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020 _a9783319974996
024 7 _a10.1007/978-3-319-97499-6
_2doi
040 _bspa
_dES-MaUEC
_cES-MaUEC
050 4 _aTJ260
_b2019 EB
100 1 _aDelgado, João M. P. Q.
_eautor
_4aut
_948564
245 1 0 _aThermal Energy Storage with Phase Change Materials :
_bA Literature Review of Applications for Buildings Materials
_cby João M. P. Q. Delgado, Joana C. Martinho, Ana Vaz Sá, Ana S. Guimarães, Vitor Abrantes
264 1 _aCham
_bSpringer International Publishing :
_bImprint: Springer
_c2019.
300 _a1 recurso en línea (VIII, 73 páginas)
_b19 ilustraciones, 13 ilustraciones a color
336 _2rdacontent
_aTexto
_btxt
337 _2rdamedia
_aelectrónico
_bc
338 _2rdacarrier
_arecurso electrónico
_bcr
347 _atext file
_bPDF
490 0 _aEngineering (Springer-11647)
490 0 _aSpringerBriefs in Applied Sciences and Technology
_x2191-530X
505 0 _aIntroduction -- Impregnation of PCMs in Building Materials -- PCM Current Applications and Thermal Performance -- Conclusions. .
520 3 _aThis short book provides an update on various methods for incorporating phase changing materials (PCMs) into building structures. It discusses previous research into optimizing the integration of PCMs into surrounding walls (gypsum board and interior plaster products), trombe walls, ceramic floor tiles, concrete elements (walls and pavements), windows, concrete and brick masonry, underfloor heating, ceilings, thermal insulation and furniture an indoor appliances. Based on the phase change state, PCMs fall into three groups: solid-solid PCMs, solid-liquid PCMs and liquid-gas PCMs. Of these the solid-liquid PCMs, which include organic PCMs, inorganic PCMs and eutectics, are suitable for thermal energy storage. The process of selecting an appropriate PCM is extremely complex, but crucial for thermal energy storage. The potential PCM should have a suitable melting temperature, and the desirable heat of fusion and thermal conductivity specified by the practical application. Thus, the methods of measuring the thermal properties of PCMs are key. With suitable PCMs and the correct incorporation method, latent heat thermal energy storage (LHTES) can be economically efficient for heating and cooling buildings. However, several problems need to be tackled before LHTES can reliably and practically be applied. .
650 7 _2embne
_aCalor
_xTransmisión
_9169425
700 1 _aAbrantes, Vitor
_eautor
_4aut
_9670315
700 1 _aGuimarães, Ana S.
_eautor
_4aut
_9670317
700 1 _aMartinho, Joana C.
_eautor
_4aut
_9670318
700 1 _aVaz Sá, Ana
_eautor
_4aut
_9670319
776 0 8 _iPrinted edition:
_z9783319974989
776 0 8 _iPrinted edition:
_z9783319975009
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1007/978-3-319-97499-6
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
942 _2lcc
_cLE
988 _aPrimersemestre_2019_Engineering
998 _aSI
_cm
_dz
_feng
_ggw
_h0
_b08/2019
_ea
_zSI