Showing posts with label microwave. Show all posts
Showing posts with label microwave. Show all posts

Tuesday, February 7, 2023

Sustainable Processing of High-Temperature Ceramics Using Microwave Energy

 


Processing of industrial ceramics for use in high-temperature service environments is currently accomplished by conventional heating that is energy-intensive and polluting. Microwave renders thermal and non-thermal effects that significantly benefit processing of ceramics. Microwave processing is adopted in industrial applications for realizing time, energy and cost savings, and for improving the end product quality and uniformity.

The heating mechanisms are different in conventional and microwave processing of materials. Conventional methods heat the surface and then rely on conduction, convection and radiation for transfer of heat into the material. Microwave, on the other hand, directly interacts with the material across its volume. Given the surface heat losses, heat transport under microwave radiation is from the core towards surface. The specific mechanisms and efficiency of microwave heating depend upon the material type. Microwave radiation also renders non-thermal effects that benefit diffusion, chemical reaction and densification phenomena.

Some advantages of microwave processing are: (i) reduced processing time, temperature and power consumption, and enhanced diffusion and reaction rates; (ii) finer, more uniform and nearly fault-free microstructures, yielding improved and more consistent physical and mechanical properties; (iii) reduced thermal stresses and heat-affected zones; and (iv) improved interfacial qualities resulting from selective hating of phases with higher microwave absorption. These advantages can reduce the energy demand and the corresponding polluting effects of processing ceramics by the currently prevalent conventional heating.

Monday, December 26, 2022

 Microwave Drill  

In conventional microwave heating, energy is directly introduced into the material, resulting in rapid volumetric heating with controlled thermal gradients. A phenomenon referred to as ‘thermal runaway instability’, however, can accidentally concentrate the microwave heating energy, causing a rapid local rise in temperature, that produces a ‘hotspot’. In a non-uniform electromagnetic field, this phenomenon can be caused by the temperature-dependence of material properties. It is generally viewed as a drawback in conventional microwave heating that seeks to minimize thermal gradients.

The ‘microwave drill’ makes intentional use of the thermal runaway instability in order to concentrate the microwave energy for rapid heating and melting of a confined hotspot. Microwave energy is directed to the drilled region by a coaxial waveguide with a movable center electrode. Insertion of the movable center electrode into the molten hotspot forms a hole. A fraction of the molten material would be moved towards and used to line the periphery of the hole. This concept has been reduced to practice for drilling into concrete, ceramics and rocks, and quantitative progress has been made towards increasing the diameter and depth of the holes drilled using this concept. 


 

Artificial Intelligence in Infrastructure Inspection (by Parviz Soroushian)

  Traditional bridge and road inspection methods are time-consuming and expensive, requiring a lot of coordination, such as traffic control,...