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Supercool - The Physics, Mathematics, and Engineering of Cryogenesis

Par : Kai Voss
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  • FormatePub
  • ISBN8235452787
  • EAN9798235452787
  • Date de parution15/08/2026
  • Protection num.pas de protection
  • Infos supplémentairesepub
  • ÉditeurIoakim Ioakim

Résumé

Master the Physics and Engineering of Macro-Scale CryogenesisFor decades, cryobiology focused successfully on microscopic cell suspensions, leaving macro-scale organ preservation constrained by the destructive limits of ice crystal formation, thermal shock, and vascular collapse. Supercool: The Physics, Mathematics, and Engineering of Cryogenesis bridges the gap between low-temperature physics and advanced biomedical engineering, providing a comprehensive roadmap for achieving stable, ice-free biological stasis.
Written for biosystems engineers, researchers, and students, this authoritative textbook deconstructs the entire engineering lifecycle of advanced bio-preservation. Explore how modern engineering transforms biological stasis from a theoretical challenge into a scalable industrial reality. Key Technical Focus Areas: Deep Sub-Zero Thermodynamics: Master classical nucleation theory, phase equilibria, transient heat conduction via Fourier's law, and latent heat of fusion dynamics.
Vascular Perfusion Physics: Navigate complex fractal microvascular networks, non-Newtonian CPA viscosity profiles, and convective-diffusive transport coupling. Vitrification & Glass Transition Engineering: Optimize critical cooling rates ($q$), manage glass transition kinetics ($T_g$), and leverage high-pressure phase shifts. Fracture Mechanics & Stress Relief: Mitigate thermal stress, differential contraction mismatches, and micro-cracking using macromolecular polymers and isothermal annealing.
Nanoparticle-Assisted Rapid Warming: Defeat the re-warming crisis and prevent devitrification using superparamagnetic iron oxide nanoparticles (SPIONs) and alternating magnetic fields (AMF). Ischemic & Metabolic Preservation: Combat ATP depletion, oxidative stress cascades, and mitochondrial permeability transition pore (mPTP) failure. Post-Thaw Recovery & Biofabrication: Execute automated microfluidic stepwise CPA dilution curves, restore endothelial nitric oxide signaling, and integrate detergent-decellularized ECM scaffolds.
Whether you are designing next-generation organ preservation hardware, optimizing cryogenic biobanking logistics, or exploring the future of regenerative medicine, Supercool provides the rigorous quantitative framework required to conquer biological time and space.