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1.
为研究固态间氯过氧化苯甲酸(m-CPBA)在非等温和绝热条件下的热分解过程及其危险性,分别采用差示扫描量热仪(DSC)和绝热加速量热仪(ARC)试验研究m-CPBA的热分解特征。通过热重分析仪(TG)测量m-CPBA的初始分解温度,用Kissinger法、Ozawa法和速率常数法计算活化能、指前因子和反应级数等热分解反应动力学参数,并根据绝热试验结果推算最大反应速率到达时间(TMR_(ad))。结果表明:m-CPBA的初始分解温度为94℃,且在熔融相变的同时发生热分解放热反应;其绝热温升为41.69℃,TMRad在8和24 h所对应的绝热温度分别为54.7℃和50.9℃;因此,m-CPBA在贮存、运输和使用过程中需要严格控制温度。  相似文献   

2.
过氧化甲乙酮的热危险性研究   总被引:1,自引:0,他引:1  
为研究过氧化甲乙酮(MEKPO)在运输与储存中的热危险性,利用差示扫描量热仪(DSC)对质量分数为52%的MEKPO溶液(以2,2,4-三甲基-1,3-戊二醇二异丁酸酯为溶剂)进行测试,得到其起始分解温度T0约为40℃,比放热量ΔH约为1.24 kJ/g。运用加速量热仪(ARC)对3种MEKPO溶液(40%,45%和52%)及MEKPO纯品(化学纯)在绝热条件下进行了热分解测试,并在此基础上,借助Semenov热爆炸模型,计算得到上述样品在50 kg包件下的自加速分解温度(TSADT)分别为65.64,63.72,55.88和51.17℃。研究结果表明,加入稀释稳定剂是降低MEKPO热危险性的有效途径,且MEKPO混合物中其质量分数越大,其危险性越高。  相似文献   

3.
为研究1,1-二叔戊基过氧环己烷(DTAC)的热危险性,用差式扫描量热(DSC)仪进行试验,获得DTAC的热分解特性数据;用Friedman法确定热分解动力学参数;用绝热加速量热(ARC)仪进行试验,研究DTAC在绝热条件下的热分解行为;根据动力学分析结果研究不同温度下DTAC热分解反应的最大反应速率到达时间(TMR_(ad))随温度的变化关系,以及自加速分解温度(SADT)与传热系数的关系。结果表明:25 kg高密度聚乙烯材料(HDPE)包装的DTAC溶液的SADT为57. 3℃,运输DTAC应选用传热系数大的包装材料,并注意其温度。  相似文献   

4.
采用绝热加速量热仪(ARC)对分析纯过硫酸铵、含10%氯化钠杂质的过硫酸铵以及含10%二氧化硅杂质的过硫酸铵进行热分析实验,得到了实验过程中温度、温升速率和压力等数据,计算了3组样品的反应动力学参数,引入热惰性因子对实验数据进行修正,得到了3组样品在严格绝热条件下的热危险性参数,分析了3组样品的反应过程和热危险性。通过Semenov理论计算了3组样品的自加速分解温度(SADT)。结果表明,过硫酸铵加入氯化钠或二氧化硅杂质后,热危险性增大,自加速分解温度降低,更容易发生反应且反应更剧烈。  相似文献   

5.
为研究2,6-二氨基-3,5-二硝基吡啶-1-氧化物(ANPyO)与丁腈橡胶(NBR)造型粉的热安全性,通过水悬浮溶解蒸馏法将ANPyO制成ANPyO/NBR造型粉,运用热重和差示扫描量热法(TG-DSC)分析仪研究ANPyO/NBR的热分解反应行为,采用Kissinger法、Ozawa法和多种积分法计算热分解动力学参数,得到ANPyO/NBR自加速分解温度、热点火温度、热爆炸临界温度,并计算获得半径为1m的球形ANPyO/NBR样品在不同超临界环境温度下的延滞期。结果表明:造型粉ANPyO/NBR有良好的耐热性能,热安全性较高;环境温度对ANPyO/NBR造型粉热安全性起着决定性作用。  相似文献   

6.
借助差示扫描量热仪(Differential Scanning Calorimetry,DSC)对过氧化苯甲酰(Benzoyl Peroxide,BPO)的热分解过程进行研究。动态DSC结果表明,BPO的吸热峰和分解峰重叠,因而无法通过基于放热曲线的转化率计算其动力学参数。这也表明了该物质的高度危险性。等温DSC结果表明,BPO在固态时就会发生分解,具有自催化性质,易发生热分解反应失控;该物质的熔点在90~92℃。基于等温DSC数据,利用Friedman法计算了BPO的热分解动力学参数,推导出等温诱导期与温度的函数关系,计算得到等温诱导期为7 d时的环境温度(约为75℃)。使用有限元分析方法(Finite ElementAnalysis,FEA)模拟得到50 kg BPO的自加速分解温度(Self-Accelerating Decomposition Temperature,SADT)约为79℃。  相似文献   

7.
自反应性化学物质的热危险性评价方法   总被引:18,自引:6,他引:12  
笔者进行的研究工作 ,给出了利用C80微量量热仪所测得的自反应性化学物质的热流速曲线 ,从而求解该物质的化学反应动力学参数 ,以及在Semenov模型下求解其自加速分解温度SADT(Self AcceleratingDecompositionTemperature)的方法 ,并将一些有机过氧化物、氧化剂和可燃剂的混合物的自加速分解温度的推算结果与实测值进行了比较。实验证明 ,该推算方法结论准确 ,是一种安全、简便、实用的反应性化学物质热危险性的评价方法  相似文献   

8.
随着本质安全研究的深入,道化学评价方法中物质系数MF的计算已不能准确描述反应物本身的热风险大小。在道化学评价方法中引入热风险概念,比较热危险性评价方法和道化学评价方法间相异点;以六甲基磷酰三胺工艺为研究对象,用DSC量热仪对反应物进行分析得出放热速率q、反应波峰峰值、单位质量的反应焓Hr,对采集的工艺参数用热力学理论外推法、基因贡献法得出活化能E、比热容CP并以此求出最大反应失效时间TMRad、绝热温升Qad、物质系数MF值以及工艺单元中物料量。得出最大反应失效时间与物质系数MF间具有相关性,道化学评价方法对因失效反应引发二次反应的热风险评估也适用。  相似文献   

9.
绝热加速量热仪在化工生产热危险性评价中的应用   总被引:5,自引:1,他引:5  
本文介绍了一种新型热危险性分析仪器--绝热加速量热仪的设计原理和内部结构,运行模式以及所能获得的温度、压力和最大温升速率时间等数据类型.并通过阐述其在化学动力学研究、自加速分解温度的计算、化学工艺安全性分析和化学工艺过程开发以及热爆炸事故原因调查等方面的应用,指出了绝热加速量热仪在化工生产危险评价方面的特点和优势.  相似文献   

10.
自反应性化学物质热危险性评估的关键在于表征参数的选择和量化,单一的评估参数往往仅表征其热危险性的某一方面。综合考虑自反应性物质发生热分解反应的难易程度及其造成后果的严重程度两个方面,分别选取放热反应初始温度(To)和反应热(-ΔH)作为相应的表征参数,通过半正态分布函数对这两个指标进行标准化处理。在此基础上根据风险的定义提出了一种新的自反应性化学物质的热危险性综合评估指数(THI指数),并建立相应的热危险性分级标准,对自反应性化学物质的热危险性进行综合评估与分级。结果表明,建立的THI指数所确定的热危险性分级结果与基于活化能和最大绝热温度的RHI指数的反应危险性等级基本一致,该指数能够对自反应性化学物质的热危险性进行定量评估。  相似文献   

11.
为获得偶氮二异丁腈(AIBN)在各种热应力条件下的危险参数,通过简化的压力容器试验测试AIBN的热分解激烈性等级,采用差示扫描量热仪(DSC)和绝热量热仪(ARC)对AIBN的热分解过程进行研究,用动力学与热稳定性分析软件AKTS计算动力学参数在整个反应进程中的变化情况,并根据ARC测试结果推算自加速分解温度(TSADT)。结果表明:AIBN的热分解激烈性为Ⅱ类,易呈现爆炸特性;其初始分解温度和TSADT很低,分别约为78℃和61℃,且分解放热过程和熔融吸热过程同时发生。因此,在AIBN的生产、使用、贮存和运输等过程中应加强温度监控,并根据实际情况采取降温措施。  相似文献   

12.
Obtaining accurate thermal risk assessment parameters of chemical processes and substance properties is essential for improving the safety of chemical production and substance use and storage, and the adiabatic reaction calorimeter (ARC) has been employed by many researchers for this purpose. However, with the improvement and upgrading of the instrument, an examination of the factors that affect its detection accuracy is warranted. A simplified reaction model of the adiabatic thermal decomposition of tert-butyl peroxyacetate was constructed using computational fluid dynamics in which the adiabatic thermal decomposition kinetic model and fluid-solid coupling model were combined to simulate heat transfer. To verify the reliability of the parameters of the numerical calculation model, the effects of the sample cell's material, wall thickness, and mass were investigated in relation to the thermal inertia of the ARC. The results indicated that the thermal inertia of the system was lowest when the sample cell was composed of titanium. When the sample pool's composition is determined, the thermal inertia of the system can be reduced to a certain extent through an approximate increase in the sample mass. Finally, an analysis of the heat flow cloud diagram of the wall of sample pools made from different materials revealed that the thermal conductivity of titanium was high; this information can assist in controlling the adiabatic process.  相似文献   

13.
CL-20是一种高能量、高性能的炸药。为了研究CL-20的热分解性能,分别采用DSC-TG、DSC-TG-QMS联用系统和高压型差示扫描量热仪(DSC 204 HP)对CL-20的热安全性进行了测试分析,并计算了CL-20的热力学参数和动力学参数。结果表明,CL-20固体炸药在不同升温速率下的TG曲线基本相似,都只有一个台阶。在升温速率为10 K/min时,CL-20在放热峰温处的活化焓、活化熵和活化自由能分别是177.26 k J/mol、52.61 J/(K·mol)和149.7 kJ/mol。CL-20热分解后的气体产物主要有NO、CO、CO_2和H_2O,离子流强度约为10-9A,其中H_2O的离子流强度最大。不同压力时CL-20热分解的过程不同,在压力高的情况下CL-20分解放热更多,反应过程越剧烈,热安全性越差。与常压下相比DSC放热峰值温度降低。  相似文献   

14.
The first step to be performed during the development of a new industrial process should be the assessment of all hazards associated to the involved compounds. Particularly, the knowledge of all substances thermochemical parameters is a primary feature for such a hazard evaluation. CHETAH (CHEmical Thermodynamic And Hazard evaluation) is a prediction software suitable for calculating potential hazards of chemicals, mixtures or a single reaction that, using only the structure of the involved molecules and Benson's group contribution method, is able to calculate heats of formation, entropies, Gibbs free energies and reaction enthalpies. Because of its ability to predict the potential hazards of a material or mixture, CHETAH is part of the so-called “desktop methods” for early stage chemical safety analysis.In this work, CHETAH software has been used to compile a complete risk database reporting heats of decomposition and Energy Release Potential (ERP) for 342 common use chemicals. These compounds have been gathered into classes depending on their functional groups and similarities in their thermal behavior. Calculated decomposition enthalpies for each of the compounds have also been compared with experimental data obtained with either thermoanalytic or calorimetric techniques (Differential Scanning Calorimeter – DSC – and Accelerating Rate Calorimeter – ARC).  相似文献   

15.
使用加速量热仪(ARC)研究硝酸异辛酯(EHN)的热分解,得到热分解温度随时间的变化曲线,自放热速率、分解压力随温度的变化曲线以及分解压力随升温速率的变化曲线。分析在绝热条件下硝酸异辛酯的热分解反应动力学和热分解过程,计算表观活化能、指前因子和反应热等参数。根据绝热热分解的起始温度和反应热数据,给出硝酸异辛酯在反应危险度等级中的分类,并计算在75℃时的反应风险指数。  相似文献   

16.
过氧乙酸溶液的热爆炸分析   总被引:1,自引:0,他引:1  
为有效预防生产、储运和使用中过氧乙酸引发的火灾爆炸事故,采用绝热加速量热仪模拟了15%和10%浓度的过氧乙酸溶液的热爆炸过程,得到了两种浓度的PAA溶液的热分解温度、压力、温升速率随时间变化的关系曲线,并用速率常数法分别计算了反应级数n、表观活化能Ea和指前因子A。经过绝热修正,得到最危险状态下的温度和压力等相关热危险参数,并基于Semenov热爆炸理论推算了三种包装条件下两种样品的不可逆温度和自加速分解温度。结果表明,15%PAA和10%PAA溶液热分解反应级数均为一级,表观活化能分别为1044kJ·mol-1和1032kJ·mol-1;绝热条件下初始放热温度分别为429℃和293℃;自加速分解温度受反应系统到达最大反应速率的时间、物料存储规模及散热条件的影响,建议PAA应储存在通风背阴处且单个包装容积应控制在25L以下。  相似文献   

17.
The dicumyl peroxide (DCP) is widely used as a polymerization initiator, catalyst and vulcanizing agent in the chemical industry. A number of accidents have been caused by its thermal instability in storage or manufacturing process. Thus, its hazard characteristics have to be clearly identified. First of all, the differential scanning calorimeter (DSC) is used to measure the heat of decomposition reaction, which can contribute to understanding the reaction characteristics of DCP. The accelerating rate calorimeter (ARC) is used to measure the rates of temperature and pressure rises of decomposition reaction, and then the kinetics parameters are estimated. Furthermore, the MIKE 3 apparatus and the 20-l-Apparatus are used to measure and analyze the dust explosion characteristics of DCP at room temperature and atmospheric pressure. Finally, Semenov's thermal explosion theory is applied to investigate the critical runaway condition and the stability criterion of decomposition reaction, and to build the relationship of critical temperature, convective heat transfer coefficient, heat transfer surface area and ambient temperature. These results contribute to improving the safety in the reaction, transportation and storage processes of DCP.  相似文献   

18.
Emulsion explosives are one type of main industrial explosives. The emergence of the large cartridge emulsion explosives has brought new security incidents. The differential scanning calorimeter (DSC) and the accelerating rate calorimeter (ARC) were selected for the preliminary investigation of the thermal stability of emulsion explosives. The results showed that the initial thermal decomposition temperatures were in the range of 232–239 °C in nitrogen atmosphere (220–232 °C in oxygen atmosphere) in DSC measurements and 216 °C in ARC measurements. The slow cook-off experiments were carried out to investigate the critical temperature of the thermal decomposition (Tc) of the large cartridge emulsion explosives. The results indicated that the larger the diameter of the emulsion explosives, the smaller the Tc is. For the large cartridge emulsion explosives with diameter of 70 mm, the Tc was 170 °C at the heating rate of 3 °C h−1. It is a dangerous temperature for the production of the large cartridge emulsion explosives and it should cause our attention.  相似文献   

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