DETERMINATION OF SELF-ACCELERATING DECOMPOSITION TEMPERATURES FOR SELF-REACTIVE SUBSTANCES

被引:83
|
作者
FISHER, HG
GOETZ, DD
机构
[1] Union Carbide Corporation, South Charleston
关键词
SELF-ACCELERATING DECOMPOSITION TEMPERATURE; SELF-REACTIVE SUBSTANCE; THERMAL EXPLOSION THEORY;
D O I
10.1016/0950-4230(93)85008-9
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A self-accelerating decomposition temperature (TSADT) is the lowest ambient air temperature at which a self-reactive substance undergoes an exothermic reaction in a specified commercial package in a period of seven days or less. The same substance and package must be able to survive for seven days at a temperature within 6-degrees-C of the temperature at which the reaction occurred. A TSADT is determined for the purpose of deciding whether a self-reactive substance should be subject to temperature control during transport. We have re-examined the established T(SADT) test methods to clarify their application, affirm their validity and extend them to a wider range of materials. Two of the four test methods recommended by the United Nations Orange Book1 require calculations to determine a T(SADT). Our proposed method, which uses Accelerating Rate Calorimeter (ARC) data, requires similar calculations to determine a T(SADT). To ensure determination of conservative values when using any of the methods for self-reactive substances, the investigator should 1. consider pressure increases and potential package failure due to non-condensable gas formation and 2. account for the effects of a non-uniform temperature distribution within a viscous liquid, paste or solid by using the Frank-Kamenetskii thermal explosion model. Methodologies are discussed which address both of these areas. Also discussed is a method to account for the effect of reactant depletion on predicted T(SADT) values for both the Semenov and Frank-Kamenetskii thermal explosion models. This correction can be significant and is required to ensure that analytical values agree with experimental values.
引用
收藏
页码:183 / 194
页数:12
相关论文
共 50 条
  • [21] Determination of the self-accelerating decomposition temperature of cetane and 2-ethylhexyl nitrate mixtures in an adiabatic calorimeter
    Kedzior, Renata
    Zielinski, Jakub
    Klakooar-Ciepacz, Magdalena
    PRZEMYSL CHEMICZNY, 2017, 96 (10): : 2097 - 2100
  • [22] Prediction and evaluation of the reactivity of self-reactive substances using microcalorimetries
    Miyake, A
    Sumino, M
    Oka, Y
    Ogawa, T
    Iizuka, Y
    THERMOCHIMICA ACTA, 2000, 352 : 181 - 188
  • [23] The self-accelerating decomposition temperature (SADT) of solids of the quasi-autocatalytic decomposition type
    Kotoyori, T
    JOURNAL OF HAZARDOUS MATERIALS, 1999, 64 (01) : 1 - 19
  • [24] Self-Accelerating Self-Trapped Optical Beams
    Kaminer, Ido
    Segev, Mordechai
    Christodoulides, Demetrios N.
    PHYSICAL REVIEW LETTERS, 2011, 106 (21)
  • [25] Self-accelerating the normal DGP branch
    Bouhmadi-Lopez, Mariam
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2009, (11):
  • [26] HAZARD EVALUATION OF SELF-ACCELERATING REACTIONS
    TOWNSEND, DI
    CHEMICAL ENGINEERING PROGRESS, 1977, 73 (09) : 80 - 81
  • [27] Observational constraints on self-accelerating cosmology
    Maartens, Roy
    Majerotto, Elisabetta
    PHYSICAL REVIEW D, 2006, 74 (02):
  • [28] Self-accelerating beams in photonic crystals
    Kaminer, Ido
    Nemirovsky, Jonathan
    Makris, Konstantinos G.
    Segev, Mordechai
    OPTICS EXPRESS, 2013, 21 (07): : 8886 - 8896
  • [29] Self-accelerating universe in Galileon cosmology
    Silva, Fabio P.
    Koyama, Kazuya
    PHYSICAL REVIEW D, 2009, 80 (12):
  • [30] SELF-ACCELERATING TURBIDITY CURRENTS.
    Parker, Gary
    Fukushima, Yusuke
    Pantin, Henry M.
    Journal of Fluid Mechanics, 1986, 171 : 145 - 181