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The rate of moisture evaporation, devolatilization rate, and char burnout was calculated according to the waste property characters.
The rate of moisture evaporation, volatile matter devolatilization, char combustion, NOx production, and reduction and dioxin formation were calculated and established according to the local thermal conditions and waste property characteristics.
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These demonstrate the mechanism of local failure and sensitivity of behaviour to waste properties.
Nevertheless, the method needs expansion with industrial solid waste properties and product requirements, and steps need optimization if applied in other wastes.
The numerical results are from initial best estimate analyses, with interface and synthetic waste properties derived from a laboratory testing programme and geosynthetic material properties from manufacturers.
This work proposes a novel approach for the estimation of hazardous waste properties, combining existing information stemming from industrial and institutional partners.
Simulation is made to analyze the behavior of reactor depending on different design and operating variables as well as waste properties.
The variables most affecting the ICFB performance are solids circulation flux, gas solid feedrates, riser diameter, working bed temperatures and waste properties.
This chapter discusses the types of waste used to fuel WTE plants, waste properties, why the properties are important in the design and operation of WTE plants, and the tests used to define the properties.
The flow rate, lateral zone of impact of a well, liquids volume added, and injection pressure were normalized with the waste properties and well dimensions to formulate dimensionless variables.
The simulation results were transformed to the respective dimensionless forms and presented in design charts to estimate the key design parameters as functions of the source dimensions, waste properties, and injection pressure.
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