallic ring.
(12) In addition, apart from the necessary sealing element 22, further sealing elements or wiper rings can be arranged in the sealing arrangement 10, even in their own chamber plates, as described, e.g., in EP 2 489 907 A1 or WO 2010/079227 A1.
(13) At the crankcase end, a drainage line 15 can also end in the sealing arrangement 10 in order to discharge sealing medium wiped off from the piston rod 7, as indicated in
(14) For supplying the sealing arrangement 10, a hydraulic unit 12 is provided by means of which the sealing medium is fed with high pressure p.sub.oil to the sealing arrangement 10 via a sealing medium line 13 that is connected to the feed line 27 in the sealing arrangement 10. The sealing medium can be fed back again to the hydraulic unit 12 via a discharge line 14, e.g., in an optional circulation operation for the sealing medium.
(15) By the reciprocating piston rod 7, the sealing medium film is transported out of the sealing arrangement 10 and wiped off by the piston rod, e.g., by means of its own wiper rings arranged in the sealing arrangement 10, or by the sealing element 22 itself. The wiped-off sealing medium is collected in the sealing arrangement 10 and is fed back to the hydraulic unit 12 via a drainage line 15.
(16) The hydraulic unit 12 is described in greater detail with reference to
(17) The hydraulic pump 36 suctions sealing medium from the sealing medium container 37 and feeds the sealing medium via a pressure line 41 to a hydraulic control unit 35 for controlling the pressure p.sub.oil of the sealing medium and/or the volume flow of the sealing medium. The sealing medium line 13 is connected to the hydraulic control unit 35. Likewise, the discharge line 14 for recirculating the sealing medium from the sealing arrangement 10 can optionally be connected to the hydraulic control unit 35, for which reason a sump line 42 runs from the hydraulic control unit 35 back into the sealing medium container 37. However, the discharge line 14 can also run directly into the sealing medium container 37. The pressure p.sub.oil of the sealing medium thus can also be adjusted by pressure control devices in the discharge line 14. Under certain circumstances, the control unit 35 can also be dispensed with. The drainage line 15 from the sealing arrangement 10 ends in the sealing medium container 37.
(18) For cooling the sealing medium in the sealing medium container 37, a heat exchanger 33 can be provided in the hydraulic unit 12, over which heat exchanger the air flow flows that is blown out by the ventilator 32 and through which the sealing medium is pumped, as indicated in
(19) The sealing medium container 37 is arranged here in the lower part of the hydraulic unit 12 and is closed by a separating part 38, e.g., a cover. The ventilator 32 and the drive motor 31 are arranged at the separating part 38. For this, a ventilator support 43 can be arranged at the separating part 38, which ventilator support rests on the separating part 38 and via which the ventilator 32 is fastened to the separating part 38, e.g., by means of screws. By the separating part 38, the interior of the hydraulic unit 12 or the unit housing 30 is divided into the sealing medium container 37, which is partially filled with sealing medium, and into a ventilator chamber 39 in which at least the ventilator 32 is arranged. However, the ventilator chamber 39 and the sealing medium container 37 can of course also be locally separated and can each be provided with its own housing.
(20) The ventilator 32 suctions air from the ventilator chamber 39 via the suction slots 40 and blows the suctioned air to the outside via outlet slots 34, optionally via the heat exchanger 33. In the separating part 38, a recess 44, e.g., one or a plurality of holes is provided. Thus, the ventilator 32 suctions air not only from the ventilator chamber 39 but to a certain extent also from the sealing medium container 37, as a result of which negative pressure is generated in the free space 45 (the space that is not filled with sealing medium) of the sealing medium container 37. In the case of separate housings for the ventilator 32 and the sealing medium container 37, the sealing medium housing 37 would be connected in this case to the ventilator chamber 39 via the recess and a suitable line connected thereto. This negative pressure is utilized according to the invention for purging the compressor housing 2 with purge gas in order to keep the concentration of working medium in the compressor housing 2 below a certain limit. Here, purging is carried out permanently when the ventilator 32 runs, wherein a controller can be provided in the hydraulic unit for operating the ventilator 32, e.g., based on the temperature in the hydraulic unit or the temperature of the sealing medium. However, the ventilator 32 can also run permanently or can be coupled to the operating times of the piston compressor.
(21) For this, the compressor housing 2, here, e.g., the spacer 4, is connected to the free space 45 in the sealing medium container 37 via a suction line 17 and thus is connected to negative pressure. Thus, negative pressure is also generated in the compressor housing 2, here, in the spacer 4, for example. In the compressor housing 2, an opening 16 is provided, e.g., in the form of a suitable valve, which connects the compressor housing 2 to a purge gas reservoir 18, in the simplest case to the surrounding area of the compressor, so that purge gas or, in the simplest case, ambient air is suctioned. In this manner, sufficient purging of the compressor housing 2, or of a part thereof (here, the spacer 4) with purge gas can be ensured. The purging volume can be adjusted here by adjusting the negative pressure, e.g., by corresponding dimensioning of the recess 44 in the separating part 38. The ventilator 32 provided in the hydraulic unit 12 thus can be used at the same time for permanently purging the compressor housing.
(22) The recess 44 can preferably also be arranged in the region of the ventilator support 43, wherein a corresponding recess is also provided here in the ventilator support 43, as indicated in
(23) Due to the very small amounts of drainage of sealing medium, it is also possible to use the drainage line 15 instead of a separate suction line 17 for purging the compressor housing 2, whereby the suction line 17 can also be dispensed with. For this, the drainage line 15 simply needs to be connected to the interior of the compressor housing 2, or the drainage line 15 is already connected to the compressor housing 2 (which is usually the case) via the design configuration of the sealing arrangement 10.
(24) It could also be provided for the operation of the piston compressor 1 that prior to starting up the piston compressor 1, the ventilator is operated for a given time period so as to first purge the compressor housing 2 before the piston compressor 1 is started up.
(25) In order to further increase the operational safety of the piston compressor, a gas sensor can also be arranged in the compressor housing 2 in order to detect possible inadmissible gas concentrations of working medium which can occur, e.g., in the case of a failure of the purging system, and to switch off the piston compressor, if necessary, or to output an error message or warning message.