The present invention relates to an integrated air-separating and water-heating apparatus intended for a boiler.
U.S. Pat. No. 4,461,154 discloses the use of an adiabatic compressor for compressing air and recovering the heat generated at the outlet of the compressor to heat the water which is supplied to a boiler, with the aim of improving the overall efficiency of the air-separating device fed by the compressed air and also of the boiler (for the purpose of reducing the fuel consumption of the boiler).
WO-A-2006/131283 describes a device in which the air from a compressor is heated by flue gases and is then used to heat the water in two separate exchangers.
DE-C-19837251 describes an air-separating device integrated with a gas turbine.
Conventionally, the steam is extracted from a turbine and is then used to preheat the water intended for a boiler.
The present invention enables the heat recovery from an air compressor to be optimized by preheating the boiler feed water.
At the present time, the water supplied to a boiler is sent to a degasser to separate the oxygen dissolved in it, typically in order to reduce the oxygen content to less than 10 ppb by direct steam stripping of the water. In order to be efficient, this degassing must take place at a pressure of less than 20 bar, and preferably less than 10 bar.
When a compressor is used to compress all the air intended for a cryogenic air-separating device, the air must typically be produced at 6 bar abs and therefore at a temperature of 230° C. to 300° C. for an adiabatic compressor.
In theory, therefore, the boiler feed water could be heated to between 220° C. and 295° C. (allowing for the fact that a temperature difference of less than 5° C. would entail significant additional costs).
Two problems need to be resolved.
For example, in the case of an air compressor driven by a steam turbine, the relation between the flow of water intended for the boiler (and obtained from the turbine condenser) and the flow of air is 380 kg of water per 1000 Nm3/h of air. The air leaves the compressor at 273° C., the water leaves the condenser at 45° C., and the minimum temperature difference in the exchanger where the water is heated by the air is 10° C.
In this case, the water can only be heated to 224° C., whereas a temperature of at least 250° C. would be desirable.
According to the invention, another heat source is used to complement the heat received from the air compressor, in order to raise the temperature of the water intended for the boiler.
The invention proposes an integrated apparatus, including an air compressor, a steam turbine which drives the air compressor, a first heat exchanger, means for feeding water to the first heat exchanger and from there to a boiler, means for feeding compressed air from the compressor to the first heat exchanger and an air-separating device supplied with air compressed in the compressor, heating means for heating the water downstream from the first exchanger, a second exchanger, means for feeding water from the first exchanger to the heating means, from the heating means to the second exchanger, and from the second exchanger to the boiler, and means for feeding air from the compressor to the second exchanger upstream from the first exchanger, without preheating means between the compressor and the second exchanger, and from the second exchanger to the first exchanger.
In this case, the air from the compressor heats the water without having been preheated by flue gases as in the prior art.
Optionally,
The invention also proposes a method of heating water intended for a boiler in which water is heated in a first heat exchanger by an exchange of heat with air from a compressor driven by a steam turbine, after which the air cooled in this first exchanger is fed to an air-separating device, characterized in that the water from the first exchanger is reheated and fed to a second exchanger, preferably without having been reheated, where it exchanges heat with air from the compressor, the air from the compressor not being preheated between the compressor and the second exchanger, the air cooled in the second exchanger is fed to the first exchanger, and the water heated in the second exchanger is fed to the boiler.
Preferably, the air compressor produces air at a first pressure and the air is fed to the air-separating device at this first pressure, without compression downstream from the air compressor.
Preferably, all the air from the compressor is fed to the air-separating device.
The invention will now be described more fully with reference to the drawings.
In
The flow of water at high pressure 15 is fed to the boiler 1. The water vapor 19 from the boiler 1 is fed to a steam turbine 17 which drives the air compressor 31. The steam 21 is then fed to the condenser 23.
The air is not compressed between the outlet of the compressor 31 and the inlet of the air-separating device 49.
In order to optimize the exchange diagram (making the lines on the graph as nearly parallel as possible) to obtain the diagram shown in
The purification device is regenerated by a flow of nitrogen 43 from the air-separating device 49. This nitrogen flow can be preheated by water vapor from the boiler 1 and/or by water vapor 55 from the degasser 3 and/or from the boiler blow-offs. Preferably, the water vapor from the boiler 1 is a fraction of the flow 5 to be sent to the degasser 3.
Additionally or alternatively, a part 57 of the water heated to approximately 150° C. in the first exchanger 29 can be used to heat the regeneration nitrogen 43. This water can be drawn off continuously and stored in a thermally insulated store (not shown) and sent when required to heat the regeneration nitrogen.
Water vapor 53 from the degasser 3 can be used to vaporize a cryogenic liquid of the air-separating device in an auxiliary vaporizer 51.
Part of the water vapor 5 and/or of the water 57 and/or of the water vapor 45 and/or of the water vapor 55 can also be used to heat an absorption cooling unit of the air-separating device 49.
The air is not compressed by any compressor means between the air compressor 31 and the air-separating device 49, and all the air from the air compressor 31 is fed to the air-separating device 49.
Number | Date | Country | Kind |
---|---|---|---|
0857631 | Nov 2008 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/FR2009/052145 | 11/6/2009 | WO | 00 | 5/6/2011 |