The disclosure relates to the field of transformers. In particular, the disclosure relates to a cooling arrangement for cooling at least one oil-to-air external heat exchanger (OAEHE) in a transformer.
A power transformer is equipment used in an electric grid of a power system. Power transformers transform voltage and current in order to transport and distribute electric energy.
Power transformers involve high currents; therefore, production of heat is inevitable. This heat propagates in the oil inside the transformer tank. It is important to release this heat to the surroundings for the normal operation of transformers. An important part of oil-cooling is carried out by placing external devices, such as radiators, coolers etc., through which the transformer oil is circulated and get cooled. State-of-the art air-cooling for a transformer is performed using conventional fans, i.e., bladed fans, or natural convection. For high power rated transformers, natural convection is not enough, and therefore, forced cooling is needed for this operation. When water is available, water cooling may be employed. Coolers are utilized in approximately 10% of power transformers, approximately 5% require fans. Utilization of water and air cooling, using fans, comprise of only 1%. Approximately 90% of power transformers may utilize radiators. In large power transformers, fans may also be needed to handle over-rating situations. In conclusion, approximately 95% of power transformers may incorporate fans for cooling in their design.
Due to the heating of power transformers and installation of external cooling equipment, ambient air may be brought to cool these devices, which work with natural or forced convection principles. This air should be of required speed and in large quantities, i.e., of high airflow rate. External cooling equipment should preferably not disturb the environment nor the surroundings, by e.g., noise or vibration. It should also be capable to operate in a harsh environment, of e.g., −40° C. to +60° C.
Currently, standard fans are the state-of-the-art solution to cool down power transformers. The main reason behind this is that it is a well-known technology. Similar techniques are being used in air conditioning for homes and large buildings, as well as cooling for industrial facilities and data centres, etc.
Yet, implementing standard fans in power transformers external cooling pose some issues, such as:
The present disclosure presents an improved viable solution of a cooling arrangement.
It is an object of embodiments herein to enhance cooling of an OAEHE of a transformer, or at least to achieve an alternative to known solutions within the technical field.
According to an aspect the object is achieved by providing a cooling arrangement for cooling at least one OAEHE in a transformer. The cooling arrangement comprises at least one impeller-motor device, at least one fluid pipe, and at least one fluid discharge device. The at least one fluid discharge device comprises a fluid inlet for receiving fluid from the at least one fluid pipe and at least one fluid outlet arranged to direct a fluid flow towards the at least one OAEHE. The at least one impeller-motor device is adapted to supply a fluid to the inlet of the at least one fluid discharge device via the at least one fluid pipe and cause the fluid to flow through the at least one fluid discharge device and be discharged through the at least one fluid outlet of the at least one fluid discharge device. The cooling arrangement further comprises a funnel. The at least one impeller-motor device is located in a housing at a distance of at least 3 meters from the at least one fluid discharge device.
According to another aspect the above-mentioned object is also achieved by providing a method performed by a cooling arrangement for cooling at least one OAEHE in a transformer. The cooling arrangement comprises at least one impeller-motor device, at least one fluid pipe and at least one fluid discharge device. The at least one fluid discharge device comprises a fluid inlet for receiving fluid from the at least one fluid pipe and at least one fluid outlet. The cooling arrangement supplies a fluid flow into the at least one fluid pipe, using the at least one impeller-motor device. The cooling arrangement further transports the fluid flow along the at least one fluid pipe to the inlet of the at least one fluid discharge device. The cooling arrangement further causes the fluid to flow through the at least one fluid discharge device. The cooling arrangement then further discharges the fluid flow through the at least one fluid outlet in a direction of the at least one OAEHE. The cooling arrangement further comprises a funnel. The at least one impeller is located in a housing at a distance of at least 3 meters from the at least one fluid discharge device.
Embodiments herein are based on the realisation that by providing a cooling arrangement comprising at least one fluid discharge device, at least one fluid pipe, at least one funnel and at least one impeller-motor device located in a housing at a distance of at least 3 meters from the at least one fluid discharge device, the cooling arrangement can utilize the surrounding fluid to increase the fluid flow that is transported to the fluid discharge device. Thereby the cooling arrangement effectively provides a powerful and enhanced fluid flow to at least one OAEHE of a transformer.
Further technical features of the disclosure will become apparent through the following description of one or several exemplary embodiments given with reference to the appended figures, where:
It should be noted that the drawings have not necessarily been drawn to scale and that the dimensions of certain elements may have been exaggerated for the sake of clarity.
Parts of a cooling arrangement 20 according to some embodiments is illustrated in
An integrated description and operation of the cooling arrangement 20 according to embodiments herein is illustrated in
The result of the cooling arrangement 20 operation is the multiplication of the inlet fluid flow, typically by a factor of 10 to 50. The technology of the cooling arrangement 20 utilizes the surrounding fluid to amplify the fluid flow that is transported to the fluid discharge device 12. It is concluded that the cooling arrangement 20 effectively provides a powerful and efficient bulk fluid flow to at least one OAEHE of a transformer.
The method actions performed by a cooling arrangement 20 for cooling at least one OAEHE in a transformer, according to embodiments herein, will now be described with reference to a flowchart depicted in
The cooling arrangement 20 may generate a filtered fluid flow to the at least one impeller-motor device 10. The filter is to avoid having dust and/or particles into the at least one impeller-motor device 10 and through the at least one fluid pipe 11 and the at least one fluid discharge device 12. The at least one impeller-motor device 10 is located in a housing 16 at a distance of at least 3 meters from the at least one fluid discharge device 12. This separation may transfer the origin of sound to the sound-shielded housing; therefore the fluid discharge device 12 operation becomes sound reduced by 20 to 40 dB as compared to conventional bladed fans. The housing 16 may be one or more of: sound-shielded, thermally insulated, comprises thermally insulating material, humidity controlled, dustproof and/or sound absorbing.
The cooling arrangement 20 supplies the fluid flow into the at least one fluid pipe 11, using the at least one impeller-motor device 10. The at least one fluid pipe 11 may comprise a thermally insulated material. The cooling arrangement 20 may comprise a plurality of fluid pipes 11 that are adapted to supply fluid to a plurality of fluid discharge devices 12.
The cooling arrangement 20 transports the fluid flow along the at least one fluid pipe 11 to the inlet of the at least one fluid discharge device 12. The at least one fluid discharge device 12 comprises a cross-section that is circular, oval, rectangular or any other polygonal shape. The fluid outlet of the discharge device 12 follows the outer perimeter of the discharge device 12. The cooling arrangement 20 comprises a funnel 15. The at least one fluid discharge device 12 may be arranged in the funnel 15. The funnel 15 may comprise round smooth borders 18 at an inlet of the funnel 15 to facilitate a Coandă effect, which mitigates edge turbulence and reduces pressure drop at the inlet of the funnel 15.
The cooling arrangement 20 causes the fluid to flow through the at least one fluid discharge device 12.
The cooling arrangement 20 discharges, e.g., emits, the fluid flow through the at least one fluid outlet in a direction of the at least one OAEHE. The fluid discharge device 12 may comprise at least one slit that is designed to be so narrow as to alter a recited physical property of the fluid stream by a recited amount due to the Bernoulli effect and the cooling arrangement 20 may discharge the fluid through the slit in the direction of the at least one OAEHE to cool down the OAEHE.
The cooling arrangement 20 may add additional fluid flow to an axial region of the fluid discharge device 12 with a hose 21 or a second fluid discharge device to enhance and/or homogenize the supplied fluid flow. The second fluid discharge device may be smaller than the fluid discharge device 12. I.e., the maximum cross-sectional dimension of the second fluid discharge device may be smaller than the maximum cross-sectional dimension of the fluid discharge device 12.
According to some embodiments, the cooling arrangement may comprise a visual device to verify the function of the at least one fluid discharge device 12. The visual device may be useful e.g., if the fluid discharge device 12 gets clogged.
Consequently, embodiments herein thus provide the cooling arrangement 20 comprising the at least one connected impeller-motor device 10, fluid pipe 11 and fluid discharge device 12 ejecting a powerful fluid flow. The impeller-motor device 10 is located inside a housing 16 which may be protective and sound-shielded, and/or may be a thermally insulated, humidity controlled, dustproof and sound absorbing chamber. The fluid pipe 11 may be made of a robust and thermally insulating material. Examples of robust and thermally insulated materials are polymer composites which may include reinforcement such as carbon fibre. For robustness the fluid pipe 11 may also be made of metal covered by concrete. The fluid discharge device 12 has a cross-section that is circular, oval, rectangular or any other polygonal shape. The fluid outlet of the discharge device 12 follows the outer perimeter of the discharge device 12. The fluid discharge device 12 outlet May comprise a narrow slit, where fluid exits and points towards the device to be cooled.
Table 1, the cooling arrangement 20 solves the issues posed by applying the state-of-the-art solution.
Embodiments herein provide external cooling to large power transformers. The state-of-the-art method of using standard fans produces high noise, has complex structure, is heavy and of difficult maintenance. The proposed cooling arrangement 20 is simple, lightweight, and easy to maintain. It is also silent as it has no moving parts at the cooling site. The latter is possible due to the separation of the fluid discharge device 12 from the impeller-motor device 10 which is confined in a housing which may be sound-shielded. Embodiments herein are based on the Bernoulli principle, which makes it possible to multiply by more than one order of magnitude of the inlet fluid flow rate provided by the impeller-motor device 10.
Advantages and benefits of embodiments herein are:
It is to be noted that any feature of any of the aspects may be applied to any other aspect, wherever appropriate. Likewise, any advantage of any of the aspects may apply to any of the other aspects.
Generally, all terms used in the claims are to be interpreted according to their ordinary meaning in the technical field, unless explicitly defined otherwise herein. All references to “a/an/the element, apparatus, component, means, step, etc.” are to be interpreted openly as referring to at least one instance of the element, apparatus, component, means, step, etc., unless explicitly stated otherwise. The steps of any method disclosed herein do not have to be performed in the exact order disclosed, unless explicitly stated. The use of “first”, “second” etc. for different features/components of the present disclosure are only intended to distinguish the features/components from other similar features/components and not to impart any order or hierarchy to the features/components.
It will be appreciated that the foregoing description and the accompanying drawings represent non-limiting examples of the method taught herein. As such, techniques taught herein are not limited by the foregoing description and accompanying drawings. Instead, the embodiments herein are limited only by the following claims and their legal equivalents.
Number | Date | Country | Kind |
---|---|---|---|
21195088.6 | Sep 2021 | EP | regional |
This application is a 35 U.S.C. § 371 national stage application of PCT International Application No. PCT/EP2022/074303 filed on Sep. 1, 2022, which in turn claims foreign priority to European Patent Application No. 21195088.6, filed on Sep. 6, 2021, the disclosures and content of which are incorporated by reference herein in their entirety.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2022/074303 | 9/1/2022 | WO |