The present invention relates to cooling water systems. More specifically, the invention relates to a method of eliminating general copper corrosion and thereby solid corrosion product deposits in any closed loop cooling water systems, where the cooling water comes into contact with copper or copper alloys.
The invention also relates to a closed loop cooling water system of the kind where the cooling water comes into contact with copper or copper alloys.
The invention improves the performance of closed cooling water systems in contact with copper metal, since copper corrodes under formation of a solid corrosion product. This product accumulates as debris, such that coolant flow through cooling system components is significantly restricted or even blocked altogether, which negatively influences the function of the cooling systems.
In all closed cooling water systems using pure deionized and deaerated water, a possible general copper corrosion is previously thought to be due to an incomplete deaeration. Specifically three critical fields are exemplified here, viz. water cooled power generators, and particle accelerators and nuclear fusion reactors (such as ITER).
Industrial electrical power generators are large, heavy industrial machines having internal liquid cooling systems for their stators. These stators each have a closed liquid cooling system referred to as a stator water cooling system (SWCS). Stator cooling fluid, e.g., deionized water, circulates through the SWCS to cool the windings in the stator. The cooling fluid removes heat from the stator windings generated by the high energy electrical current flowing through the windings. The SWCS includes a network of cooling passages throughout the stator, which passages extend between the windings. These cooling passages should remain open and free of obstructions to ensure a high flow of coolant fluid to all sections of the stator. The SWCS also includes several components external of the stator, including piping, such as coolant pumps, filters, a reservoir tank and a strainer.
To ensure a continuous flow of the coolant through the SWCS, the SWCS includes a strainer to remove debris, i.e. solid corrosion products from copper corrosion, and other particles which may have become suspended within the coolant fluid. If not removed from the coolant, debris and particles tend to clog and obstruct the cooling passages of the SWCS. Removal of debris and particles from the cooling fluid is hence needed to avoid clogging of the stator cooling passages. The strainer captures debris and particles as the coolant flows through the strainer. By removing debris and particles from the cooling water, the strainer serves to keep the cooling passages open to the flow of cooling fluid. The strainer is usually positioned in a low temperature portion of the stator water cooling system, just upstream of the generator in the coolant piping. The strainer is generally a stainless steel mesh filter located in SWCS coolant piping external and upstream of the stator.
The mesh of the strainer has a tendency to accumulate copper corrosion products (hitherto believed to be mainly copper oxides) from the water of the SWCS. The oxide builds up on the wires of the mesh and reduces the openings in the mesh, through which the coolant is to flow. As the deposition of copper oxide of the strainer increases, the resistance of the strainer to the coolant flow similarly increases. A strainer with oxide deposits obstructs the flow of the cooling system, reduces the flow of cool fluid through the stator, and disrupts proper cooling of the stator. There is a long-felt need for techniques that reduce the deposition of corrosion products on a SWCS strainer and thereby improve the flow of coolant through the SWCS. Deposition of copper on the SWCS strainer is often due to deposits of compounds of metals dissolved in the coolant that form on the wire mesh of the strainer. The conductive windings of the stator are generally metallic copper (Cu). Small amounts of the copper from the stator windings dissolve into the coolant as the coolant flows over the windings. Both solid corrosion product debris and precipitates of copper ions deposit on the mesh of the strainer mainly as CuO, hitherto believed to be mainly a hydrogen free copper oxide.
Particle accelerators (linear or circular) are devices that use an electric field to accelerate electrically charged particles to high speeds and to contain them. Corrosion of copper is a critical issue in most accelerators. Components made of copper are routinely cooled by deionized, low-conductivity water. Release of copper oxides from the parent surface is common. The residue, comprising reddish-brown Cu2O, black CuO and Cu-hydroxides, can accumulate such that the flow of coolant through the cooling system components is significantly restricted or blocked altogether, and the residues jeopardize the function of the cooling system and thus also of the particle accelerator system. The cooling water systems for particle accelerators are basically the same as those for cooling the stators of electrical generators. The cooling water systems for fusion reactors like ITER have much in common with those for particle accelerators, albeit the water temperature may be up to 250° C.
All of the prior art disclosures referred to above assume that corrosion is not caused by the water itself but by dissolved O2-gas in the water. Consequently, prior art focuses only on how to reduce the problem caused by copper corrosion and deposition of corrosion products, or how to reduce the maintenance cost, but the suggested solutions do not eliminate the root of the problem, i.e. the corrosion of copper.
As an illustrative example, a paper by Martynova O. I., et al. “Water chemistry of cooling water systems made from copper-based materials in the loops of power-generating units” Teploenergetika (11) 21-24 (1989) discloses that small additions (up to 60 μg/kg water) of hydrogen to the cooling water reduce (but do not eliminate) the general copper corrosion.
Another publication, US 2002/0021778 A1, discloses that it is also known in the nuclear power industry that addition of hydrogen to the cooling water in fission reactors eliminates a special corrosion phenomenon, i.e. stress corrosion cracking and intergranular stress corrosion cracking (SCC and IGSCC) of the metallic components. To suppress stress corrosion cracking, zirconium hydroxide and hydrogen are injected into the reactor cooling water. The injection of zirconium hydroxide is necessary, since it is believed that an increase in the amount of hydrogen injection causes increase in an amount of radioactive nitrogen exhausted to the main steam system, which increases the radiation dose rate of the main steam system. The beneficial effect of hydrogen addition is obtained by a neutralization of dissolved oxygen gas and oxidative radio lysis products such as hydrogen peroxide in the water, i.e. not by eliminating general corrosion by water itself.
In U.S. Pat. No. 3,431,927 hydrogen gas is supplied to increase the permissible flow velocity on a liquid flowing on a copper surface. The supplied hydrogen reduces erosion corrosion. Nothing is said about reducing or eliminating general copper corrosion.
The object of the present invention is to provide a method of eliminating general copper corrosion and thereby solid corrosion product deposits in any closed loop cooling water systems of the kind where the cooling water comes into contact with copper or copper alloys. The only type of corrosion that occurs on copper metal exposed to reasonable pure cooling waters is general corrosion, not SCC.
In accordance with the invention, this object is achieved by supplying hydrogen gas to the liquid cooling water in the closed loop cooling water system to maintain in said liquid water
Thereby general copper corrosion by water can be eliminated.
The expression “supplying hydrogen gas to the liquid cooling water” is not to be interpreted as requiring that the hydrogen is to be supplied directly into a gas phase usually existing above a surface of liquid cooling water in a closed tank. The hydrogen might as well be supplied below the surface of the liquid cooling water, from where it will bubble upward through the liquid water into the gas phase confined above the water surface. In general, it is possible to inject hydrogen anywhere in the liquid cooling water system as long as the system is sufficiently closed and circulating.
The method is especially useful for eliminating general copper corrosion and thereby solid corrosion product deposits in any closed loop cooling water systems in electrical power generators, particle accelerators and nuclear fusion reactors, such as ITER.
If required for safety reasons, the hydrogen gas may be supplied to the closed loop cooling water system together with an inert gas, preferably nitrogen.
In accordance with the invention, this object is achieved also in that a closed loop cooling water system, of the kind where the cooling water comes into contact with copper or copper alloys, comprises a hydrogen gas source, means for supplying a sufficient amount of hydrogen gas from the hydrogen gas source to a gas phase in contact with the liquid cooling water in the closed loop cooling water system to eliminate general copper corrosion by water, and control means for maintaining in the liquid water an adjustable concentration of at least 80 μg H/kg water up to 75° C. and to at least 125 μg H/kg water for water up to 300° C.
The hydrogen gas source contains pure hydrogen or, in case of safety requirements, a mixture of hydrogen and an inert gas, preferably nitrogen, and the hydrogen gas supplying means supply the mixture to the cooling water in the closed loop cooling water system.
In the following, the invention will be described in more detail with reference to preferred embodiments and the appended drawings.
Thus, in
The conventional thermodynamic understanding of general copper corrosion in deionized water is incomplete. The hydrogen equilibrium for the lowest copper oxide, is hitherto believed to be around 1×10−16 bar at 20° C., but our experiments have shown that there is a more stable corrosion product (a hydrogen and oxygen containing product) formed in anoxic (O2-free) water, having a hydrogen equilibrium pressure about 13 decades higher, i.e. in the 10−3 bar range at 20° C. and in the 0.1 bar range around 100° C. This surprising discovery means that if a hydrogen partial pressure in the 0.1 bar range is applied in the gas phase in contact with the liquid cooling water, general copper corrosion by water will be totally eliminated. For a cooling water system operating at up to around 300° C., it is enough to add at least 125 μg hydrogen/kg water (peak at around 87° C., ˜110 mbar H2, see
Consequently, as will be seen from
In the preferred embodiment of the present invention shown in
To eliminate general corrosion and problem with release/deposition of solid corrosion products (debris) the dosing of hydrogen should preferably be at the full drawn line of
The dosing of hydrogen can be accomplished by providing the control means as shown in the embodiment of
The product formed in anoxic (O2-free) water may be described as CuOy H. This product is initially reddish-brown and when the product grows thicker it changes color to black.
When using this technique in a cooling water system it is recommended to initially add an amount of hydrogen that is substantially higher than these equilibrium values in order to accelerate the removal of dissolved oxygen. It deserves mentioning, that the hydrogen-oxygen reaction (formation of water) will take place on all solid surfaces in the cooling system. In fact, any formed solid corrosion product will be reduced to metallic copper when a sufficient amount of hydrogen is added to the cooling water.
The life of the stator coil copper pipe for cooling water in an electric generator can be extended significantly by this invention at the same time as the maintenance cost will be reduced drastically. Although the present invention above is described with reference to a closed loop stator winding cooling system (SWCS) for a water cooled electric generator of the kind where the cooling water comes into contact with copper or copper alloys, it is obvious that the invention also may be applied in other cooling systems of the kind using pure deionized and deaerated water, which is regarded as giving rise to general copper corrosion, such as closed cooling water systems for particle accelerators and nuclear fusion reactors (such as ITER), for example. Of course, the invention may also be applied if the water is not deaerated, but then it will take longer time to stop the corrosion of copper, and more hydrogen will be consumed.
Number | Date | Country | Kind |
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0950250-1 | Apr 2009 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE2010/050409 | 4/16/2010 | WO | 00 | 10/14/2011 |