BOIL-MODE-ON · unraveling nucleate BOILing: MODEling, mesoscale simulatiONs and experiments
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2019-05-20 → 2021-05-19
- Финансиране от ЕС
- 212 934 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Процесите на образуване на микроскопични мехурчета при кипене се анализират чрез симулации и опити. Това помага за подобряване на охлаждането на мощни електронни компоненти, като например в медицинската рентгенова техника или авиониката на самолетите.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
unraveling nucleate BOILing: MODEling, mesoscale simulatiONs and experiments
BOIL-MODE-ON is set within the context of a continuous miniaturisation of electronics components resulting in an ever increasing power density request. All of that energy is turned into heat to be dissipated through dedicated thermal management systems. The ability to dissipate these large amounts of heat while keeping the operating temperatures below prescribed thresholds is becoming critical to many applications ranging from integrated circuits, to X-ray medical equipment, and airplane avionics. Classical air or liquid cooling methods have become inadequate for the most demanding recent applications. These limitations have spurred the transition from single-phase cooling solutions to two-phase thermal management systems. The heat transfer coefficient attainable can be dramatically enhanced by the use of two-phase systems employing boiling. The basic underlying idea is simple: nucleate vapour bubbles in the liquid in contact with the hot surface and take advantage of the latent heat of evaporation associated with boiling. Its implementation, however, faces a number of challenges, hindering the transition from laboratory research to commercial products. The most fundamental difficulty is represented by the intrinsically multiscale nature of the boiling phenomenon: the large-scale features of the process — like the overall heat transfer, the flow pattern and the total pressure drop — are in fact strongly influenced by the small-scale characteristics such as the frequency of bubble nucleation, their size, and the release rate from the hot surface. Probably, the most elusive subprocess of boiling heat transfer, and nonetheless the most influential, is the boiling inception, namely, the very first stage of bubble formation, occurring at sub-micron length scales. The bubble nucleation rates (i.e. the number of bubbles formed per unit time and surface area), their spatial distribution on the hot surface, and the mean first passage times (i.e. the time to be awaited to observe a nucleation event), are necessary quantities in most of the semi-empirical models of boiling heat transfer, but difficult to be accessed via experiments. BOIL-MODE-ON met the urgent need of a synergic effort on developing suitable theoretical models, specialised numerical simulations and accurate experiments, to make a real breakthrough on the understanding of the detailed mechanisms underlying the boiling inception at hot surfaces. The aim of the project is to investigate two of the major controlling mechanism of the nucleate boiling onset process: 1) the wetting properties of the hot surface; 2) the gas content dissolved in the liquid. The quantitative prediction of these effects is a daunting task, and remained an open problem before BOIL-MODE-ON.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Cooling efficiency is of the upmost importance in several crucial technological applications, e.g. fuel cells and battery cooling, hybrid airplanes, drones and satellite thermal management. They have a value of several billions dollars around the world, with a critical contribution to global CO2 production. A promising approach to cope with the always higher heat fluxes requested is represented by phase changing systems which exploit the large latent heat associated with phase change to remove the heat from the hot surface. A robust and effective strategy is to deploy boiling. The basic underlying idea is simple: form vapour bubbles in a liquid in contact with the hot surface and evacuate them through a condenser. Its implementation, however, faces a number of challenges and requires solution to several fundamental problems. In any practical application the boiler efficiency depends on parameters, such as the frequency of bubble nucleation, their size, and the release rate from the hot surface. However, how to precisely control them is still not clear. BOIL-MODE-ON aims at addressing the underlying mechanism of bubble inception and departure during boiling, defining possible new routes and solutions both on the modelling and the practical implementation side. Dr. Magaletti will apply a cutting-edge methodology he developed in the context of cavitation phenomena, based on a mesoscale numerical modelling of the liquid-vapour system embedding thermal fluctuations. It will shed light on the effects of surface wettability and dissolved gas, which are two of the most complex and not yet understood topics in this field. A specific campaign of experiments will complement and support the analysis. The recognised experience of Prof. Marengo, who will supervise this project, on the experimental techniques for boiling guarantees the highest level of synergy and knowledge transfer with the applicant, further developing his research skill-set and enhancing his career prospective.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITY OF BRIGHTON · BrightonКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
