Reciprocating compressor valve system with embedded sensor
12553428 · 2026-02-17
Assignee
Inventors
- Federico Cappelli (Florence, IT)
- Federico Puccinelli (Florence, IT)
- Guido GORI (Florence, IT)
- Riccardo Maleci (Florence, IT)
Cpc classification
F04B39/1053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2205/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B51/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2201/0602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2205/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2205/111
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B2205/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The valve system, to be used as a suction valve and/or as a discharge valve in a reciprocating compressor, comprises a valve body, at least one sensor mounted on the valve body and configured to detect a parameter associated to operation of the valve device, and a wireless communication unit electrically coupled to the at least one sensor and configured to transmit information detected by the at least one sensor; the at least one sensor is associated with a fixing member that is inserted in holes of the valve body and that seals the holes. The innovative valve system may comprise further at least one energy harvesting system, which could be for example thermoelectric or piezoelectric, located preferably in or on or at the valve body.
Claims
1. A valve system for a reciprocating compressor configured to compress a process gas, the valve system comprising: a valve device configured to control flow of the process gas, the valve device comprising: a valve body comprising a seat valve plate and a counter seat valve plate, both the seat valve plate and the counter seat valve plate having a central hole and a plurality of openings, the plurality of openings defining a process gas path; a fixing member disposed in the central hole to mechanically couple the seat valve plate and the counter seat valve plate; a movable member arranged between the seat valve plate and the counter seat valve plate, the moveable member configured to open and close the process gas path; a sensor disposed on the valve body and configured to detect a parameter associated with operation of the valve device; and a wireless communication unit electrically coupled to the sensor and configured to transmit information detected by the sensor, wherein the fixing member is configured to seal the central hole in the seat valve plate and the counter seat valve plate, and wherein the sensor is disposed on the fixing member.
2. The valve system of claim 1, wherein the fixing member comprises a rod-shaped portion with a blind hole configured to house at least one sensor.
3. The valve system of claim 2, wherein the blind hole is configured to house at least two sensors.
4. The valve system of claim 1, wherein the fixing member comprises a nut or a head configured to house at least one sensor.
5. The valve system of claim 1, wherein the sensor is configured to detect temperature or pressure of the process gas at the valve device.
6. The valve system of claim 1, wherein the sensor is configured to detect a temperature difference or a pressure difference of the process gas across the valve device.
7. The valve system of claim 1, wherein the valve system comprises two sensors that are configured to detect different physical properties.
8. The valve system of claim 1, wherein the sensor is configured to detect a strain in a fixing member of the valve body.
9. The valve system of claim 1, wherein the valve system comprises two sensors that are configured to detect different physical property differences.
10. The valve system of claim 1, wherein the sensor is configured to detect vibrations of the valve body or the movable member.
11. The valve system of claim 1, further comprising: a thermoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the thermoelectric energy harvesting system is disposed on the valve body.
12. The valve system of claim 1, further comprising: a thermoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the thermoelectric energy harvesting system is configured to generate electric energy based on a temperature difference across the valve device.
13. The valve system of claim 1, further comprising: a thermoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the thermoelectric energy harvesting system comprises a sensor configured to detect a temperature difference.
14. The valve system of claim 1, further comprising: a piezoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the piezoelectric energy harvesting system is disposed on the valve body.
15. The valve system of claim 1, further comprising: a piezoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the piezoelectric energy harvesting system is configured to generate electric energy based on a pressure difference across the valve device.
16. The valve system of claim 1, further comprising: a piezoelectric energy harvesting system configured to supply electric energy to at least one of the sensor or the communication unit, wherein the piezoelectric energy harvesting system comprises a sensor configured to detect a pressure difference.
17. A reciprocating compressor comprising at least one valve system according to claim 1.
18. A compressor, comprising: a discharge manifold; a cylinder; and a valve comprising: a valve body with a pair of plates spaced apart from one another; openings that penetrate through the pair of plates, the openings creating a flow path for process gas; a tie rod penetrating both the pair of plates; a spring disposed in at least one of the openings, the spring generating a spring force that opens and closes the process gas path; a sensor configured to detect a parameter associated with operation of the valve device; and a wireless communication unit electrically coupled to the sensor and configured to transmit information detected by the sensor.
19. The compressor of claim 18, wherein the valve is in position to operate as a suction valve.
20. The compressor of claim 18, wherein the valve is in position to operate as a discharge valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete appreciation of the disclosed embodiments of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF EMBODIMENTS
(7) According to an aspect, the subject-matter disclosed herein relates to a valve system which can be used in a reciprocating compressor. Typically, a reciprocating compressor has at least one suction valve to suck (uncompressed, i.e. at low pressure) process gas into the cylinder and at least one discharge valve to discharge (compressed, i.e. at high pressure) process gas out of the cylinder. The innovated valve system disclosed herein can be used both as a suction valve and discharge valve.
(8) The innovative valve system includes at least one sensor that measures a parameter just associated to operation of the valve; the parameter may be for example a temperature at the valve (for example just before, just after, or inside), a temperature difference across the valve, a pressure at the valve (for example just before, just after, or inside), a temperature difference across the valve, a vibration in the valve or in a component of the valve, a strain in the valve or in the component of the valve; there may be more than one sensor.
(9) The innovative valve includes also a wireless communication unit that transmits information generated by the sensor or sensors. Such information can be used to assess the health of the valve (for example its wear) without the need of any cable inside the reciprocating compressor, Furthermore, it is possible for example to determine the maintenance timing of the valve and/or the compressor and/or to predict the remaining life of the valve and/or the compressor.
(10) The innovative valve system may include further a system internal to valve system for generating electric energy for powering the sensor or sensors and/or the communication unit so that there is no need for any power supply cable connected to the valve system.
(11) Reference now will be made in detail to embodiments of the disclosure, an example of which is illustrated in the drawings. The example is provided by way of explanation of the disclosure, not limitation of the disclosure. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present disclosure without departing from the scope or spirit of the disclosure, in particular the scope of the appended claims. In the following description, similar reference numerals are used for the illustration of figures of the embodiments to indicate elements performing the same or similar functions. Moreover, for clarity of illustration, some references may be not repeated in all the figures.
(12) In
(13) In the reciprocating compressor 1000, the process gas is sucked into the cylinder 1004 by at least one suction valve, it gets compressed by the piston 1003 and it is discharged from the cylinder 1004 by at least one discharge valve. The valves are typically automatic valves which works thanks to the difference between the pressure inside the cylinder 1004 and the suction pressure of process gas (suction valves) and the pressure inside the cylinder 1004 and discharge pressure of process gas (discharge valves). For example, in
(14) The innovative valve system 100 is better represented in
(15) The valve system 100 comprises further at least one sensor 41, 42, 43 mounted on the valve body and configured to detect a parameter associated to operation of the valve and a wireless communication unit 60 electrically coupled to the at least one sensor 41, 42, 43 and configured to transmit information detected by the at least one sensor 41, 42, 43. In
(16) With non-limiting reference to
(17) According to another possibility, moveable members 50 may be a poppet or a slat. It is to be noted that moveable members 50 are arranged between the seat valve plate 20 and the counter seat valve plate 10; advantageously, the valve plates 10, 20 are spaced apart, for example by means of a fixed spacer arranged between the seat valve plate 20 and the counter seat valve plate 10.
(18) According to the embodiment shown in
(19) Advantageously, the moveable members 50 are mechanically connected to the counter seat valve plate 10, for example by means of an elastic element 51, in particular a spring. With non-limiting reference to
(20) According to the embodiment shown in
(21) Advantageously, the at least one sensor 41, 42, 43 mounted to the valve body, in particular to the fixing member 30, is configured to detect: a physical property of the process gas at the valve, or a physical property difference of the process gas across the valve, or a strain in the valve body, in particular in a fixing member of the valve body, or vibrations in the valve, in particular vibrations of the valve body or the movable member in particular specifically due to operation of the valve (not the movement of the piston).
(22) For example, the at least one sensor 41, 42, 43 is a strain gauge. Advantageously, the physical property of the process gas at the valve detected by the at least one sensor 41, 42, 43 is a temperature of the process gas or a pressure of the process gas for example just before the valve body or just after the valve body or inside the valve body (for example between the seat valve plate and the counter seat valve plate). Advantageously, the physical property difference of the process gas across the valve detected by the at least one sensor 41, 42, 43 is a temperature difference of the process gas or a pressure difference of the process gas across the valve. It is to be noted that a temperature of the gas flowing through the valve may correspond to a temperature of a component of the valve.
(23) According to a first embodiment, the valve system 100 comprises at least two sensors configured to detect different physical properties or different physical properties differences. For example, the fixing member 30 of the valve system 100 may have associated a first sensor 41 configured to detect a temperature of the process gas at the valve and a second sensor 42 configured to detect a pressure of the process gas at the valve. According a second embodiment, the fixing member 30 of the valve system 100 may have associated a first sensor 41 configured to detect a temperature difference of the process gas across the valve and a second sensor 42 configured to detect a pressure difference of the process gas across the valve. According to a third embodiment, the fixing member 30 of the valve system 100 may have associated a first sensor 41 configured to detect a temperature difference of the process gas across the valve and a second sensor 42 configured to detect vibrations in the valve. According to a fourth embodiment, the fixing member 30 of the valve system 100 may have associated a first sensor 41 configured to detect a first temperature of the process gas at a first portion of the valve, a second sensor 42 configured to detect a second temperature of the process gas at a second portion of the valve and a third sensor 43 configured to detect a pressure difference of the process gas across the valve. It is to be noted that many other different embodiments are possible.
(24) According to a preferred embodiment, shown for example in
(25) Advantageously, the valve system 100 comprises further a thermoelectric energy harvesting system 71 configured to supply electric energy to the at least one sensor 41, 42, 43 and/or to the communication unit 60. Preferably, the thermoelectric energy harvesting system 71 is located in or on or at the valve body.
(26) Advantageously, the thermoelectric energy harvesting system 71 is configured to generate electric energy based on a temperature difference across the valve and supply the electric energy generated to the at least one sensor 41, 42, 43 and/or to the communication unit 60. In particular, the temperature difference across the valve, for example the temperature difference between the cylinder 1004 and the discharge manifold, enable electrons in the thermoelectric energy harvesting system 71 to flow and generate electric energy.
(27) Advantageously, the thermoelectric energy harvesting system 71 comprises a sensor configured to detect a temperature difference. In other words, for example, at least one sensor may be integrated into the thermoelectric energy harvesting system 71.
(28) Advantageously, the valve system 100 comprises further a piezoelectric energy harvesting system 72 configured to supply electric energy to the at least one sensor 41, 42, 43 and/or to the communication unit 60. Preferably, the piezoelectric energy harvesting system 72 is located in or on or at the valve body.
(29) Advantageously, the piezoelectric energy harvesting system 72 is configured to generate electric energy based on a pressure difference across the valve and supply the electric energy generated to the at least one sensor 41, 42, 43 and/or to the communication unit 60. In particular, the pressure difference across the valve, for example the pressure difference between the cylinder 1004 and the discharge manifold, causes vibrations in the valve and enable electrons in the piezoelectric energy harvesting system 72 to flow and generate electric energy.
(30) Advantageously, the piezoelectric energy harvesting system 72 comprises a sensor configured to detect a pressure difference. In other words, for example, at least one sensor may be integrated into the piezoelectric energy harvesting system 72.
(31) According to the embodiment of
(32)
(33) According to both embodiments of
(34) According to both embodiments of
(35) According to both embodiments of
(36) According to the embodiment of
(37) According to a particularly advantageous embodiment that can be considered a combination of the embodiments of
(38) In
(39) As already explained, an innovative valve system identical or similar to valve system 100 may be advantageously installed and used in reciprocating compressors. Such reciprocating compressor may include one or more such valve system. Preferably, such reciprocating compressor comprises such valve system for each suction and discharge valves.
(40) As already explained, according to some embodiments, an innovative valve system identical or similar to valve system 100 may be advantageously installed as a replacement of a traditional valve system in a reciprocating compressor without the need of any adaptation to the reciprocating compressor. This is advantage derives in particular from the structure of the fixing member of such embodiments (see e.g. fixing members in