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Non-isothermal Thermal Decomposition Kinetics and Thermal Safety of DNGTz
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(1. School of Chemical Engineering, Northwest University, Xi′an 710069, China; 2. Science and Technology on Combustion and Explosion Laboratory, Xi′an Modern Chemistry Research Institute,Xi′an 710065, China; 3. Conservation Technology Department, the Palace Museum, Beijing 100009, China)

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    Abstract:

    The compound 3,6-bis-nitroguanyl-1,2,4,5-tetrazin (DNGTz) was synthesized and its thermal behavior was studied by differential scanning calorimetry (DSC) and thermogravity (TG-DTG). The data in DSC curve were used to analyze the thermal decomposition mechanism and kinetics using the methods of Kissinger, Ozawa and integral. Therefore, the thermal kinetic parameters of the activation energy and pre-exponential factor were obtained as 187.23kJ·mol-1 and 1015.01s-1, respectively. The thermal decomposition mechanism is phase boundary reaction and the differential function is f(α)=1. Then, the thermal safety of DNGTz, the density (ρ=1.762 g·cm-3) and thermal conductivity (λ= 0.1856 W·m-1·K-1) were estimated and the specific heat capacity (cp) was measured to obtain the equation of cp with T in a micro-calorimetry (Micro-DSCIII) which is cp(J·g-1·K-1)=-2.8805+2.1283×10-2T-2.3132×10-5T2-1.1689×10-8T3 (287K < T < 352K). Then, the thermal decomposition kinetic parameters, mechanism function and the equation of cp, ρ and λ were combined to evaluate the adiabatic-time-to-explosion (tTIad= 8.16 s), the self-accelerating decomposition temperature (TSADT=249.12 ℃), the thermal ignition temperature (Tbe =262.31 ℃) and the critical temperature of thermal explosion (Tbp=277.68 ℃), thermal sensitivity probability density function S(T) vs T for DNGTz (infinite cylindrical, spheroidic or infinite platelike) with the radius of 1m surrounded with 300K, the peak temperature (TS(T)max), safety degree (SD), critical thermal explosion ambient temperature (Tacr) and thermal explosion probability (PTE). The thermal safety of the spheroidic sample is found to be better than that of the infinite cylindrical or infinite platelike sample.

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胡拥鹏,赵旭芳,赵宁宁,等. DNGTz的非等温热分解动力学及热安全性[J].含能材料,2014,22(6):767-773.
HU Yong-peng, ZHAO Xu-fang, ZHAO Ning-ning, et al. Non-isothermal Thermal Decomposition Kinetics and Thermal Safety of DNGTz[J]. Chinese Journal of Energetic Materials,2014,22(6):767-773.

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History
  • Received:November 26,2013
  • Revised:March 18,2014
  • Adopted:April 03,2014
  • Online: December 26,2014
  • Published: