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1.
ReaxFF-MD模拟三硝基甲苯(TNT)高温热解显示增加了伦敦耗散力项(Elg)的ReaxFF/lg势函数在含能材料平衡密度计算方面具有优越性.产物识别分析得出TNT热解的主要产物为NO2、NO、H2O、N2、CO2、CO、OH以及HONO,且最终产物为H2O、N2和CO2.使用ReaxFF势函数模拟同样过程进行比较性分析显示,在主要产物和最终产物方面与ReaxFF/lg作用结果具有一致性,但在化学反应动力学方面表现出一些差异.orthoNO2键断裂和C―NO2→C―ONO重排布-断裂形成NO2和NO是TNT热解的主要初级反应,且前者产生速率大于后者,NO2和NO形成后很快参与次级反应并最终形成N2.高温热解中形成OH等小分子会促进H2O的形成.环上基团相互反应或直接脱落后,主环间C―C键才发生断裂,但温度升高会加快主环断裂,并进一步分解形成CO2,这也是高温条件下CO2分布产生波动的一个重要原因.并且当晶胞中的TNT分子几乎完全分解时,系统的势能开始明显衰减.与温度相比,密度对热解中最大含碳团簇形成的影响更明显.并且,模拟结果显示,在TNT完全分解前已经出现含碳中间体的聚合现象.此项工作表明使用ReaxFF/lg反应力场研究TNT高温热解可以提供具体的动力学和化学方面的信息,并有助于理解含能材料的爆轰问题并可进行安全评估.  相似文献   

2.
张洁  龚学庆  卢冠忠 《催化学报》2014,35(8):1305-1317
通过在位库伦校正的密度泛函理论(DFT+U)方法计算,我们研究了CO和NOx分子在Au负载CeO2(110)表面的吸附. 结果表明,CO在Au纳米颗粒的顶位有很强的吸附能,大约为1.2 eV,而NO在Au纳米颗粒上或者Au与CeO2载体界面处都是弱吸附. 然而,当NOx在界面处形成N2O2二聚体之后,通过断裂末端的N-O键能够有效地被降解. 纵观整个反应过程,第一步CO+N2O2的反应遵循了Langmuir-Hinshelwood机理,活化能只有0.4 eV,通过形成ONNOCO的中间物种最终产生N2O和CO2. 不同的是,第二步消除N2O反应遵循了Eley-Rideal碰撞机理,需要相当高的能垒,约为1.8 eV. 通过进一步分析表明,稀土Ce元素独特的电子特性能够使电子从Au上转移并且局域到载体表面的Ce阳离子上,并且有助于形成带负电的N2O2分子. 而且Au纳米颗粒有很强的结构流动性,能够促进吸附的CO分子靠近界面处的N2O2并与之反应.  相似文献   

3.
合成了高氯酸镨和咪唑(C3H4N2), DL-α-丙氨酸(C3H7NO2)混配配合物晶体. 经傅立叶变换红外光谱、化学分析和元素分析确定其组成为[Pr(C3H7NO2)2(C3H4N2)(H2O)](ClO4)3. 使用具有恒温环境的溶解-反应量热计, 以2.0 mol•L-1 HCl为量热溶剂, 在T=(298.150±0.001) K时测定出化学反应PrCl3•6H2O(s)+2C3H7NO2(s)+C3H4N2(s)+3NaClO4(s)=[Pr(C3H7NO2)2(C3H4N2)(H2O)](ClO4)3(s)+3NaCl(s)+5H2O(1)的标准摩尔反应焓为ΔrHmө=(39.26±0.11) kJ•mol-1. 根据盖斯定律, 计算出配合物的标准摩尔生成焓为ΔfHmө{[Pr(C3H7NO2)2(C3H4N2)(H2O)](ClO4)3(s), 298.150 K}=(-2424.2±3.3) kJ•mol-1. 采用TG-DTG技术研究了配合物在流动高纯氮气(99.99%)气氛中的非等温热分解动力学, 运用微分法(Achar-Brindley-sharp和Kissinger法)和积分法(Satava-Sestak和Coats-Redfern法)对非等温动力学数据进行分析, 求得分解反应的表观活化能E=108.9 kJ•mol-1, 动力学方程式为dα/dt=2(5.90×108/3)(1-α)[-ln(1-α)]-1exp(-108.9×103/RT).  相似文献   

4.
通过加入NaBH4作为诱导剂, 可在室温下引发肼与Co2+在水-乙醇体系中的还原反应, 制得高纯度纳米金属钴粉. 机理研究表明, 该反应分二段进行: 第一段主要发生Co2+被N2H4还原的反应(2Co2++N2H4+4OH=2Co¯+N2­+4H2O), 第二段主要为金属Co催化的肼分解反应(N2H4=N2­+2H2­)和歧化反应(3N2H4=N2­+4NH3­). Co2+被N2H4还原是典型的自催化过程, 因此, 加入少量NaBH4即可在288 K下启动反应. 通过测量气体产物的生成速率, 获得了Co2+还原的反应动力学方程, 发现Co2+, N2H4和产物Co的反应级数分别为1, 0和1, 反应活化能约为89 kJ/mol. 调节Co2+的浓度, 纳米金属钴的表面积可从11增加到25 m2/g.  相似文献   

5.
赵娇娇  余运波  韩雪  贺泓 《催化学报》2013,34(7):1407-1417
分别以La2O2CO3, CeO2, ZrO2和Al2O3为载体, 采用浸渍法制备了Ni基重整催化剂, 并以正十二烷模拟车载燃油进行催化重整反应以同时制备小分子碳氢化合物(HCs)和H2, 考察了其在4wt%Ag/Al2O3上选择性催化还原(HC-SCR)氮氧化物(NOx)的性能. 采用N2吸附-脱附、X射线粉末衍射、H2程序升温还原和热重等手段对Ni基催化剂进行了表征. 结果表明, 随着重整催化剂氧化还原性能增强, 产物中H2浓度增加, 可参与SCR反应的HCs含量减少, 从而导致重整-SCR耦合体系上NOx净化活性温度窗口向低温移动, NOx最高转化率降低. Ni/ZrO2+Ag/Al2O3耦合体系中H2/HCs符合SCR反应所需的最优比例, 在柴油车典型排气温度范围内表现出良好的NOx净化能力. 同时, 在Ni/ZrO2+Ag/Al2O3耦合体系上考察了其燃油重整-SCR的活性稳定性. 结果显示, 重整催化剂的耐久性有待进一步提高.  相似文献   

6.
主要考察了NO2对Cu/SAPO-34 分子筛催化剂在整个温度范围内(100-500 ℃)NH3选择性催化还原(SCR)NO性能的影响. 研究所使用样品为新鲜Cu/SAPO-34 催化剂在750 ℃下水热处理4 h 的稳定期样品.通过X射线衍射(XRD)和扫描电子显微镜(SEM)对样品的结构以及形貌进行表征,采用SCR活性评价、动力学实验以及原位漫反射傅里叶变换红外光谱(in situ-DRIFTS)表征催化剂的性能以及催化剂表面物种的变化. 活性评价实验结果表明,NO2会抑制催化剂的低温(100-280 ℃)活性,但其存在会提高催化剂的高温(280 ℃以上)活性. 与此同时,随着反应物中NO/NO2的摩尔比例减少,由于NH4NO3物种的分解,副产物(N22O)的浓度增大. 动力学结果表明,Cu/SAPO-34 催化剂上快速SCR反应的表观活化能(Ea=64.02 kJ·mol-1)比标准SCR反应的表观活化能(Ea=48.00 kJ·mol-1)更大. In situ-DRIFTS实验结果表明NO比NO2更容易在催化剂表面形成硝酸盐,并且NO2更容易与吸附在Brønsted 酸性位上的NH3物种反应生成NH4NO3. 低温下,催化剂表面的NH4NO3物种会覆盖SCR反应的活性位,造成活性降低,但在高温时,形成的NH4NO3物种一部分会被NO还原为N2,而另一部分会直接热分解为N2O,造成催化剂的选择性降低.  相似文献   

7.
二氧化碳资源化利用的工业技术途径探讨   总被引:1,自引:0,他引:1       下载免费PDF全文
朱维群  王倩  唐震  朱超 《化学通报》2020,83(10):919-922
本文从CO2来源、与CO2反应的原料、反应过程、以及反应产物性质等多方面对二氧化碳资源化利用的工业技术途径进行了探讨。研究结果表明将工艺过程产生的CO2直接做成目前CO2固定量最高、工艺能耗较少、反应产物性质稳定的1,3,5均三嗪三醇(C3H3N3O3,简称三嗪醇)是最可行的二氧化碳资源化利用的工业技术途径。将化石燃料在一定工艺过程条件下生成三嗪醇,同时将过程中释放的能量和剩余氢作为能源利用是环境友好的能源技术路线。  相似文献   

8.
采用广义梯度近似的密度泛函理论并结合平板模型的方法, 优化了糠醛分子在Pt(111)面的吸附模型,并探究了糠醛脱碳反应形成呋喃的机理. 结果表明: 吸附后糠醛分子环上的C―H(O)键及支链―CHO相对于金属表面倾斜上翘, 分子平面被扭曲, 易于呋喃的形成; 同时, 糠醛分子向Pt表面转移电子0.765e, 环中的大π键与Pt(111)表面的d轨道发生较强的相互作用, 使得糠醛的芳香性被破坏, 环上的碳原子呈现准sp3杂化. 此外, 对糠醛脱碳反应中的各反应步骤进行过渡态搜索, 通过比较各步骤的活化能, 得出糠醛更易先失去支链上的H形成酰基中间体(C4H3O)CO, 中间体继续脱碳加氢形成产物呋喃. 该过程的控速步骤为(C4H3O)CO*+*→C4H3O*+CO* (*为吸附位),活化能为127.65 kJ·mol-1.  相似文献   

9.
TiO2负载Mn-Co复合氧化物催化剂上NO催化氧化性能   总被引:2,自引:0,他引:2  
氮氧化物(NOx)是大气主要污染物之一, 主要来源于化石燃料的燃烧, 其中NO不溶于水难以去除, 催化氧化技术可以将NO氧化为易溶于水可被脱硫装置去除的NO2, 具有十分重要的实际意义. 本文采用浸渍法制备了不同Mn掺杂量的Mn-Co/TiO2复合金属氧化物催化剂, 考察了其催化NO氧化的活性. 结果表明, Mn的掺杂对Co/TiO2催化剂催化NO氧化的活性有明显促进作用, 掺杂量为6%时, Mn(0.3)-Co(0.7)/TiO2催化剂NO的转化效率最高, 300℃达到88%. 采用X射线衍射(XRD)、N2吸附/脱附、H2程序升温还原(H2-TPR)、O2程序升温脱附(O2-TPD)和原位漫反射傅里叶变换红外(in-situ DRFTIR)光谱等技术对催化剂的物理化学特征进行了表征. 结果发现, 当掺杂量为6%时, Mn一方面促进了催化剂表面活性组分的分散, 增加了催化剂的比表面积和孔径; 另一方面提高了催化剂的还原性能, 促进氧的低温脱附, 此外还促进了反应中间产物桥式NO-3向NO2的反应, 从而提高了Co/TiO2催化剂的NO氧化活性.  相似文献   

10.
用密度泛函理论B3LYP方法研究了二元铜族团簇负离子AuAg-, AuCu-和AgCu-催化CO氧化反应的详细机理. 计算结果表明: CO在混合团簇中的吸附位顺序为Cu>Au>Ag; O2也优先吸附到Cu上, 其次为Ag, 最难的为Au; 另外, O2分子较CO分子易于吸附到混合团簇上. CO氧化反应有三条反应通道, 在热力学和动力学上均容易进行. AuAg-团簇催化CO氧化反应的最优反应通道为CO插入AuAgO2-中的Ag―O键形成中间体[Au―AgC(O―O)O]-, 然后直接分解形成CO2和AuAgO-, 或另一个CO分子进攻中间体[Au―AgC(O―O)O]-形成两分子的CO2和AuAg-. 而AuCu-和AgCu-催化CO氧化反应的最优反应通道为CO和O2共吸附到团簇上,然后形成四元环中间体,最后四元环中间体分解形成产物或另一个CO分子进攻四元环中间体从而形成产物. 第二个CO分子的协同效应不明显. AuAg-和AuCu-对CO氧化反应催化活性强于Au2-团簇, 因此, Ag和Cu掺杂可以提高金团簇的催化活性, 与之前实验研究结果一致.  相似文献   

11.
12.
张力  陈朗  王晨  伍俊英 《物理化学学报》2013,29(6):1145-1153
研究六硝基六氮杂异伍兹烷(CL-20)晶体不同晶型在不同温度下的反应机理, 对于深入认识含能材料在极端条件下的冲击起爆、冲击点火和爆轰过程等具有重要意义. 基于反应力场, 研究水分子在纯α相CL-20及其水合物的晶体结构中数量随时间的变换, 分析水分子对两种体系的初始分解和第二阶段的分解路径的影响. 计算结果表明: CL-20 分子的初始分解路径与水分子无关, 第二阶段的分解反应与水分子有关. 在低温(T<1500 K)下, 水分子对两种体系没有影响, 二者的初始分解路径均为N-NO2键生成NO2自由基; 在1500 K≤T≤2500 K时, 水分子作为反应物或与NO2、、OH自由基等组成催化体系, 生成O2、H2O2等产物, 加速水合物体系在高温下的第二阶段反应, 使得高温下水合物体系的化学反应速率和反应生成的NO2自由基的数量比纯CL-20体系的化学反应速率和反应生成的NO2自由基的数量大; 在T>2500 K时, 水分子的催化反应抑制CL-20初始分解反应, 使得在3000 K时纯CL-20体系的反应速率大于水合物体系中CL-20的反应速率.  相似文献   

13.
Spectroscopic and Thermal Studies on 2,4,6-trinitro Toluene (TNT)   总被引:1,自引:0,他引:1  
The kinetics and mechanism of the initial stage of thermal decomposition of 2,4,6-trinitro toluene (TNT), a widely used high explosive, have been studied, together with its morphology and evolved gaseous products using thermogravimetry (TG), differential thermal analysis (DTA), infrared spectroscopy (IR) and hot-stage microscopy. The kinetics of the thermolysis has been followed by IR after suppressing volatilisation by matrixing and by isothermal TG without suppressing volatilisation to simulate actual user conditions. The best linearity was obtained for Avrami-Erofeev equation for n=1 in isothermal IR and also in isothermal TG. The activation energy was found to be 135 kJ mol−1, with logA (in s−1) 12.5 by IR. The effect of additives on the initial thermolysis of TNT has also been studied. Evolved gas analysis by IR showed that CO2, NO2, NO and H2O are more dominant than N2O, HCN and CO. The decomposition involves the initial rupture of the C-NO2 bond, weakened by hydrogen bonding with the labile hydrogen atom of the adjacent CH3 group, followed by the abstraction of the hydrogen atom of the methyl group by NO2, generated in the initial step. This revised version was published online in August 2006 with corrections to the Cover Date.  相似文献   

14.
Simple C–NO2 homolysis, 4,6-dinitroanthranil (DNAt) production by dehydration, and the nitro-nitrite rearrangement–homolysis for gas-phase TNT decomposition were recently studied by Cohen et al. (J Phys Chem A 111:11074, 2007), based on DFT calculations. Apart from those three pathways, other possible initiation processes were suggested in this study, i.e., CH3 removal, O elimination, H escape, OH removal, HONO elimination, and nitro oxidizing adjacent backbone carbon atom. The intermediate, 3,5-dinitro-2(or 4)-methyl phenoxy, is more favor to decompose into CO and 3,5-dinitro-2(or 4)-methyl-cyclopentadienyl than to loss NO following nitro-nitrite rearrangement. Below ~1,335 K, TNT condensing to DNAt by dehydration is kinetically the most favor process, and the formations of substituted phenoxy and following cyclopentadienyl include minor contribution. Above ~1,335 K, simple C–NO2 homolysis kinetically dominates TNT decomposition; while the secondary process changes from DNAt production to CH3 removal above ~2,112 K; DNAt condensed from TNT by dehydration yields to that by sequential losses of OH and H above ~1,481 K and to nitro-nitrite rearrangement–fragmentation above ~1,778 K; O elimination replaces DNAt production above ~2,491 K, playing the third role in TNT decomposition; H escaping directly from TNT thrives in higher temperature (above ~2,812 K), as the fourth largest process. The kinetic analysis indicates that CH3 removal, O elimination, and H escape paths are accessible at the suggested TNT detonation time (~100–200 fs), besides C–NO2 homolysis. HONO elimination and nitro oxidizing adjacent backbone carbon atom paths are negligible at all temperatures. The calculations also demonstrated that some important species observed by Rogers and Dacons et al. are thermodynamically the most favor products at all temperatures, possibly stemmed from the intermediates including 4,6-dinitro-2-nitroso-benzyl alcohol, 3,5-dinitroanline, 2,6-dinitroso-4-nitro-phenylaldehyde, 3,5-dinitro-1-nitrosobenzene, 3,5-dinitroso-1-nitrobenzene, and nitrobenzene. All transition states, intermediates, and products have been indentified, the structures, vibrational frequencies, and energies of them were verified at the uB3LYP/6-311++G(d,p) level. Our calculated energies have mean unsigned errors in barrier heights of 3.4–4.2 kcal/mol (Lynch and Truhlar in J Phys Chem A 105:2936, 2001), and frequencies have the recommended scaling factors for the B3-LYP/6-311+G(d,p) method (Andersson and Uvdal in J Phys Chem A 109:2937, 2005; Merrick et al. in J Phys Chem A 111:11683, 2007). All calculations corroborate highly with the previous experimental and theoretical results, clarifying some pertinent questions.  相似文献   

15.
During the reduction of NO2 by C3H6 in O2 over alumina-supported Au, Rh and Pt it was found that three parallel reactions take place,i.e., reduction of NO2 to N2 and N2O, partial decomposition of NO2 to NO and oxidation of C3H6 to CO and CO2. In the absence of C3H6, the NO2→NO+O2 reaction reaches a fast equilibrium on Rh and Pt but not on Au and γ-Al2O3. Addition of C3H6 to the NO2+O2 mixture leads to the formation of NO above equilibrium conversion levels.  相似文献   

16.
Glycidyl azide polymer(GAP) with the advantages of non-volatility and excellent thermal stability is a candidate as a replacement for nitroglycerine(NG) in a double base propellant. The GAP-NC double base propellants were formulated with GAP and nitrocellulose(NC) fibers. Tensile test and SEM characterization indicated that GAP-NC propellants had a homogeneous structure. Thermogravimetric analysis of GAP-NC propellants revealed that the onset decomposition temperature reached a high level ranging from 192.9 to 194.6 °C, which indicated that the substitution of NG with GAP contributed to the safe storage and process operations for double base propellant. The result analysis of decomposition products of GAP-NC propellants showed that the main gas decomposition products of the propellants were NO, NO_2, CO, CO_2, NH_3, CH_4, HCN, N_2, CH_2O and C_2H_4O. The thermal decomposition process of the specimens was proposed.  相似文献   

17.
Energetic materials such as a mixture of guanidine nitrate (GN)/basic copper nitrate (BCN) are used as gas generators in automotive airbag systems. However, at the time of the airbag inflation, the gas generators release toxic combustion gases such as CO, NH3, and NOx. In this study, we investigated the combustion and thermal decomposition behaviors of GN/BCN mixture, focusing primarily on their exhaust gas composition. As a result, when the exhaust gas of the combustion under constant pressure in an inert gas stream was analyzed using a detection tube, the amount of NOx (mainly NO) yielded greater decrease with increasing atmospheric pressure as compared to the amounts of CO and NH3. Thus, provided GN/BCN is ignited in a closed container, a large amount of NOx is presumed to have been released during the initial stage of combustion, which yielded comparatively low pressure. Results of the thermogravimetry–differential scanning calorimetry–Fourier transform infrared spectroscopy (TG/DSC/FTIR) indicated that the GN/BCN mixture caused endothermic decomposition at 170 °C and exothermic decomposition at 208 °C, which was accompanied by 66% mass loss. The decomposition gases, CO2, N2O, and H2O, were detected via FTIR spectrum. Because N2O was not detected in the combustion gas, it was suggested that the detected N2O was generated at a low temperature and decomposed in high-temperature combustion.  相似文献   

18.
The thermal decomposition of the complex K4[Ni(NO2)6]·H2O has been investigated over the temperature range 25-600 °C by a combination of infrared spectroscopy, powder X-ray diffraction, FAB-mass spectrometry and elemental analysis. The first stage of reaction is loss of water and isomerisation of one of the coordinated nitro groups to form the complex K4[Ni(NO2)4(ONO)]·NO2. At temperatures around 200 °C the remaining nitro groups within the complex isomerise to the chelating nitrite form and this process acts as a precursor to the loss of NO2 gas at temperatures above 270 °C. The product, which is stable up to 600 °C, is the complex K4[Ni(ONO)4]·NO2, where the nickel atom is formally in the +1 oxidation state.  相似文献   

19.
用T-jump/FTIR研究MnCP、NiCP和PbCP的快速热分解(英)   总被引:1,自引:0,他引:1  
0IntroductionCarbohydrazideisahydrazinederivativewithwhitecrystalofstrongreducingbehaviors.Becauseithasmanycoordinationatoms(fournitrogenatomsandoneoxygenatom),carbohydrazidecan,therefore,beusedasmultidentateligand.Itscoordinationcom鄄poundiswidelyusedint…  相似文献   

20.
The widespread and long-term use of TNT has led to extensive study of its thermal and explosive properties. Although much research on the thermolysis of TNT and polynitro organic compounds has been undertaken, the kinetics and mechanism of the initiation and propagation reactions and their dependence on the temperature and pressure are unclear. Here, we report a comprehensive computational DFT investigation of the unimolecular adiabatic (thermal) decomposition of TNT. On the basis of previous experimental observations, we have postulated three possible pathways for TNT decomposition, keeping the aromatic ring intact, and calculated them at room temperature (298 K), 800, 900, 1500, 1700, and 2000 K and at the detonation temperature of 3500 K. Our calculations suggest that at relatively low temperatures, reaction of the methyl substituent on the ring (C-H alpha attack), leading to the formation of 2,4-dinitro-anthranil, is both kinetically and thermodynamically the most favorable pathway, while homolysis of the C-NO(2) bond is endergonic and kinetically less favorable. At approximately 1250-1500 K, the situation changes, and the C-NO(2) homolysis pathway dominates TNT decomposition. Rearrangement of the NO(2) moiety to ONO followed by O-NO homolysis is a thermodynamically more favorable pathway than the C-NO(2) homolysis pathway at room temperature and is the most exergonic pathway at high temperatures; however, at all temperatures, the C-NO(2) --> C-ONO rearrangement-homolysis pathway is kinetically unfavorable as compared to the other two pathways. The computational temperature analysis we have performed sheds light on the pathway that might lead to a TNT explosion and on the temperature in which it becomes exergonic. The results appear to correlate closely with the experimentally derived shock wave detonation time (100-200 fs) for which only the C-NO(2) homolysis pathway is kinetically accessible.  相似文献   

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