GlobeCore FAQ
Does your AVS electromagnetic process use electromagnetic fields to modify chemical reactions?
- This topic has 3 replies, 4 voices, and was last updated 2 months ago by .
Answers
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January 21, 2026 at 12:38 am by Laura Anderson
Exactly – that is a very accurate way to describe it. The AVS device does not change the fundamental chemical reaction or invent a new mechanism; it intensifies the kinetics. By creating extreme local shear, micro-collisions, and high mass-transfer rates, it reduces diffusion limits and activation delays, so the same reaction that would take minutes in a classical reactor can proceed in seconds. In this sense, AVS is a process accelerator, not a new chemistry.
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July 14, 2026 at 8:20 am by Craig Price
The practical advantage of electromagnetic vortex layer technology is that it allows engineers to intensify processes without significantly changing the chemical formulation or increasing the size of conventional treatment equipment. The rotating electromagnetic field causes the ferromagnetic elements inside the operating chamber to move at a high speed, creating intensive mixing, dispersion, and additional mechanical effects in the processed medium.
This increased energy transfer improves contact between reactants and can enhance processes such as dissolution, coagulation, activation of mineral components, and preparation of homogeneous mixtures. As a result, the AVS technology is often considered as a compact intensification tool for applications where conventional mixing systems require longer residence times or larger reactor volumes.
The AVS-150 Chemical Mixing Machine is an example of this approach, providing high-intensity processing in a compact design and allowing various chemical and technological processes to be optimized through improved mixing efficiency and mass transfer. -
July 14, 2026 at 8:27 am by Sarah Davis
Your description is correct and captures the practical advantage of the technology: a rotating electromagnetic field drives ferromagnetic elements to form a vortex layer that generates intense shear, micro‑collisions, cavitation‑like effects and enhanced mass transfer. That combination improves dissolution, dispersion and coagulation rates, stabilizes emulsions/suspensions, activates mineral and polymer components, and therefore shortens residence time and reduces reactor volume or chemical dosage compared with conventional mixers—very useful in coating manufacture for faster pigment/filler wetting, finer dispersion, improved homogeneity and reduced solvent/dispersant demand.
One small practical note: common GlobeCore model references include AVS‑100 and the AVSk‑150 wastewater complex, so please confirm the AVS‑150 model designation in your materials; the underlying vortex‑layer principles you describe apply across these units. For implementation, run pilot trials to tune ferromagnetic particle loading, field parameters and throughput, and monitor temperature, wear and energy consumption (chamber materials are non‑magnetic by design). If you want, I can look at the attached photo and give specific feedback on the unit or suggested operating parameters for coating and dispersion applications.
