Selective heating of different phases of multiphase systems via microwaves can result in energy savings and suppression of side reactions. However, materials properties and operating conditions that maximize temperature gradients are poorly understood. Here we utilize computational fluid dynamics (CFD) computations and temperature measurements in structured flow reactors (monoliths) in a monomodal microwave cavity to assess the temperature difference between the walls and the fluid and develop a simple lumped model to estimate when temperature gradients exist. We also explore the material’s thermal and electrical properties of structured reactors for isothermal catalyst conditions. We propose that CFD simulations can be used as a nonintrusi...
Major efforts in the research field of microwave assisted organic synthesis have demonstrated the sp...
The combination of microwaves exposure with the classical convection heating is seen as a practical ...
The goal of this study was to numerically predict the temperature of a liquid product heated in a co...
[EN] Selective heating of different phases of multiphase systems via microwaves can result in energy...
Microwave (MW) heating has been revolutionary in various applications, including chemical synthesis....
This article describes the results of a modeling study performed to understand the microwave heating...
Microwave irradiation can intensify catalytic chemistry by selective and controlled microwave-cataly...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015.Cata...
Although microwave enhanced chemistry has become an established research topic, the actual electroma...
Microwave technology is gaining popularity as a tool for chemical process intensification and an alt...
A novel heating efficiency analysis of the microwave heated stop-flow (i.e. stagnant liquid) and con...
Research in solid-gas heterogeneous catalytic processes is typically aimed toward optimization of ca...
A novel heating efficiency analysis of the microwave heated stop-flow (i.e. stagnant<br/>liquid) and...
Major efforts in the research field of microwave assisted organic synthesis have demonstrated the sp...
The combination of microwaves exposure with the classical convection heating is seen as a practical ...
The goal of this study was to numerically predict the temperature of a liquid product heated in a co...
[EN] Selective heating of different phases of multiphase systems via microwaves can result in energy...
Microwave (MW) heating has been revolutionary in various applications, including chemical synthesis....
This article describes the results of a modeling study performed to understand the microwave heating...
Microwave irradiation can intensify catalytic chemistry by selective and controlled microwave-cataly...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015.Cata...
Although microwave enhanced chemistry has become an established research topic, the actual electroma...
Microwave technology is gaining popularity as a tool for chemical process intensification and an alt...
A novel heating efficiency analysis of the microwave heated stop-flow (i.e. stagnant liquid) and con...
Research in solid-gas heterogeneous catalytic processes is typically aimed toward optimization of ca...
A novel heating efficiency analysis of the microwave heated stop-flow (i.e. stagnant<br/>liquid) and...
Major efforts in the research field of microwave assisted organic synthesis have demonstrated the sp...
The combination of microwaves exposure with the classical convection heating is seen as a practical ...
The goal of this study was to numerically predict the temperature of a liquid product heated in a co...