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1.
管道内瓦斯爆炸压力的传播研究   总被引:2,自引:0,他引:2  
对瓦斯气体在管道内的爆炸过程进行了初步研究.根据实验结果将压力传播的变化过程分为前驱冲击波、升压、降压、余波4个阶段,并对各阶段中的压力传播状况进行了分析.结果显示,瓦斯气体在管道传播过程中,出现冲击波反射、波叠加及二次反冲现象,为管道内及煤矿巷道爆炸的预防提供了参考.  相似文献   

2.
对连通容器内预混气体爆炸过程进行实验研究,具有重要的科研和实用价值.本文通过实验室内自制的实验仪器,详细研究了不同的点火位置、初始压力、初始浓度对连通容器内预混气体爆炸压力的影响.得出了在大容器中点火,会引起更大的爆炸压力.压力上升速率也增大很快;初始浓度对连通容器内预混气体爆炸的影响基本与单个容器中的影响一致.当初始压力增大时,连通容器的爆炸压力也随着一起增大,而且小容器比大容器增加更快.因而,在工业中,最有效的方法是隔爆,在容器和管道接口设置隔离装置,使爆炸不能通过管道传播.  相似文献   

3.
开展加管道球形容器内预混气体爆炸实验研究在化工和石化企业中具有重要的科研和实用价值.详细研究了气体燃烧时爆炸波的扩展过程,得出球形容器安装管道后会降低球形容器内的最大爆炸压力,随着爆炸波在管道中传播,爆炸压力会不断升高,且管道末端的压力达到最大.通过实验结果分析,合理指出在连通容器上正确安装泄爆装置的位置.  相似文献   

4.
针对约束泄爆结构静开启压力这一关键特征参数,对建筑物内气体爆炸瞬态流场展开数值模拟研究,探索不同静开启压力条件下爆炸压力载荷的分布规律。研究结果证实了爆炸压力载荷双峰结构的客观存在,阐释了双峰压力结构在时间上的分布规律,揭示了双峰时间间隔随泄爆结构静开启压力的非线性特征。研究成果为建筑物内可燃气体爆炸事故的定量风险评估及气体爆炸荷载下建筑结构动力响应与防爆抗爆安全设计奠定必要的理论基础。  相似文献   

5.
气体、粉尘爆炸灾害及其安全技术   总被引:9,自引:14,他引:9  
对可燃性气体、蒸汽、粉尘的爆炸特性及其抑爆、隔爆安全技术进行了系统的研究 ,并对常见的可燃性气体、蒸汽和粉尘的各种爆炸特性参数和气体抑爆安全技术参数进行了实验测定。根据实验测定结果得到的结论对这种可燃性物质的安全应用具有重要的参考价值  相似文献   

6.
利用计算流体动力学软件Fluent,对废金属破碎机内可燃气体的爆炸过程进行了数值模拟,研究了不同初始温度和压力条件下甲烷气体爆炸的温度、压力发展情况。结果表明:随着爆炸过程中初始温度的增加,爆炸温度略有上升,但增幅小于初始温度增幅,爆炸压力则出现明显下降;随着初始压力增加,爆炸温度变化不大,爆炸压力和压力上升速率则出现明显上升,且爆炸压力和初始压力近似成线性关系。  相似文献   

7.
为研究矿井火区中一氧化碳(CO)、氢气(H_2)、乙烯(C_2H_4)和乙烷(C_2H_6)等其他可燃气体对甲烷(CH_4)爆炸特性的影响,利用可视球形气体爆炸系统开展了多元可燃气体爆炸压力特性试验,观察并分析了峰值爆炸压力、最大爆炸压力上升速率及其相应时间。通过高速摄影系统拍摄了视窗范围内爆炸火焰传播图像,基于边缘检测方法确定了火焰前锋位置,继而得到最大火焰传播速度。分析了以氢气为主要成分的其他可燃气体对低浓度CH_4-空气混合物压力特性和火焰传播行为的影响。结果表明,多元可燃气体的存在增加了低浓度CH_4-空气混合物的爆炸危险性。随混合气体体积分数增加,低浓度CH_4-空气混合物的峰值爆炸压力、最大爆炸压力上升速率和最大火焰传播速度非线性增加;此外,到达峰值爆炸压力、最大爆炸压力上升速率的时间显著缩短。  相似文献   

8.
针对自行设计的气体爆炸试验装置中的空气加热管路部分进行了压力损失的计算,并进行了实验验证,通过实验验证该管路达到了设计要求.  相似文献   

9.
为了有效抑制气体爆炸时产生的冲击波强度,设计加工了内部截面为110 mm×80 mm,长500 mm的爆炸实验管道,利用高频动态压力传感器,对比研究了泡沫镍在管道内的安放位置对甲烷-空气预混气体爆炸的影响。结果表明:当把泡沫镍铺设在管道中间位置时其对爆炸超压的抑制效果最好,其次是放置在管道的尾部,效果最差的是将多孔材料放置在管道的前部。  相似文献   

10.
激波诱导下煤粉的爆炸压力测试   总被引:6,自引:3,他引:3  
因气体爆炸导致沉积粉尘的二次爆炸的威力远大于单纯的气体或者粉尘爆炸产生的威力,利用自制的装置,诱导煤粉爆炸的激波由甲烷气体爆炸产生,对激波诱导下煤粉的爆炸压力Pmax、爆炸压力上升速率(dp/dt)max进行了实验研究。该实验分别研究煤粉浓度及煤粉粒度对爆炸指数的影响,其结果表明:对于不同的煤粉浓度,存在一个理想煤粉浓度值,在这个浓度下的煤粉爆炸压力值最大;随着煤粉粒度的减小,其爆炸压力不断升高。  相似文献   

11.
利用FLACS软件分析初始压力、初始温度对CH4/CO2/air混合气的爆炸温度、最大爆炸压力的影响;并与计算值对比。结果表明:①初始压力对爆炸温度、爆炸前后压力比影响可以忽略。常温变压条件下二氧化碳浓度增加,爆炸温度与爆炸前后压力比基本呈线性降低。常压变温条件较复杂,二氧化碳浓度升高爆炸温度降低;初始温度对低浓度(<15%)二氧化碳混合气爆炸温度几乎没有影响,而高浓度(>15%)二氧化碳混合气爆炸温度随初始温度增加而升高;最大爆炸压力随二氧化碳浓度以及温度升高而降低。②在设定条件下,低浓度(5%~10%)二氧化碳混合气爆炸温度计算值与模拟值相对误差小于5.5%,吻合较好;最大爆炸压力计算值与模拟值相对误差在6.5%~10.5%之间。  相似文献   

12.
To explore the inhibitory effects of CF3I and CO2 gas on the explosion pressure and flame propagation characteristics of 9.5% methane, a spherical 20 L experimental explosion device was used to study the effect of the gas explosion suppressants on the maximum explosion pressure, maximum explosion pressure rise rate and flame propagation speed of methane. The results indicated that with a gradual increase in the volume fraction of the gas explosion suppressant, the maximum explosion pressure of methane and maximum explosion pressure rise rate gradually decreased, and the time taken to reach the maximum explosion pressure and maximum explosion pressure rise rate was gradually delayed. At the same time, the flame propagation speed gradually decreased. Additionally, the time taken for the flame to reach the edge of the window and the time taken for a crack as well as a cellular structure to appear on the flame surface was gradually delayed. The fluid dynamics uncertainty was suppressed. The explosion pressure and flame propagation processes were markedly suppressed, but the flame buoyancy instability was gradually enhanced. By comparing the effects of the two gas explosion suppressants on the pressure and flame propagation characteristics, it was found that at the same volume fraction, trifluoroiodomethane was significantly better than carbon dioxide in suppressing the explosion of methane. By comparing the reduction rates of the characteristic methane explosion parameters at a volume fraction of 9.5%, it was observed that the inhibitory effect of 4% trifluoroiodomethane on the maximum explosion pressure was approximately 4.6 times that of the same amount of carbon dioxide, and the inhibitory effect of 4% trifluoroiodomethane on the maximum explosion pressure rise rate and flame propagation speed was approximately 2.7 times that of the same amount of carbon dioxide. The addition of 0.5%–1.5% trifluoromethane to 4% and 8% carbon dioxide can improve the explosion suppression efficiency of carbon dioxide. This enhancing phenomenon is a comprehensive manifestation of the oxygen-decreasing effect of carbon dioxide and the trifluoroiodomethane-related endothermic effect and reduction in key free radicals.  相似文献   

13.
By varying inert gas content, equivalence ratio and initial pressure, this study is aimed at investigating flame propagation behaviors and explosion pressure characteristics near suppression limit. For carbon dioxide, the weakest flame floating phenomenon is observed at Φ = 1.5 and the buoyant instability is enhanced when the equivalent ratio deviates to the rich and lean sides. For nitrogen, the buoyant instability decreases with increasing equivalent ratio. Both maximum explosion pressure and maximum pressure rise rate increase firstly and then decrease with the increase of equivalence ratio, and they decrease significantly with increasing content of carbon dioxide and nitrogen. For carbon dioxide, the critical suppression ratio of Φ = 0.6, 0.8, 1.0, 1.5 and 2.0 is 7.50, 7.18, 5.74, 3.83, and 2.87. For nitrogen, the critical suppression ratio of Φ = 0.6, 0.8, 1.0, 1.5 and 2.0 is 15.83, 11.87, 9.50, 6.33 and 4.75. Compared to nitrogen, the carbon dioxide is more effective on suppressing hydrogen explosion pressure. The adiabatic flame temperature, thermal diffusivity and mole fraction of active radicals continue to decrease with increasing content of carbon dioxide and nitrogen, which contributes to the decrease of laminar burning velocity.  相似文献   

14.
为研究硬脂酸粉尘的爆炸特性,采用20 L球型爆炸仪对4个粒径范围的硬脂酸粉尘进行粉尘爆炸试验研究。结果表明:一定浓度范围内增大粉尘浓度能够提升硬脂酸粉尘的爆炸能量和燃烧速率。增大粉尘浓度,爆炸猛烈度先增强后减弱;减小粉尘粒径,能增强爆炸猛烈度和敏感度。粒径小于58 μm粉尘的爆炸猛烈度和敏感度最大,浓度500 g/m3时,该粉尘有最大爆炸压力1.12 MPa和最大升压速率142.00 MPa/s。  相似文献   

15.
湍流状态下甲烷爆炸特性的实验研究   总被引:6,自引:0,他引:6  
利用20L近球形气体爆炸反应装置,测试甲烷在宏观静止和湍流两种不同状态下的爆炸特性。实验结果表明:甲烷的爆炸极限受其流动状态的影响不明显;湍流状态下甲烷爆炸压力Pm和爆炸压力上升速率(dp/dt)m较宏观静止状态明显增大,爆炸压力峰值时间tm明显缩短,其中爆炸压力上升速率受湍流影响较为显著;甲烷浓度不同,其爆炸受湍流影响的程度也不同,较高浓度(11%~16%)时的Pm受湍流的影响程度较大,越靠近最佳浓度(dp/dt)m和tm受湍流的影响程度越大;同一浓度下Pm和(dp/dt)m随着湍流的加强而增大,tm则缩短。该研究表明,避免和减少湍流对矿井瓦斯爆炸过程的抑制具有重要作用。  相似文献   

16.
In order to study the influences of coal dust components on the explosibility of hybrid mixture of methane and coal dust, four kinds of coal dust with different components were selected in this study. Using the standard 20 L sphere, the maximum explosion pressure, explosion index and lower explosion limits of methane/coal dust mixtures were measured. The results show that the addition of methane to different kinds of coal dust can all clearly increase their maximum explosion pressure and explosion index and decrease their minimum explosion concentration. However, the increase in the maximum explosion pressure and explosion index is more significant for coal dust with lower volatile content, while the decrease in the minimum explosion concentration is more significant for coal dust with higher volatile content. It is concluded that the influence of methane on the explosion severity is more pronounced for coal dust with lower volatile content, but on ignition sensitivity it is more pronounced for coal dust with higher volatile content. Bartknecht model for predicting the lower explosion limits of methane/coal dust mixture has better applicability than Le Chatelier model and Jiang model. Especially, it is more suitable for hybrid mixtures of methane and high volatile coal dust.  相似文献   

17.
为测定现场可燃混合气体的爆炸性,对比分析了国内外实验室爆炸极限的测定装置及爆炸性判定方法,设计研制了混合气体爆炸性现场测试装置。装置实现了爆炸性环境现场的自动采样、超高温点火、高速压力和温度测定及爆炸性自行判定。开展了丙烷、乙烯和液化石油气等典型可燃气体爆炸性实验,提出了基于压力和火焰温度变化相结合的气体爆炸性判定指标,改变了传统目测判定方式。研究结果表明:20 L球和1 L爆炸腔以爆炸压力提升来判定,比管式法测定的爆炸极限范围窄,以压力提升量5%~10%判定较适宜;1 L爆炸腔以爆炸过程温度提升量来判定,爆炸极限范围比以爆炸压力提升量判定宽,与目测观察的管式测定法相比,略宽于管式测定法和大部分文献数据。  相似文献   

18.
Flame speeds and rates of pressure rise for gaseous explosions in a 76 mm diameter closed cylindrical vessel of large length to diameter ratio (L/D = 21.6), were quantitatively investigated. Methane, propane, ethylene and hydrogen mixtures with air were studied across their respective flammability ranges. Ignition was affected at one end of the vessel. Very fast flame speeds corresponding to high rates of pressure rise were measured in the initial 5–10% of the total explosion time. During this period 20–35% of the maximum explosion pressure was produced, and over half of the flame propagation distance was completed. Previous work has concentrated on the later stages of this type of explosion; the development of tulip flames, pressure wave effects and transition to turbulence. The initial fast phase is very important and should dominate considerations in pressure relief vent design for vessels of large L/D.  相似文献   

19.
对不同初始压力和温度条件下的甲烷/空气混合气的爆炸极限进行实验研究,利用最大-最小准则来确定爆炸极限.分析了温度和压力对甲烷/空气混合气燃爆特性的影响.采用氮气作为惰性气体,对其防爆抑爆效果进行了实验研究.  相似文献   

20.
The explosion characteristics of propane–diluent–air mixtures under various temperatures and pressures were investigated using a 20-L apparatus. The explosion limits of propane diluted with nitrogen or carbon dioxide were measured at high temperatures from 25 to 120 °C. The results showed that the upper explosion limit (UEL) increased, and the lower explosion limit (LEL) decreased with the rising temperature. The explosion limits of propane diluted with nitrogen or carbon dioxide were also measured at high pressures from 0.10 to 0.16 MPa. The results showed that the UEL increased, and the LEL almost remainedunchanged along with increased pressure. Under the same initial operating conditions, the concentration of nitrogen required to reach the minimum inerting concentration (MIC) point was higher than the concentration of carbon dioxide. Finally, the study investigated the limiting oxygen concentration (LOC) of propane under various initial temperatures, initial pressures, and inert gases. The LOC of propane decreased approximately linearly with increased temperature or pressure, and the LOC of propane dilution with carbon dioxide was greater than dilution with nitrogen from 25 to 120 °C or from 0.10 to 0.16 MPa, which indicated that the dilution effect of carbon dioxide was better than that of nitrogen.  相似文献   

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