A Modified Random Pore Model for Gasification Kinetics of Coal Char and Biomass Char

2015 ◽  
pp. 841-848
Author(s):  
Guang-Wei Wang ◽  
Jian-Liang Zhang ◽  
Wei-Wei Geng ◽  
Jiu-gang Shao
Author(s):  
Guang-wei Wang ◽  
Jian-liang Zhang ◽  
Wei-wei Geng ◽  
Jiu-gang Shao

2016 ◽  
Vol 18 (1) ◽  
pp. 93-98 ◽  
Author(s):  
S.M.M. Nouri ◽  
H. Ale Ebrahim

Abstract In this work, a modified random pore model was developed to study the kinetics of the carbonation reaction of CaO. Pore size distributions of the CaO pellets were measured by nitrogen adsorption and mercury porosimetry methods. The experiments were carried out in a thermogravimeter at different isothermal temperatures and CO2 partial pressures. A fractional concentration dependency function showed the best accuracy for predicting the intrinsic rate of reaction. The activation energy was determined as 11 kcal/mole between 550–700°C. The effect of product layer formation was also taken into account by using the variable product layer diffusivity. Also, the model was successfully predicted the natural lime carbonation reaction data extracted from the literature.


BioResources ◽  
2014 ◽  
Vol 9 (2) ◽  
Author(s):  
Jian-Liang Zhang ◽  
Guang-Wei Wang ◽  
Jiu-Gang Shao ◽  
Hai-Bin Zuo

2003 ◽  
Vol 17 (4) ◽  
pp. 961-970 ◽  
Author(s):  
Hao Liu ◽  
Chunhua Luo ◽  
Masahiro Kaneko ◽  
Shigeru Kato ◽  
Toshinori Kojima

Energies ◽  
2021 ◽  
Vol 14 (21) ◽  
pp. 7229
Author(s):  
Shengguo Zhao ◽  
Liang Ding ◽  
Yun Ruan ◽  
Bin Bai ◽  
Zegang Qiu ◽  
...  

The maximum gasification rate of corn stalk char (CSC) appeared at high conversion range, and its quite different gasification behaviors from other carbonaceous materials are all derived from the catalytic effect of alkali and alkali earth metals (AAEMs), so it is necessary to study the effect of AAEMs and gasification kinetics of such biomass char. However, there are few systematic discussions about this effect and kinetic modeling. Thus, in this study, CSC samples were prepared in a fast pyrolysis fixed-bed reactor, and its gasification experiments were conducted on a pressurized magnetic suspension balance at various total pressures (0.1–0.7 MPa), steam concentrations (10–70 vol.%) and temperatures (725–900 °C). Moreover, a water-leached CSC (H2O-CSC) was also prepared to evaluate the impact of AAEMs on the gasification performance of CSC, and some well-known models were adopted to describe the gasification behaviors. On the basis of these results, the effect of primary AAEMs on the gasification behaviors of CSC and gasification kinetic modeling were obtained. Results showed total pressure had no obvious influence on the gasification rate of CSC, and the reaction order varied at 0.43–0.55 with respect to steam partial pressures. In addition, the modified random pore model (MRPM) and Langmuir–Hinshelwood (L-H) model were satisfactorily applied to predict the gasification behaviors of CSC. The catalytic effect of AAEMs on CSC gasification was weakened due to water-leaching treatment. A random pore model (RPM) could describe the gasification behavior of H2O-CSC well, followed by grain model (GM) and volumetric model (VM).


2014 ◽  
Vol 618 ◽  
pp. 316-320
Author(s):  
Hua Fei ◽  
Jin Ming Shi ◽  
Yuan Lin Li ◽  
Kai Luo

The gasification of straw stalk in CO2 environment was studied by isothermal thermogravimetric analysis. The characteristics of rice straw and maize stalk gasification at different temperatures were examined under CO2 atmosphere. The relationship between reaction time and carbon conversion of two biomass chars was analyzed by the random pore model (RPM), and compared with the simulation of the shrinking core reaction model (SCRM). The results show that the random pore model is better to predict the experimental data at different temperatures. This means that the characteristics of pore structure for the influence of biomass chars gasification is well reflected by parameter ψ used in RPM. It indicates that the RPM can be applied to the comprehensive simulation of biomass chars gasification in CO2 environment.


1994 ◽  
Vol 6 (1) ◽  
pp. 65-77 ◽  
Author(s):  
Sanjeev S. Tambe ◽  
Srinivas S. Yerrapragada ◽  
K. L. Gauri

Fuel ◽  
2013 ◽  
Vol 114 ◽  
pp. 128-134 ◽  
Author(s):  
Timipere S. Farrow ◽  
Chenggong Sun ◽  
Colin E. Snape
Keyword(s):  
Burn Out ◽  

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