LEADER 04134 am 2201069 n 450 001 9910495677003321 005 20200720 010 $a2-35668-175-2 024 7 $a10.4000/books.momeditions.9752 035 $a(CKB)4100000011469690 035 $a(FrMaCLE)OB-momeditions-9752 035 $a(oapen)https://directory.doabooks.org/handle/20.500.12854/84076 035 $a(PPN)249721163 035 $a(EXLCZ)994100000011469690 100 $a20200925j|||||||| ||| 0 101 0 $afre 135 $auu||||||m|||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aChantiers et matériaux de construction $eDe l?Antiquité à la Révolution industrielle en Orient et en Occident /$fAnne Baud, Gérard Charpentier 210 $aLyon $cMOM Éditions$d2020 215 $a1 online resource (288 p.) 225 1 $aArchéologie(s) 311 $a2-35668-068-3 330 $aLes quinze communications regroupées dans cet ouvrage confrontent les données provenant des sites archéologiques à celles tirées de chantiers spécialisés dans l?expérimentation de la construction et dans la restauration de monuments. Dans le domaine de l?archéologie du bâti, la lecture des vestiges conduit à la déconstruction mentale des élévations afin de restituer les phases d?occupation d?un bâtiment. Elle consiste aussi à distinguer les étapes de construction inhérentes à tout chantier, quels que soient les périodes et les lieux, en Orient comme en Occident. Il s?agit donc d?adopter une méthode d?analyse régressive pour renseigner les périodes anciennes à partir d?exemples récents de chantiers bien documentés. Si la notion de progrès existe à travers l?évolution de la science et des techniques modernes, le chantier médiéval de construction du château de Guédelon permet, par l?expérimentation, de retrouver des savoir-faire hérités du passé. 606 $aArchaeology 606 $achantier 606 $amatériau 606 $agisement 606 $aextraction 606 $atechnique 606 $atransport 606 $aremploi 606 $aexpérimentation 606 $apatrimoine 606 $abâti 606 $aterrain 610 $achantier 610 $amatériau 610 $agisement 610 $aextraction 610 $atechnique 610 $atransport 610 $aremploi 610 $aexpérimentation 610 $apatrimoine 610 $abâti 610 $aterrain 615 4$aArchaeology 615 4$achantier 615 4$amatériau 615 4$agisement 615 4$aextraction 615 4$atechnique 615 4$atransport 615 4$aremploi 615 4$aexpérimentation 615 4$apatrimoine 615 4$abâti 615 4$aterrain 700 $aBaud$b Anne$0779665 701 $aBéal$b Jean-Claude$01248908 701 $aBoissard$b Emmanuelle$01282820 701 $aBüttner$b Stéphane$01282821 701 $aChamoux$b Caroline$01282822 701 $aCharpentier$b Gérard$01282823 701 $aDavid$b Jean-Claude$0328299 701 $aD?Agostino$b Laurent$01282824 701 $aÉpaud$b Frédéric$0777400 701 $aGandreau$b David$01282825 701 $aGob$b Frédéric$01282826 701 $aGuffond$b Christophe$01282827 701 $aJacob-Rousseau$b Nicolas$01282828 701 $aKersuzan$b Alain$01282829 701 $aLaroze$b Emmanuel$01282830 701 $aMahfoudi$b Samir$01282831 701 $aMartin$b Maryline$01282832 701 $aPhalip$b Bruno$01282833 701 $aRenucci$b Florian$01282834 701 $aRoyet$b Robert$01282835 701 $aSadozaï$b Chamsia$01282836 701 $aSchmitt$b Anne$01282837 701 $aSeigne$b Jacques$01282174 701 $aTardieu$b Joëlle$01282838 701 $aBaud$b Anne$0779665 701 $aCharpentier$b Gérard$01282823 801 0$bFR-FrMaCLE 906 $aBOOK 912 $a9910495677003321 996 $aChantiers et matériaux de construction$93018888 997 $aUNINA LEADER 04857oam 2200625I 450 001 9910787573903321 005 20230105193324.0 010 $a0-429-09665-8 010 $a1-4665-1631-3 024 7 $a10.1201/b15494 035 $a(CKB)2670000000394718 035 $a(EBL)1420442 035 $a(MiAaPQ)EBC1420442 035 $a(OCoLC)860803879 035 $a(OCoLC)1330970055 035 $a(OCoLC-P)1330970055 035 $a(CaSebORM)9781466516311 035 $a(EXLCZ)992670000000394718 100 $a20180331h20142014 uy 0 101 0 $aeng 135 $aur|n|---||||| 181 $2rdacontent 182 $2rdamedia 183 $2rdacarrier 200 10$aGround-based microwave radiometry and remote sensing $emethods and applications /$fPranab Kumar Karmakar 210 1$aBoca Raton :$cCRC Press,$d[2014] 210 4$d©2014 215 $a1 online resource (220 p.) 300 $aDescription based upon print version of record. 311 $a1-4665-1632-1 320 $aIncludes bibliographical references at the end of each chapters. 327 $aFront Cover; Contents; Preface; About the Author; Chapter 1: Ground-Based Remote Sensing; Chapter 2: Radiometry; Chapter 3: Ground-Based Zenith-Looking Radio Visibility at Microwave Frequencies over a Tropical Location; Chapter 4: Radiometric Sensing of Temperature, Water Vapor, and Cloud Liquid Water; Chapter 5: Ground-Based Radiometric Sensing of Thermodynamic Variables in the Polar Regions; Chapter 6: Radiometric Estimation of Integrated Water Vapor Content; Chapter 7: Microwave Radiometric Estimation of Excess Electrical Path 327 $aChapter 8: Characterization of Rain and Attenuation in the Earth-Space PathBack Cover 330 $aGround-based radiometers are currently operated in research labs around the globe and are also used as routine measurement tools for water vapor and temperature profiling. This reference provides a comprehensive picture of ground-based radiometry, starting with the basic principles. It provides information on ground-based instrumentation, retrieval techniques, and temperature structure. The book also covers temperature profiling and water vapor radiometry as well as ozone radiometry and nitrous oxide measurements. In addition, it supplies retrieval algorithms using MATLAB, worked examples of derived products, and polar atmosphere cases. --$cProvided by publisher. 330 $aPreface Remote sensing by using microwave has become an important diagnostic tool for probing the atmosphere and surface of planetary objects. The term microwave remote sensing encompasses the physics of microwave propagation and its interaction with atmospheric ambient particles. The basic components of microwave remote sensing are the sensor-scene interaction, sensor design, and application in geosciences. This book is mainly for the physicists and engineers working in the area of microwave sensing of the atmosphere; it is not for ultimate users like geologists and hydrologists. An attempt has been made to establish a link between the microwave sensor response and the ambient atmospheric thermodynamic parameters, like water vapor content, temperature, nonprecipitable cloud liquid water content, and rain in the tropical, temperate, and polar regions. It should be mentioned here that of several types of sensors, such as radar, radiometer, LIDAR, et cetera, we have described the ground-based radiometric application in remote sensing of the atmosphere, which in a sense may be called microwave radiometry. Radiosonde observations (RAOBs) are considered to be the most fundamental and acceptable method for atmospheric temperature and water vapor measurements and profiling, in spite of their inaccuracies, cost, sparse temporal sampling, and logistical difficulties. A better technology has been sought for the past few decades, but until now, no accurate continuous all-weather technology for probing the atmosphere has been demonstrated. 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