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 共查询到17条相似文献,搜索用时 140 毫秒
1.
为研究半受限空间油气无约束泄爆外场特性,基于爆炸力学、可燃气体爆炸超压评估法则和化学动力学等理论,建立评估外场爆燃超压的无量纲比例距离模型;采用模拟试验的研究方法,测量外场爆燃超压并记录火焰形态变化过程;基于此,分析外场超压与火焰形态变化规律,提出外场超压-比例距离变化半经验公式。结果表明:外场横纵方向上最大爆燃超压与比例距离成负指数函数关系;流场与火焰间的正反馈作用决定了火焰传播过程中的形态变化。  相似文献   

2.
为有效防止粉尘爆炸泄爆引起的二次爆炸及火灾问题,基于泄压理论、消火机理,设计开发无火焰泄压装置,装置主要由消火结构、底座、爆破片及夹持机构组成,消火结构由不锈钢金属丝网组成。选择铝粉尘为测试粉尘,通过自建除尘系统试验平台进行试验研究。结果表明:无火焰泄压装置可成功阻止火焰传播,装置释放的冲击波在5 m外均小于5 kPa,除尘系统内部最大泄爆压力为0.1 MPa,装置前端火焰传播速度均大于100 m/s。  相似文献   

3.
为了研究障碍物对油气泄压爆炸火焰传播特性的影响规律,进行了不同数量障碍物工况下的对比实验,并利用纹影仪和高速摄影仪记录了火焰传播过程,针对障碍物对火焰形态、火焰锋面位置及火焰传播速度的影响规律进行了研究,结果表明:圆柱体障碍物会导致油气泄压爆炸火焰形态产生褶皱和弯曲变形,诱导层流火焰向湍流火焰转变,加速火焰的传播,对油气泄压爆炸火焰的初始传播形态有显著影响;随着障碍物数量的增多,火焰锋面传播距离点火端的最大距离增大,但到达最远距离的时间减少;障碍物能够增强火焰的传播速度,尤其对障碍物下游火焰影响最为显著,随着障碍物数量的增多,火焰传播的最大速度也随之增大,但达到最大火焰传播速度的时间却随之减少;障碍物的存在增大了油气泄压爆炸过程外部爆炸压力,并且随着障碍物数量的增多,外部爆炸压力峰值增长幅度增大。  相似文献   

4.
为研究泄爆夹层内障碍物位置对燃气泄爆效果的影响,以某大型商业综合体暗厨房为研究对象,考虑泄爆夹层中结构梁不同位置的泄爆效果,对暗厨房燃气爆炸的泄爆过程开展数值模拟研究。研究结果表明:在火焰没有到达泄爆窗前的爆炸初始阶段,障碍物对火焰结构和传播速度基本没有影响,当火焰进入泄爆夹层后,障碍物的存在可引发火焰加速现象;当障碍物距离泄爆窗1.7 m时,火焰加速现象较为明显,火焰最大传播速度可达591.5 m/s,此时厨房内压力峰值约2.9 MPa,约为没有结构梁情况下1.42倍;障碍物距离泄爆窗较近时,二者将协同影响火焰传播;厨房内压力峰值随着障碍物与泄爆窗距离的增大遵循增大-突降-增大的规律。研究结果可为商业综合体暗厨房泄爆设计提供一定理论依据。  相似文献   

5.
利用球型容器与管道组合,开展连通容器气体爆炸与泄爆实验,分析连通条件下,火焰在管道中的传播过程及其对起爆容器和传爆容器的压力影响。实验结果表明:连通容器气体爆炸中,火焰从起爆容器到传爆容器传播经历了一段不断加速,但加速度不断减小的过程;泄爆过程中,火焰传播过程与密闭爆炸时基本一致。管道中火焰加速传播,使得传爆容器的爆炸压力和强度相较于作为起爆容器时均明显增加,危险更大,采用与起爆容器相同的泄爆面积,无法满足对连通容器中传爆容器的泄爆。同时,泄爆是一个快速的能量泄放过程应选择合理的泄爆方式,防止二次危害。  相似文献   

6.
以甲烷/空气为研究对象,建立小尺寸管道气体爆炸实验平台,利用高速纹影技术,探测了泄爆过程中预混气体火焰在管道内的传播特性,并得出流场压力、火焰传播速度变化曲线;同时建立k-ε模型,对管道内甲烷/空气预混气体泄爆过程进行模拟,得到数值模拟情况下的流场压力和火焰传播速度变化曲线.模拟图像和实验图像变化趋势大体一致.  相似文献   

7.
利用流体力学软件Fluent对球形容器泄爆过程中流场进行数值模拟,分析泄爆导管长度和泄放压力对爆炸压力和爆炸强度的影响,以及泄爆过程中火焰阵面和速度场的变化。研究表明,泄爆过程增大了燃烧火焰的面积,燃烧火焰在泄爆过程中发生湍流,燃烧速度得到极大地加速,泄爆导管对于容器内的高压气体的泄放起到了约束作用,泄爆导管的长度是影响泄爆过程中容器内部压力变化的重要因素。  相似文献   

8.
为了减少管内气体爆炸造成的损失与破坏,基于大涡模拟LES模型和Zimont燃烧模型,研究泄爆尺寸(直径为40,60,80 mm)和泄爆位置(侧方距点火端1,3,5 m)等泄爆条件对受限空间中氢气燃爆特性的影响。研究结果表明:大孔径泄爆口更好的排放效果造成火焰锋面在通过泄爆口时发生严重畸变,而泄爆口与点火端距离的增加则会削弱火焰锋面畸变的程度,且不同尺寸泄爆口产生的泄压效果差异较大。因此,应考虑将合适尺寸的泄爆口设置于靠近易燃点处。通过探索不同泄爆孔径与泄爆口位置对氢气火焰传播的影响规律,可为实际应用中的安全泄爆起到指导性作用。  相似文献   

9.
为揭示泄爆面特征参数对大尺度受限空间内天然气爆炸超压峰值结构的影响机制,基于典型房间特征,借助计算流体动力学技术研究不同泄爆面开启压力、开启时间以及泄压比等参数条件下室内天然气泄爆超压峰值结构的分布规律。研究结果表明:峰值Pb随开启压力和开启时间增加均呈线性增长趋势,而泄压比对Pb影响较小;峰值Pmfa与室内最大火焰面积有关,随开启压力、开启时间的增加和泄压比的减小,气体出流速度增大,进而产生更强的湍流,导致室内火焰面积和气体燃烧率增加,最终Pmfa增大;峰值Pext随泄压比增加呈快速降低趋势,同时开启压力和开启时间对Pext影响具有协同效应,共同促进Pext快速增加。  相似文献   

10.
为探究在实际生产中采用的大型筒仓内烟草粉尘的爆炸及其泄爆过程,基于大规模数值仿真FLACS软件的粉尘爆炸模块,通过改变初始浓度、点火位置、等比例变化筒仓容积,系统对比研究了泄放火焰的传播范围以及爆炸超压的演化规律。模拟结果表明,筒仓内粉尘浓度、点火位置、筒仓容积的变化均对爆炸过程有影响。水平泄压时,在500~1 000 g/m~3质量浓度范围内,筒仓内粉尘质量浓度越大,爆炸超压越大,火焰传播距离越远;点火位置离泄压口越远,爆炸超压越大,火焰传播距离越远;筒仓容积越大,爆炸超压越大,火焰传播距离越远。  相似文献   

11.
为研究泄爆面积比对泄爆门泄爆特性的影响,运用FLUENT软件建立煤矿井下1∶1巷道模型,在不同泄爆面积比的工况下对瓦斯爆炸传播规律及泄爆过程进行模拟,分析其变化特征和封闭泄爆效果。结果表明:S0工况条件下,压力和温度衰减后保持在0.29 MPa和565 K;S1~S4工况条件下,S4比S1,S2和S3达到封闭状态时间快780,260,50 ms,封闭时间最大节省70.91%;随着泄爆面积比的增大,封闭火区内的压力的峰值、峰值数量和达到封闭状态时间减小,泄爆能力增强;火焰速度峰值和衰减速率增大;温度的初始峰值、峰值数量和达到稳定状态时间减小,最大峰值反而增大,说明泄爆门对瓦斯爆炸火焰无抑制作用。  相似文献   

12.
针对市政排污管网等典型受限空间内可燃气体爆燃风险,建立由水平管道和竖直分支管道构成的数值模型,研究竖直分支管道不同泄爆开启压力对甲烷爆燃压力的影响.研究结果表明:不同泄爆开启压力条件下,管道内存在爆燃压力积聚和泄放的双重效应;水平管道内各测点压力时程曲线均表现为先增大后减小而后出现亥姆霍兹振荡,随着与爆源距离的增加,初...  相似文献   

13.
Explosion venting is a frequently-used way to lower explosion pressure and accident loss. Recently, studies of vessel explosion venting have received much attention, while little attention has been paid to pipe explosion venting. This study researched the characteristics of explosion venting for Coal Bed Methane (CBM) transfer pipe, and proposed the way of explosion venting to chamber in order to avoid the influence of explosion venting on external environment, and investigated the effects of explosion venting to atmosphere and chamber. When explosion venting to atmosphere, the average explosion impulse 4.89 kPa s; when explosion venting to 0 MPa (atmospheric pressure) chamber, average explosion impulse is 7.52 kPa s; when explosion venting to −0.01 MPa chamber, explosion flame and pressure obviously drop, and average explosion impulse decreases to 4.08 kPa s; when explosion venting to −0.09 MPa chamber, explosion flame goes out and average explosion impulse is 1.45 kPa s. Thus, the effect of explosion venting to negative chamber is far better than that to atmospheric chamber. Negative chamber can absorb more explosion gas and energy, increase stretch of explosion flame, and eliminate free radical of gas explosion. All these can promote the effect of explosion venting to negative chamber.  相似文献   

14.
To develop the application of explosion venting technology in high-pressure vessels, a new model for the design of dust explosion venting size was presented, which took the physicochemical phenomenon deriving from the elevation of the static activation pressure into account. Firstly, for confined pressure rise, the wall quenching effect originating from the dust flame thickness was considered by adopting the three-zone model. Secondly, for the venting pressure rise, the energy loss due to the discharge of high-energy burnt mixture (quantified as the specific surface area loss of the flame) was taken into account and the induced turbulence factor was introduced. Thirdly, for the venting pressure drop, a dynamic pressure relief capability evaluation model which takes into account the flame morphology evolution (tear-shaped flame) and the proportion of discharged mixture (relative volume ratio) at elevated activation pressure was proposed. The predicted maximum reduced pressure and venting size were checked against the PMMA explosion experiments and a more great performance was obtained compared with standards.  相似文献   

15.
A 20 L spherical explosive device with a venting diameter of 110 mm was used to study the vented pressure and flame propagation characteristics of corn dust explosion with an activation pressure of 0.78–2.1 bar and a dust concentration of 400∼900 g/m3. And the formation and prevention of secondary vented flame are analyzed and discussed. The results show that the maximum reduced explosion overpressure increases with the activation pressure, and the vented flame length and propagation speed increase first and then decrease with time. The pressure and flame venting process models are established, and the region where the secondary flame occurs is predicted. Whether there is pressure accompanying or not in the venting process, the flame venting process is divided into two stages: overpressure venting and normal pressure venting. In the overpressure venting stage, the flame shape gradually changes from under-expanded jet flame to turbulent jet flame. In the normal pressure venting stage, the flame form is a turbulent combustion flame, and a secondary flame occurs under certain conditions. The bleed flames within the test range are divided into three regions and four types according to the shape of the flame and whether there is a secondary flame. The analysis found that when the activation pressure is 0.78 bar and the dust concentration is less than 500 g/m3, there will be no secondary flame. Therefore, to prevent secondary flames, it is necessary to reduce the activation pressure and dust concentration. When the dust concentration is greater than 600 g/m3, the critical dust concentration of the secondary flame gradually increases with the increase of the activation pressure. Therefore, when the dust concentration is not controllable, a higher activation pressure can be selected based on comprehensive consideration of the activation pressure and destruction pressure of the device to prevent the occurrence of the secondary flame.  相似文献   

16.
To further understand the dynamic mechanism of dust explosion through a vent duct, we designed a small-scale cylindrical vessel connected with a vent duct and performed a dust explosion venting experiment under different opening pressures using corn starch as the explosive medium in this study. The results show that weakening effect of duct on venting is positively correlated with the opening pressure. The explosion pressure in the duct presents a three-peak-structure with time, successively caused by the membrane breaking shock wave, the secondary explosion in the tube, and the continuous combustion, and decreases gradually with the propagation distance. Meanwhile, the three pressure peaks are positively correlated with the opening pressure, while the time interval between them goes to contrary. The increase of opening pressure leads to the increase of secondary explosion intensity and reverse flow in the vessel, further accelerates the reaction rate in the vessel, and then shortens the duration of combustion in the vessel until the phenomenon of flame reignition in the vessel disappears.  相似文献   

17.
A series of experiments on explosion venting of methane-air mixtures are performed to scrutinize the pressure evolution as well as the flame dynamics and morphology at various vent conditions. Specifically, a premixed flame is ignited at the center of a polycarbonate cylindrical compartment, with three various vent areas considered (with negligible vent relief pressure). As expected, the highest maximum pressure is observed in the case of the smallest vent area. For all three cases, the pressure evolution experiences two major peaks, associated with the instants (i) when the maximum flame front surface area in the chamber is reached and (ii) when an external explosion occurs due to venting of unburned gases, respectively. For the fuel-rich mixtures, a flashback is observed subsequent to the external explosion, constituting the key outcome of the present work. The flame tip velocities show two general trends, namely, exponential acceleration towards the vent, while a flame propagates towards the blocked side of the compartment with no acceleration, which is important to know in the fire/explosion safety applications.  相似文献   

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