Matches in SemOpenAlex for { <https://semopenalex.org/work/W4385973292> ?p ?o ?g. }
- W4385973292 endingPage "121371" @default.
- W4385973292 startingPage "121371" @default.
- W4385973292 abstract "Heat pipes have played a large part in the thermal management market for the past five decades and have contributed to the development and optimisation of countless components in a wide range of high-level applications, most notably in the aerospace, electronics, automotive and power generation industries. These thermal management systems span a wide range of temperatures, which in turn requires the heat pipe fluid and casing material to be specially selected to meet the application requirements. Recently, there has been an increasing demand for heat pipes which can operate in the 300 °C to 600 °C temperature range – a range which is still underdeveloped in the heat pipe marketplace due to the lack of conventional fluids which can adequately operate at these temperatures. This range is referred to as the ‘medium’ or ‘intermediate’ temperature range. The analysis and exploration of novel fluids, which could potentially be used in this range, will cater for a huge market potential. Although there has been mild development in this temperature range with the aim of testing particular fluid/metal combinations which may be suitable, there appears to currently be a severe lack of continuity in the work with little progression towards a definitive solution and no central reference catalogue of successful and unsuccessful tests. Previous works on the topic tends to follow a ‘patchwork’ process, often with overlaps in testing and with a focus only on long-term compatibility tests with a limited analytical approach which often lead to incompatible results. This paper intends to summarise all major and stand out efforts in developing medium temperature heat pipes and highlight the most promising fluids and wall materials which have been tested to date. To summarise the content, this review will explore (a) current applications which could benefit from the use of medium temperature heat pipes, (b) the work that has been done on investigating medium temperature fluids, (c) highlight some of the principles behind heat pipe performance prediction, fluid analysis, fluid/metal compatibility and fluid selection and (d) suggest the potential future direction of research in this area, particularly focusing on the development of novel heat pipe fluids. Additionally, a standardised fluid assessment framework is also proposed aiming to aid the identification and analysis of both existing and newly developed heat pipe fluids." @default.
- W4385973292 created "2023-08-19" @default.
- W4385973292 creator A5029451912 @default.
- W4385973292 creator A5030450797 @default.
- W4385973292 creator A5045734491 @default.
- W4385973292 creator A5063480145 @default.
- W4385973292 creator A5079027302 @default.
- W4385973292 creator A5083055036 @default.
- W4385973292 date "2024-01-01" @default.
- W4385973292 modified "2023-10-14" @default.
- W4385973292 title "Medium temperature heat pipes – Applications, challenges and future direction" @default.
- W4385973292 cites W147170404 @default.
- W4385973292 cites W1480021151 @default.
- W4385973292 cites W1480827662 @default.
- W4385973292 cites W1493639560 @default.
- W4385973292 cites W1557066941 @default.
- W4385973292 cites W1576332048 @default.
- W4385973292 cites W1599200809 @default.
- W4385973292 cites W1620013407 @default.
- W4385973292 cites W1632958765 @default.
- W4385973292 cites W1668323791 @default.
- W4385973292 cites W1709258792 @default.
- W4385973292 cites W1882112077 @default.
- W4385973292 cites W1967311464 @default.
- W4385973292 cites W1978869625 @default.
- W4385973292 cites W2008606026 @default.
- W4385973292 cites W2032912847 @default.
- W4385973292 cites W2039390072 @default.
- W4385973292 cites W2040668876 @default.
- W4385973292 cites W2045462622 @default.
- W4385973292 cites W2055974420 @default.
- W4385973292 cites W2062587028 @default.
- W4385973292 cites W2077293122 @default.
- W4385973292 cites W2086575723 @default.
- W4385973292 cites W2093515684 @default.
- W4385973292 cites W2094964569 @default.
- W4385973292 cites W2102955333 @default.
- W4385973292 cites W2114676273 @default.
- W4385973292 cites W2134726372 @default.
- W4385973292 cites W2143236912 @default.
- W4385973292 cites W2170940123 @default.
- W4385973292 cites W2236795421 @default.
- W4385973292 cites W2239543649 @default.
- W4385973292 cites W2261068287 @default.
- W4385973292 cites W2263700139 @default.
- W4385973292 cites W2323736844 @default.
- W4385973292 cites W2330017473 @default.
- W4385973292 cites W2330471045 @default.
- W4385973292 cites W2330861846 @default.
- W4385973292 cites W2406357811 @default.
- W4385973292 cites W2519485646 @default.
- W4385973292 cites W2766645376 @default.
- W4385973292 cites W2801934545 @default.
- W4385973292 cites W2804233624 @default.
- W4385973292 cites W2883855480 @default.
- W4385973292 cites W2886790742 @default.
- W4385973292 cites W2889287033 @default.
- W4385973292 cites W2964655489 @default.
- W4385973292 cites W2995791810 @default.
- W4385973292 cites W2996130351 @default.
- W4385973292 cites W3004629324 @default.
- W4385973292 cites W3012402311 @default.
- W4385973292 cites W3013817334 @default.
- W4385973292 cites W3036734057 @default.
- W4385973292 cites W3127752583 @default.
- W4385973292 cites W3131925614 @default.
- W4385973292 cites W3144794544 @default.
- W4385973292 cites W3166018218 @default.
- W4385973292 cites W3169855345 @default.
- W4385973292 cites W3204393099 @default.
- W4385973292 cites W3209165994 @default.
- W4385973292 cites W3217407082 @default.
- W4385973292 cites W4200571125 @default.
- W4385973292 cites W4212846271 @default.
- W4385973292 cites W4220912162 @default.
- W4385973292 cites W4244622379 @default.
- W4385973292 cites W4281661547 @default.
- W4385973292 cites W4297463961 @default.
- W4385973292 cites W4310554137 @default.
- W4385973292 cites W4312221637 @default.
- W4385973292 cites W4315796593 @default.
- W4385973292 cites W4321767618 @default.
- W4385973292 cites W4323567849 @default.
- W4385973292 cites W4360616018 @default.
- W4385973292 cites W4366608364 @default.
- W4385973292 cites W4366992331 @default.
- W4385973292 doi "https://doi.org/10.1016/j.applthermaleng.2023.121371" @default.
- W4385973292 hasPublicationYear "2024" @default.
- W4385973292 type Work @default.
- W4385973292 citedByCount "0" @default.
- W4385973292 crossrefType "journal-article" @default.
- W4385973292 hasAuthorship W4385973292A5029451912 @default.
- W4385973292 hasAuthorship W4385973292A5030450797 @default.
- W4385973292 hasAuthorship W4385973292A5045734491 @default.
- W4385973292 hasAuthorship W4385973292A5063480145 @default.
- W4385973292 hasAuthorship W4385973292A5079027302 @default.
- W4385973292 hasAuthorship W4385973292A5083055036 @default.
- W4385973292 hasBestOaLocation W43859732921 @default.