The following description relates to heat exchanger systems and, more specifically, to heat exchanger systems with a variable diffuser drive system.
Heat exchanger systems often employ centrifugal compressors to compress fluids as part of a vapor-compression cycle. The centrifugal compressors include diffusers through which compressed fluids flow. Such centrifugal compressor diffusers exhibit certain issues at various operational loads. For example, when part-load conditions are in effect, centrifugal compressor diffusers can be noisy and have high vibratory moments. On the other hand, when full-load conditions are in effect, centrifugal compressor diffusers may be relatively inefficient due to having a narrow working envelope. In addition, centrifugal compressors and their drive systems can be complex.
According to an aspect of the disclosure, a system is provided and includes compressor. The compressor further includes a diffuser frame, a gas or oil actuator and a drive system. The diffuser frame defines a first channel through which compressed fluids are flowable, a second channel intersecting the first channel and a third channel extending from the second channel. The gas or oil actuator includes a piston and a head integrally coupled to the piston. The head and the piston are disposable in the second and third channels, respectively. The piston is movable in forward or reverse directions through the third channel such that the head is movable through the second channel and into or out of the first channel, respectively. The drive system is at least partially disposable in the third channel and configured to drive forward and rearward movements of the piston.
In accordance with additional or alternative embodiments, the compressor is fluidly interposed between a cooler and a condenser.
In accordance with additional or alternative embodiments, the compressor is receptive of lubrication from a pump, including a pump outlet, and an oil sump of a lubrication system.
In accordance with additional or alternative embodiments, the drive system is characterized in that the third channel is fluidly communicative with the cooler and the condenser and the oil sump and the pump outlet.
In accordance with additional or alternative embodiments, the gas or oil actuator includes multiple pistons.
In accordance with additional or alternative embodiments, the drive system is re-configurable during operations thereof.
In accordance with additional or alternative embodiments, the drive system includes a motor disposable in the third channel.
In accordance with additional or alternative embodiments, the first and second channels are annular, the third channel is axial, plural in number and arranged at multiple, evenly distributed annular locations and the head includes an annular body.
In accordance with additional or alternative embodiments, the drive system comprises a position sensor disposed within the second channel, the position sensor configured to sense a position of the head and a control element configured to control the drive system in accordance with a sensing of the position of the head by the position sensor.
According to an aspect of the disclosure, a centrifugal compressor is provided with variable diffusion and includes a centrifugal compressor impeller, a gas or oil actuator disposed downstream from the centrifugal compressor impeller and including a piston and a head integrally coupled to the piston, a diffuser frame in which the centrifugal compressor impeller is rotatably disposable and a drive system. The diffuser frame defines a first channel through which compressed fluids flow from the centrifugal compressor impeller, a second channel in which the head is disposable and which intersects with the first channel and a third channel in which the piston is disposable and which extends from the second channel. The drive system is at least partially disposable in the third channel to drive movements of the piston toward and away from positions at which the head at least partially blocks the first channel.
In accordance with additional or alternative embodiments, the drive system is receptive of pressurized fluids.
In accordance with additional or alternative embodiments, the gas or oil actuator includes multiple pistons.
In accordance with additional or alternative embodiments, the drive system is re-configurable during operations thereof.
In accordance with additional or alternative embodiments, the drive system includes a motor disposable in the third channel.
In accordance with additional or alternative embodiments, the first and second channels are annular, the third channel is axial, plural in number and arranged at multiple, evenly distributed annular locations and the head includes an annular body.
In accordance with additional or alternative embodiments, the drive system comprises a position sensor disposed within the second channel and configured to sense a position of the head and a control element configured to control the drive system in accordance with a sensing of the position of the head by the position sensor.
According to an aspect of the disclosure, a method of operating a variable diffuser drive system of a centrifugal compressor is provided. The centrifugal compressor includes a diffuser frame that defines a first channel through which compressed fluids flow, a second channel in which a gas or oil actuator head is disposable and which intersects with the first channel and a plurality of third channels in which at least one gas or oil actuator piston, to which the head is integrally coupled, is disposable and which extend from the second channel. The method includes determining a load condition of the centrifugal compressor and driving forward and reverse movements of the at least one piston in the third channel toward and away from positions at which the head at least partially blocks the first channel in accordance with the load condition.
In accordance with additional or alternative embodiments, the driving includes driving the movements of the at least one piston in concert.
In accordance with additional or alternative embodiments, the driving includes at least one of hydraulic driving and motorized driving.
In accordance with additional or alternative embodiments, the driving includes re-configuring a drive system at least partially disposed in the third channel.
These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.
The subject matter, which is regarded as the disclosure, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features and advantages of the disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.
As will be described below, a variable diffuser drive system is provided and configured to move a piston into different positions directly using high pressure refrigerant from a condenser, high pressure oil from an oil pump or linear motor actuation.
With reference to
The compressor 11 may include or be provided as a centrifugal compressor that operates by compressing fluids as a result of a rotation of the compressor 11 about a longitudinal axis thereof. Such rotation can be supported by bearings at opposite ends of the compressor 11, which receive lubrication from a lubrication system 15. The lubrication system 15 includes an oil sump 150 and a pump 151, which pumps pressurized oil from the oil sump 150, through the bearings and back to the oil sump 150.
With continued reference to
In greater detail, as shown in
As shown in
With continued reference to
In accordance with embodiments, the head 41 is ring-shaped and includes an annular body 410 (see
With the configuration of the first, second and third channels 31, 32 and 33 and with the construction of the gas or oil actuator 40 and the drive system 50, the variable diffusion capability of the compressor 11 is such that the movement of the head 41 into the first channel 31 can be controlled in accordance with various conditions, such as, but not limited to, full-load and part-load conditions.
In accordance with exemplary embodiments and, as shown in
In the case of the additional piping 56 extending between each of the controllable valve elements 51 and the cooler 14 and the condenser 13, the controllable valve elements 51 may be operable such that the diffuser full-open and the diffuser full-closed positions are achievable.
For example, at 75%/100% load capacity conditions, the controllable valve elements 51 can be operated or configured such that the first hydraulic chambers 53 are fluidly communicative with the condenser 13 and the second hydraulic chambers 55 are fluidly communicative with the cooler 14. This arrangement causes the pistons 42 to move in the reverse or rearward direction and thus urges the head 41 to retract in the reverse or rearward direction from the first channel 31 toward the diffuser full-open position. Meanwhile, at part load conditions, the controllable valve elements 51 can be re-configured during operational conditions and then operated or configured such that the first hydraulic chambers 53 are fluidly communicative with the cooler 14 and the second hydraulic chambers 55 are fluidly communicative with the condenser 13. This arrangement causes the pistons 42 to move in the forward direction and thus urges the head 41 to move into the first channel 31 toward the diffuser full-closed position.
In the case of the additional piping 56 extending between each of the controllable valve elements 51 and the oil sump 150 and the outlet of the pump 151, the controllable valve elements 51 may be operable such that the diffuser full-open and the diffuser full-closed positions are achievable.
For example, at 75%/100% load capacity conditions, the controllable valve elements 51 can be operated or configured such that the first hydraulic chambers 53 are fluidly communicative with the outlet of the pump 151 and the second hydraulic chambers 55 are fluidly communicative with the oil sump 150. This arrangement causes the pistons 42 to move in the reverse or rearward direction and thus urges the head 41 to retract in the reverse or rearward direction from the first channel 31 toward the diffuser full-open position. Meanwhile, at part load conditions, the controllable valve elements 51 can be re-configured during operational conditions and then operated or configured such that the first hydraulic chambers 53 are fluidly communicative with the oil sump 150 and the second hydraulic chambers 55 are fluidly communicative with the outlet of the pump 151. This arrangement causes the pistons 42 to move in the forward direction and thus urges the head 41 to move into the first channel 31 toward the diffuser full-closed position.
In accordance with exemplary embodiments and, as shown in
In the case of the additional piping 56 extending between each of the controllable valve elements 51 and the cooler 14 and the condenser 13, the controllable valve elements 51 may be operable such that the diffuser full-open and the diffuser full-closed positions are achievable.
For example, at 75%/100% load capacity conditions, the controllable valve elements 51 can be operated or configured such that the first hydraulic chambers 53 are fluidly communicative with the condenser 13 and the second, third and fourth hydraulic chambers 55, 58 and 60 are fluidly communicative with the cooler 14. This arrangement causes the pistons 42 to move in the reverse or rearward direction and thus urges the head 41 to retract in the reverse or rearward direction from the first channel 31 toward the diffuser full-open position. Meanwhile, at 50% load capacity conditions, the controllable valve elements 51 can be re-configured during operational conditions and then operated or configured such that the first, second and third hydraulic chambers 53, 55 and 58 are fluidly communicative with the cooler 14 and the fourth hydraulic chambers 60 are fluidly communicative with the condenser 13. This arrangement causes the pistons 42 to move in the forward direction and thus urges the head 41 to move into the first channel 31 toward a diffuser partial-closed position. At part load or 25% load capacity conditions, the controllable valve elements 51 can be re-configured during operational conditions and then operated or configured such that only the second hydraulic chambers 55 are fluidly communicative with the condenser 13 and the first, third and fourth hydraulic chambers 53, 58 and 60 are fluidly communicative with the cooler 14. This arrangement causes the pistons 42 to move in the forward direction and thus urges the head 41 to move into the first channel 31 toward a diffuser full-closed position.
In accordance with exemplary embodiments and, as shown in
In accordance with further embodiments and, as shown in
That is, with reference to
With reference to
Benefits of the features described above are a reduced number of components and increased simplicity with lowered costs as well as increased reliability and simplified design.
While the disclosure is provided in detail in connection with only a limited number of embodiments, it should be readily understood that the disclosure is not limited to such disclosed embodiments. Rather, the disclosure can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the disclosure. Additionally, while various embodiments of the disclosure have been described, it is to be understood that the exemplary embodiment(s) may include only some of the described exemplary aspects. Accordingly, the disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
Number | Date | Country | Kind |
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201810314031.2 | Apr 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/US2019/026559 | 4/9/2019 | WO | 00 |