WO2010138403A1 - Removal of moisture from process gas - Google Patents
Removal of moisture from process gas Download PDFInfo
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- WO2010138403A1 WO2010138403A1 PCT/US2010/035721 US2010035721W WO2010138403A1 WO 2010138403 A1 WO2010138403 A1 WO 2010138403A1 US 2010035721 W US2010035721 W US 2010035721W WO 2010138403 A1 WO2010138403 A1 WO 2010138403A1
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- temperature
- process gas
- condensate
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D53/00—Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
- B01D53/26—Drying gases or vapours
- B01D53/265—Drying gases or vapours by refrigeration (condensation)
Definitions
- Conventional compressor systems may include one or more dehydration systems configured to remove moisture from a process gas before it enters a compressor.
- a dehydration system may include a glycol system that is capable of removing all free moisture and all but about 10ppm of water (or less).
- glycol systems may be expensive, because the component parts must be made of highly expensive alloys that can tolerate corrosive conditions.
- a conventional compressor system may include an cooling unit configured to coo! a process gas to produce condensate, and then pass the cooled gas containing the condensate to a demister configured to remove condensate from the cooled process gas.
- demisters are known to be incapable of removing ali condensate from a process gas.
- an cooling unit/demister configuration may, at best, leave the process gas saturated with water, and depending on the efficiency of the demister, an cooling unit/demister configuration could even leave condensate in the process gas.
- an exemplary method for operating a compressor system.
- the method may include providing a process gas containing water vapor to a cooling unit.
- the coo ⁇ ng unit may be configured to cool the water vapor to a temperature below the dew point, Cooling the water vapor to a temperature below the dew point causes water vapor present in the process gas to form a condensate, At least a portion of the condensate is then removed.
- the process gas, along with any remaining condensate, is then directed to a heat exchanger configured to heat the process gas and any remaining condensate to a temperature above the dew point Heating the process gas and any remaining condensate to the temperature above the dew point causes any remaining condensate to evaporate, thus creating a dry and non- corrosive gas to be supplied to the compressors.
- Exemplary embodiments of the disclosure may further provide an exemplary method for operating a compressor system that may include providing a process gas having water vapor to a moisture removal unit located at the front of the turbomachine upon starting the turbomachine.
- the moisture removal unit may include a heating unit configured to heat the process gas to a temperature at which the condensate evaporates.
- the method may also include providing a dry gas to the turbomachine upon shutting down the turbomachine, and providing an increasing amount of heated water to the heating unit as the turbomachine shuts down.
- Exemplary embodiments of the disclosure may further provide an exemplary moisture removal unit for a compressor system, which may include a cooling unit and a heating unit.
- the cooling unit may include a means for cooling a process gas containing water vapor to a first temperature, wherein the water vapor forms a condensate at the first temperature, and the means for cooling the process gas produces residual heat when cooling the process gas.
- the cooling unit may also include a means for removing at least a portion of the condensate from the process gas, wherein any condensate not removed is a remaining condensate.
- the heating unit may include a means for using the residual heat to heat the remaining condensate to a second temperature, wherein the remaining condensate in the process gas evaporates at the second temperature.
- Exemplary embodiments of the disclosure may further provide an exemplary method for operating a turbomachine, wherein the method may include providing, a process gas having water vapor to a moisture removal unit located at the front of the turbomachine upon starting the turbomachine.
- the moisture removal unit may include a cooling unit and a heating unit.
- the cooling unit may include a means for cooling a process gas comprising water vapor to a first temperature, wherein the water vapor forms a condensate at the first temperature.
- the means for cooling the process gas may produce residual heat when cooling the process gas.
- the cooling unit may also include means for removing at least a portion of the condensate from the process gas, wherein any condensate not removed is a remaining condensate.
- the heating unit may be configured to heat the process gas to a temperature at which the remaining condensate evaporates.
- THeHiethod may furthl ⁇ rinc ⁇ di] ⁇ turbomachine, and providing an increasing amount of heated water to the heating unit as the turbomachine shuts down.
- Exemplary embodiments of the disclosure may further provide an exemplary method of operating a compressor system.
- the method may include providing heated water to one or more compressors of the compressor system upon starting the compressor system, providing a dry gas into the compressor system upon shutting down the compressor system, and providing heated water to one or more cooling units of the compressor system upon shutting down the compressor system.
- Figure 1 illustrates a schematic view of an exemplary compressor system according to one or more aspects of the present disclosure.
- Figure 2 illustrates a flow chart of an exemplary method for reducing corrosion in compressors according to one or more aspects of the present disclosure.
- Figure 3 illustrates a schematic view of an exemplary compressor according to one or more aspects of the present disclosure.
- Figure 4 illustrates a flow chart of an exemplary method for reducing corrosion in compressors according to one or more aspects of the present disclosure.
- first and second features are formed in direct contact
- additional features may be formed interposing the first and second features, such that the first and second features may not be in direct contact.
- exemplary embodiments presented below may be combined irTa ⁇ y combtnatiorrof ways;-/. e— any element from arre)cemp!ary embodiment may be " used in any other exemplary embodiment, without departing from the scope of the disclosure.
- FIG. 1 illustrates a turbomachine system 100 according to an exemplary embodiment of the present disclosure.
- a turbomachine may include any rotating machinery configured to act on or with a gas, such as a turbine, compressor, turboset, etc.
- the turbomachine system 100 may include a plurality of stages 102, 104, and 106, which may include compressors 1 10, 120, and 130, respectively.
- compressor 110 may be a D16A6 model number compressor manufactured by Dresser-Rand Company
- compressor 120 may be a D16R7B model number compressor manufactured by Dresser-Rand Company
- compressor 130 may be a D12R9 model number compressor manufactured by Dresser-Rand Company.
- compressors 110, 120, 130 may be any compressor manufactured by any manufacturer.
- Compressor 110 may include two compressor inlets 132a-b and one compressor outlet 133. Further, compressor 120 may include two inlets 134a-b and two outlets 136a-b. Compressor 130 may include two inlets 138a-b, and two outlets 139a-b. Other compressor configurations are also within the scope of the present disclosure.
- the turbomachine system 100 may further include one or more cooling units 150a-d, Each of the cooling units 150a-d, may include a heat exchanger (not shown) that is configured to cool a process gas to a temperature and pressure below the dew point, thereby causing formation of condensate.
- each of the cooling units 150a-d may include water-cooled heat exchangers, such as shell and tube configurations.
- Each of the cooling units 150a-d may include air-cooled heat exchangers rather than water-cooled heat exchangers.
- the cooling units 150a-d may include refrigeration units in lieu of heat exchangers.
- the cooling units 150a-d may include any conventional heat exchanger configuration.
- the heat exchanger (not shown) of cooling unit 150 may be referred to herein as a "primary heat exchanger.”
- the primary heat exchanger may be configured to cool a process gas to a temperature and pressure below the dew point.
- Cooling unit 150c and heating unit 170 may form a moisture removal unit 171.
- Heating unit 170 may include a "secondary heat exchanger" (not shown) that is configured to heat a process gas to a temperature and pressure above the dew point, and thereby cause evaporation of condensate.
- Heating unit 170 may include an inlet 174, which receives output from outlet 154c of cooling unit 150c. Further, heating unit 170 may include an outlet 176 that is coupled to compressor inlet 138a.
- Other heating unit configurations are also within the scope of the present disclosure.
- cooling unit outlet 153c may be coupled to heat exchanger inlet 175, and a valve 178 may be coupled between the cooling unit outlet 153c and the heat exchanger inlet 175.
- a process control mechanism 177 may be communicably coupled to the moisture removal unit 171.
- Each of the compressors 110, 120, 130 may be coupled to cooling units 150a-d and heating unit 170.
- the compressors 110, 120, 130 may be coupled to the cooling units 150a-d and heating unit 170, as shown in Figure 1 and described herein.
- Compressor 110 may be coupled to an incoming process gas source 180, which is configured to provide process gas at compressor inlets 132a-b.
- Compressor outlet 133 may be coupled to cooling unit inlet 152a.
- Cooling unit outlet 154a may be coupled to compressor inlet 134a.
- Each of the condensate discharges 158a-d may optionally be coupled to a condensate recycling system (not shown). The condensate recycling system may direct all removed condensate to a single location.
- Compressor outlet 136a may be coupled to cooling unit inlet 152b, and cooling unit outlet 154b may be coupled to compressor inlet 134b. Further, compressor outlet 136b may be coupled to cooling unit inlet 152c. Cooling unit outlet 154c may be coupled to heating unit inlet 174, and heating unit outlet 176 may be coupled to compressor inlet 138a. [0026] Compressor outlet 139a may be coupled to coohng unit inlet 152d, and cooling unit outlet 154d may be co ⁇ pletTttrcompressor inlet 138b.- Finallyrcompressor outlet 139b may be coupled to another turbomachine system 100 component, such as a cooling unit or a compressor, in an additional compressor stage that is not shown in Figure 1.
- another turbomachine system 100 component such as a cooling unit or a compressor
- the compressor 130 may be the final stage of a multi-stage compressor system.
- Other coupling configurations among the compressors 1 10, 120 and 130, the cooling units 150a-d, and the heating unit 170 are aiso possible according to other exemplary embodiments of the present disclosure.
- Operation of the turbomachine system 100 may begin at stage 102, wherein incoming process gas may be provided to the compressor inlets 132a- b.
- the compressor 110 may compress the process gas, and may direct the process gas from compressor outlet 133 to cooling unit iniet 152a.
- the cooling unit 150a may lower the temperature and pressure of the process gas below the dew point to produce condensate, and remove the resulting condensate from the process gas.
- stage 104 the compressor 120 may further compress the process gas received from the cooling unit 150a.
- the process gas may then exit compressor outlet 136a and flow to cooling unit iniet 152b.
- Cooling unit 150b may once again lower the temperature and pressure of the process gas below the dew point to form condensate and remove the condensate from the process gas.
- the cooling unit 150b may use various conventional methods of removing condensate from the process gas (e.g., demisters).
- the removed condensate may collect at condensate discharge 158b.
- the condensate may be evaporated, or directed to a recycling system (not shown).
- the process gas may then flow from cooling unit outlet 154b to compressor inlet 134b, where the process gas may be compressed even further.
- the moisture removal unit 171 may further dehydrate the process gas.
- the process gas may flow from compressor outlet 136b to cooling unit inlet 152c.
- Cooling unit 150c may cool the process gas to a temperature and pressure below the dew point. As a result of the cooling, water vapor in the process gas becomes condensate.
- the cooling unit 150c may use various conventional methods of removing condensate from the process gas (e.g., demisters).
- demisters demisters.
- cooling the process gas may produce residual heat. The residual heat may be transferred to the cooling water, thereby producing heated water. The heated water may be directed to the inlet 175 of heating unit 170.
- a portion of the removed condensate may collect at condensate discharge 158c, At the condensate discharge 158c, a portion of the condensate may be evaporated, or directed to a recycling system (n ⁇ tshown).
- the process gas may flow from cooling unit outlet 154c to heat exchanger inlet 174.
- the secondary heat exchanger of the heating unit 170 may be configured to vaporize any condensation remaining in the process gas by heating the process gas and any remaining condensate to a temperature and pressure above the dew point.
- the heating unit 170 may use the heated water to heat the process gas.
- the temperature of the process gas entering the cooling unit 150c at cooling unit inlet 152c may be about 300 0 F, and the temperature of the cooling water entering the cooling unit 150c at cooling unit inlet 156 may range from ambient temperature to about 11O 0 F. Sf the process gas and the cooling water flow in the cooling unit 150c according to a counter flow setup, the exiting water temperature will have a temperature that is intermediate between the incoming water temperature and the incoming gas temperature. [0033] If the heat exchanger of the cooling unit 150c (not shown) is properly designed to the heat load, the exiting water temperature will approach the incoming gas temperature.
- the exiting water will likely contain adequate heat content to evaporate the remaining condensate. Even with co-current flow, there will likely be enough heat in the exiting water to evaporate the remaining condensate. However, the heat transfer area of the heating unit 170 will need to be larger than with the co-current flow scenario than the counter-current flow scenario. [0034] In order to minimize the loss of compression efficiency that may result from (1 ) the pressure loss in going through a second heat exchanger, and (2) the temperature rise of the process gas in the heating unit 170, the heating unit 170 may be configured to minimize the pressure drop, and may use a controlled heat input to achieve the target temperature increase.
- the process gas can be cooled to a temperature that is several degrees lower than the dew point temperature before moving the gas to the next compressor, and then heating the process gas to above the dew point.
- the heating unit 170 may use means other than heated water to heat the process gas, including without limitation rod or wire heaters, electricity, gaseous fuel, or fuel oil.
- each means for heating the process gas may be used alone or in combination.
- the other means for heating the process gas may be controlled by either the heating unit 170 or a process control mechanism as described above.
- the quantity of water to be removed and the composition and quantity of gases involved are known, then it may be possible to calculate the amount of energy required to heat the process gas to a temperature and pressure above the dew point.
- variables are unknown, it may be possible to determine their values, because heat capacities of most commercial gas mixtures are well known, or may be estimated.
- it may be possible to calculate the amount of heat necessary to heat the process gas and any condensate present in the composition to a temperature and pressure above the dew point, even if the on!y known variables are the water content of the incoming gas and the quantity of water that was condensed and removed.
- Such variables may be determined via conventional sensors located at various places in the turbomachine system 100.
- the process control mechanism 177 may be communicably coupled to a sensor (not shown) that is configured to detect the quantity of water still present in the process gas.
- the process control mechanism 177 may estimate the amount of energy required to vaporize water remaining in the process gas based on input from a sensor (not shown), and may control valve 178, so as to regulate the amount of heated water entering the heating unit 170.
- the process control mechanism may control the valve 178, and thereby control the amount of heated water entering the heating unit 170, based on readings of temperature and water content of the gas exiting the heating unit 170.
- a "Sereda" humidity sensor can be used to determine if the gas leaving the heating unit 170 contains condensate.
- the process control mechanism 177 may then adjust components of the turbomachine system 100 based upon data provided by the sensor. For example, depending on the data provided by the sensor, the process control mechanism 177 may lower the temperature of the cooling unit 150c, raise the temperature of the heating unit 170, and/or increase the efficiency of a demister unit. Furthermore, the process control mechanism 177 may control the flow rate of heating and cooling water based upon feedback loops that are communicably coupled to temperature sensors.
- the secondary heat exchanger of the heating unit 170 may heat the process gas to a temperature that is about 5 0 F to about 1O 0 F higher than the temperature of the process gas entering the heating unit 170.
- the temperature of the process gas entering the heating unit 170 may be about 115 0 F and the temperature of the process gas after heating may be about 12O 0 F.
- a moisture removal unit similar to the moisture removal unit 171 may also be used at other locations of the turbomachine system 100.
- implementation of multiple heating units 170 in a back-to-back configuration may be necessary to prevent corrosive conditions in locations of the turbomachine system 100 that may be more prone to corrosion, for example, at the initial stages of a compressor train.
- the corrosion is typically more severe during the initial stages of compression, because liquid water is most likely to be present in the process gas during the initial stages. Corrosion can also be problematic in later stages of compression for very wet gases, or when condensate is formed from process upsets, shut downs and startups that allow cooiing of a gas below its dew point in a given stage of compression.
- the heating unit 170 may include a first heating unit and a second heating ⁇ jnit7whereirfthe secoricTheiti ⁇ gTinit recefveV process gas from the " first rTe " ating ⁇ unit, and heats the process gas and any remaining condensate to a temperature and pressure that is above the dew point.
- utilizing a heating unit 170 may be less expensive and safer than using more corrosion-resistant materials in a turbomachine system 100.
- the heating unit 170 may be built from the same material as the primary heat exchanger of cooling unit 150c.
- the heating unit 170 may be relatively inexpensive to implement and maintain. Care should be taken to not oversize the heat exchanger of the cooling unit 150c with respect to the heating unit 170. Also, the amount of cooling water provided to the cooling unit 150 at inlet 156 should be monitored so that the temperature of the heated water provided at outlet 153c has enough heat content.
- the process gas may flow from heat exchanger outlet 176 to compressor inlet 138a.
- Compressor 130 may compress the process gas, and direct the process gas from compressor outlet 139a to cooling unit inlet 152d.
- Cooling unit 15Od may cool the process gas and remove condensate using the methods described above with respect to cooling units 150a- c.
- the cooling unit 15Od may direct the process gas from cooling unit outlet 154d to compressor inlet 138b.
- Compressor 130 may recompress the process gas, and may either direct the process gas to another component of the turbomachine system 100, or may provide the process gas to another system for further processing.
- FIG. 2 shows an exemplary method 200 of removing water from a process gas according to an exemplary embodiment.
- the method 200 may include a primary stage 210 and a secondary stage 220.
- the primary stage 210 may include a step 250, at which process gas may flow to a primary heat exchanger, such as the heat exchanger present in the cooiing unit 150c (not shown) described above with respect to Figure 1.
- the primary heat exchanger may lower the temperature of the process gas to a first temperature that causes water vapor in the process gas to form water condensate, as at step 260.
- the first temperature is below the dew point temperature.
- the heat exchanger may be any heat exchanger known in the art, including without limitation an air-cooled heat exchanger and a water-cooled heat exchanger.
- the process gas may be cooled using a refrigeration unit.
- the primary stage 210 may also include a step 270, wherein water condensate may be removed from the process gas. In an exemplary embodiment, removal of the water condensate may be performed by one or more demisters using conventional methods.
- the process of cooling the process gas at step 260 may produce residual heat, which may in turn heat the cooling water to form heated water. This heated water may be used in a later step of method 200, as described below.
- the method 200 may continue to the secondary stage 220.
- the secondary stage 220 may include a step 280, wherein heating-unitrs ⁇ ch astheheating unit 170 described above with respect to Figure 1.
- the process gas may be cooled further prior to step 280.
- a secondary heat exchanger of the heating unit may be configured to heat the process gas to a temperature and pressure above the dew point, thereby causing a portion of any remaining condensate that is present in the process gas to evaporate. This may further reduce the amount of remaining water condensate within the process gas, and may reduce the potential of corrosion in a turbomachine.
- the amount of heat required to evaporate any condensate remaining in the process gas may depend on the efficiency of the primary heat exchanger and the associated demisters used to remove the condensate in the primary stage 210. Further, the heat required to evaporate the remaining condensate may be partially or wholly provided by the heated water produced by the primary heat exchanger at step 260.
- rod or wire heaters, electricity, gaseous fuel, or fuel oil may be used to heat the process gas leaving the heating unit. All of the foregoing are means for heating the process gas leaving the heating unit.
- the process gas in the secondary stage 220, may be heated to a temperature that is about 5 0 F to about 10 0 F higher than the temperature of the process gas entering the secondary stage 220.
- the temperature of the process gas entering the secondary stage 220 may be about 115 0 F and the temperature of the process gas after heating may be about 12O 0 F or higher.
- Conditions that may be conducive to corrosion may also be present during startup and/or shutdown of a turbomachine system. For example, when a turbomachine system is shut down, as the pressure falls throughout the turbomachine system, the temperature in the turbomachine system may also fall, Each of the various turbomachine system components may progressively reach the dew point as the system shuts down, resulting in the formation of condensation from any water vapor that is present in the process gas. If precautions are not taken to dry the turbomachine system components after condensation occurs, the moisture may result cause corrosion, such as Sulfide Stress Cracking or general corrosion.
- FIG. 3 shows a turbomachine system 300 according to another exemplary embodiment of the present disclosure.
- the turbomachine system 300 may be similar to the turbomachine system 100, as described above.
- Reference numbers that are used in Figure 1 are also used in Figure 3 to identify identical components.
- Turbomachine system 300 may further include a dry gas source 310 and a dry gas transport 320.
- the dry gas transport 320 may include a pipe that fluidicly couples the dry gas source 310 to compressor inlets 132a-b, and may also include a valve 322 that is coupled to the dry gas transport 320.
- the turbomachine system 300 may a!so include an outside water source 330 and an outside watertranspurt3 ' 40 that couples the outside water source 330 to the inline water heater 350rTHe ⁇ inline water heater 350 may be coupled to the heating unit 170.
- a valve 360 may be coupled between the inline water heater 350 and the heating unit 170.
- the process control mechanism 177 may be communicabiy coupled to the valves 178, 322, 360.
- the turbomachine system 300 may also include a moisture removal unit 370 located at the front of the compressor train between the process gas source 170 and the compressor 110.
- the moisture removal unit 370 may be similar to heating unit 170 of the moisture removal unit 171 described above with respect to Figure 1 ,
- the moisture removal unit 370 may include a cooling unit 378 and a heating unit 379.
- the heating unit 379 may be coupled to the valve 360.
- the valve 360 may also be coupled to the inline water heater 350 and the heating units 170.
- An exemplary operation of the turbomachine system 300 may include providing a process gas to the cooling unit 378 of moisture removal unit 370.
- the operation of the cooling unit 378 and the heating unit 379 may be similar to the operation of the cooling unit 150c and the heating unit 170 r respectively, as described above with respect to Figure 1.
- Placing the moisture removal unit 370 at the head of the turbomachine system 300 facilitates maintaining operating temperatures and pressures in the compressor train above the dew point during startup of the turbomachine system 300.
- the turbomachine system 300 may then operate as described above with respect to Figures 1 and 2.
- the turbomachine system 300 may provide a dry gas from the dry gas source 310 to the compressor inlets 132a-b.
- the valve 322 may gradually increase the quantity of dry gas provided to the compressor inlets 132a-b as the quantity of process gas in the turbomachine system 300 decreases.
- a process control mechanism 178 may be configured to control the valve 322 based upon environmental conditions of the turbomachine 300.
- the process control mechanism 177 may be communicabiy coupled to sensors configured to detect the quantity of process gas in the turbomachine system 300.
- residual heat generated by the cooling unit 150c during cooling of the process gas may be used to heat removed condensate, and thereby create heated water.
- the turbomachine system 300 may increase the amount of heated water that is provided from the cooling unit 150c to the heating unit 170.
- valve 178 may control the quantity of heated water provided to the heating unit 170.
- Valve 178 may increase the quantity of heated water directed to the heating unit 170 in order to keep the temperature and pressure of downstream component environments above the dew point.
- the process control mechanism 177 may be configured to control valve 178 based upon environmental conditions in the turbomachine 300.
- valve 178 may control the amount of heated water entering theReati ⁇ g unit ' 170 " B ⁇ rsed ⁇ o ⁇ r ⁇ eacJings-of temperature and waterconiehtof the gas exiting the heating unit 170,
- additional heated water may be provided from other sources.
- the outside water source 330 may provide water to the inline water heater 350, and the inline water heater 350 may heat the water, and provide the heated water to the heating units 360, 379.
- the valve 360 may control the provision of the heated water from the inline water heater 350 to the heating units 360, 379.
- process control mechanism 178 may be configured to control the valve 360 based upon environmental conditions in the turbomachine 300.
- a person of ordinary ski!! in the art may utilize modeling toois to design a process control mechanism that efficiently coordinates the injection of gas and provision of heated water to components of the turbomachine system 300 upon shutdown.
- FIG 4 shows an exemplary embodiment of a method 400 for reducing corrosion resulting from the startup and shutdown stages of a turbomachine system.
- the method 400 may include starting the turbomachine system at step 402.
- a process gas may be provided to a moisture removal unit that is placed at the front of the turbomachine system, such as moisture removal unit 370 shown in Figure 3.
- the turbomachine system may be shut down at a step 406.
- a dry gas such as nitrogen or sweet gas, may be injected into the turbomachine system at step 408 to replace the decreasing amount of process gas that is entering the turbomachine system 300.
- the turbomachine system may also increase the amount of heated water provided from cooling units to heating units at step 410.
- heated water from an outside water source may be provided to the heating units as the amount of heated water generated by the cooling units decreases.
- the heated water from the outside water source compensates for the reduced amount of heated water that is provided by the cooling units to the heating units during the shut down of the turbomachine system.
- the cooling unit has the gas and cooling water flowing in a counter-current manner, then the water exiting the heat exchanger of the cooling unit couid be well over 200 0 F, and more likely in excess of 25O 0 F. Some of this water could be fed into the heating unit to raise the temperature of the gas.
- the exemplary embodiments of methods and systems of the present disclosure may be inexpensive to manufacture and operate in comparison to other dehydration systems.
- exemplary embodiments of the present disclosure may include relatively simpler component parts as compared to those used in other dehydration systems.
- the exemplary embodiment of the present disclosure may ease integration into existing systems, because the primary heat exchanger may already exist in the compressor system to cool the process gas. Thus, only the heating unit may need to be added to the system. Nonetheless, it should be understood that the exemplary embodiments of the present disclosure may also be used in conjunction with other dehydration systems to reduce corrosion in compressor systems.
- the present disclosure has described embodiments relating to specific compressors, it is understood that the apparatus, systems and methods described herein could applied to other turbomachine environments.
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Abstract
Description
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Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2010254296A AU2010254296B2 (en) | 2009-05-27 | 2010-05-21 | Removal of moisture from process gas |
| CA2763512A CA2763512C (en) | 2009-05-27 | 2010-05-21 | Removal of moisture from process gas |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US12/473,003 | 2009-05-27 | ||
| US12/473,003 US8075245B2 (en) | 2009-05-27 | 2009-05-27 | Removal of moisture from process gas |
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| Publication Number | Publication Date |
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| WO2010138403A1 true WO2010138403A1 (en) | 2010-12-02 |
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| Application Number | Title | Priority Date | Filing Date |
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| PCT/US2010/035721 Ceased WO2010138403A1 (en) | 2009-05-27 | 2010-05-21 | Removal of moisture from process gas |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US8075245B2 (en) |
| AU (1) | AU2010254296B2 (en) |
| CA (1) | CA2763512C (en) |
| WO (1) | WO2010138403A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8075245B2 (en) | 2009-05-27 | 2011-12-13 | Dresser-Rand Company | Removal of moisture from process gas |
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| WO2011061169A1 (en) * | 2009-11-18 | 2011-05-26 | Shell Internationale Research Maatschappij B.V. | Method of handling a boil off gas stream and an apparatus therefor |
| US9163527B2 (en) * | 2012-02-27 | 2015-10-20 | Hamilton Sundstrand Corporation | Burner pressure transducer thermal management design |
| US20130294887A1 (en) * | 2012-05-01 | 2013-11-07 | General Electric Company | Gas turbine air processing system |
| US20140182358A1 (en) * | 2012-12-27 | 2014-07-03 | Rosemount Analytical Inc. | Gas detection system with moisture removal |
| US9174143B1 (en) * | 2013-01-21 | 2015-11-03 | Alexander Borla | Recovery of water from exhaust gas |
| WO2014193936A1 (en) | 2013-05-29 | 2014-12-04 | Rosemount Analytical Inc. | Hydrogen sulfide gas detector with humidity and temperature compensation |
| JP6284376B2 (en) * | 2014-01-27 | 2018-02-28 | 三菱日立パワーシステムズ株式会社 | Gas turbine operation method and operation control apparatus |
| US10144641B2 (en) * | 2015-06-24 | 2018-12-04 | The Boeing Company | System and method for high pressure, passive condensing of water from hydrogen in a reversible solid oxide fuel cell system |
| AU2019209876A1 (en) * | 2018-01-18 | 2020-08-13 | Mark J. Maynard | Gaseous fluid compression with alternating refrigeration and mechanical compression |
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| DE4140006C2 (en) * | 1991-12-04 | 1993-11-25 | Radex Heraklith | Process for exhaust air purification from plant parts of oil mills |
| US6460036B1 (en) * | 1994-11-29 | 2002-10-01 | Pinpoint Incorporated | System and method for providing customized electronic newspapers and target advertisements |
| US8352331B2 (en) * | 2000-05-03 | 2013-01-08 | Yahoo! Inc. | Relationship discovery engine |
| US7653761B2 (en) * | 2006-03-15 | 2010-01-26 | Microsoft Corporation | Automatic delivery of personalized content to a portable media player with feedback |
| US8075245B2 (en) | 2009-05-27 | 2011-12-13 | Dresser-Rand Company | Removal of moisture from process gas |
-
2009
- 2009-05-27 US US12/473,003 patent/US8075245B2/en not_active Expired - Fee Related
-
2010
- 2010-05-21 WO PCT/US2010/035721 patent/WO2010138403A1/en not_active Ceased
- 2010-05-21 CA CA2763512A patent/CA2763512C/en not_active Expired - Fee Related
- 2010-05-21 AU AU2010254296A patent/AU2010254296B2/en not_active Ceased
Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3892499A (en) * | 1972-07-13 | 1975-07-01 | Sulzer Ag | Multistage turbocompressor having an intermediate cooler |
| US20060218938A1 (en) * | 2005-04-05 | 2006-10-05 | Bendix Commercial Vehicle Systems Llc | Cooling compressor intake air |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8075245B2 (en) | 2009-05-27 | 2011-12-13 | Dresser-Rand Company | Removal of moisture from process gas |
Also Published As
| Publication number | Publication date |
|---|---|
| US20100303605A1 (en) | 2010-12-02 |
| AU2010254296B2 (en) | 2015-12-17 |
| US8075245B2 (en) | 2011-12-13 |
| CA2763512C (en) | 2016-03-15 |
| CA2763512A1 (en) | 2010-12-02 |
| AU2010254296A1 (en) | 2011-12-22 |
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