LEADER 01164nam0 22002771i 450 001 UON00300912 005 20231205104004.6 010 $a01-995101-3-x 100 $a20070921d1986 |0itac50 ba 101 $aeng 102 $aGB 105 $a|||| 1|||| 200 1 $aˆThe ‰history of the University of Oxford. 3.: The collegiate university$fgeneral editor T.H. Aston$gedited by James McConica 210 $aOxford$cClarendon Press$d1986 215 $aXXI, 775 p.$d24 cm. 606 $aOXFORD$xUniversità$xStoria$3UONC066652$2FI 620 $aGB$dOxford$3UONL000029 676 $a378.425$cEducazione e istituti superiori. Midlands d'Inghilterra orientali$v21 702 1$aASTON$bTravor Henry$3UONV100462 712 $aClarendon Press$3UONV246509$4650 801 $aIT$bSOL$c20240220$gRICA 899 $aSIBA - SISTEMA BIBLIOTECARIO DI ATENEO$2UONSI 912 $aUON00300912 950 $aSIBA - SISTEMA BIBLIOTECARIO DI ATENEO$dSI Angl II C 737 $eSI LO 33253 5 737 996 $aHistory of the University of Oxford. 3.: The collegiate university$91851239 997 $aUNIOR LEADER 02504nam 2200337z- 450 001 9910557110903321 005 20210501 035 $a(CKB)5400000000040937 035 $a(oapen)https://directory.doabooks.org/handle/20.500.12854/68903 035 $a(oapen)doab68903 035 $a(EXLCZ)995400000000040937 100 $a20202105d2020 |y 0 101 0 $aeng 135 $aurmn|---annan 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 00$aThermal Analysis Kinetics for Understanding Materials Behavior 210 $aBasel, Switzerland$cMDPI - Multidisciplinary Digital Publishing Institute$d2020 215 $a1 online resource (230 p.) 311 08$a3-03936-559-2 311 08$a3-03936-560-6 330 $aChanging the temperature of a substance can stimulate dramatic changes of its state. These changes can be intermolecular (physical) and intramolecular (chemical) in nature. Physical changes occur without breaking intramolecular bonds, and lead to transitions between the four major phases: gas, liquid, crystal, and glass. Chemical changes are associated with chemical reactions that originate from breaking intramolecular bonds. Phase transitions as well as chemical reactions occur at finite rates. Measuring the rates of processes is the realm of kinetics. The kinetics of thermally stimulated processes is routinely measured using thermal analysis techniques such as differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). Knowing the process rates and their dependence on temperature is of vital importance for understanding the behavior of materials exposed to variations in temperature. In recent years, thermal analysis kinetics has made significant progress by developing computational tools for reliable kinetic analysis. It has also expanded its traditional application area to newly developed nano- and biomaterials. This Special Issue is a series of papers that reflect recent developments in the field and highlight the essential role of thermal analysis kinetics in understanding the processes responsible for the thermal behavior of various materials. 606 $aResearch and information: general$2bicssc 615 7$aResearch and information: general 700 $aVyazovkin$b Sergey$4edt$0860916 702 $aVyazovkin$b Sergey$4oth 906 $aBOOK 912 $a9910557110903321 996 $aThermal Analysis Kinetics for Understanding Materials Behavior$93021379 997 $aUNINA