Candidate: Tianyu Bai(Dartmouth)
Macro-scale physical simulations and 1:1 rapid prototyping to physically validate spatial constraints and identify macroscopic failure modes.
Feasibility evaluation of sealing modalities relative to the 1 mm spatial limit and 0.1 mm eccentricity.
Mathematical validation of capillary imbibition, microbubble genesis, and thermo-mechanical limits.
Spontaneous liquid penetration driven by the pressure differential across the curved meniscus.
Filling time is proportional to fluid viscosity and the square of the target depth ($L^2$).
Terminal ascending velocity plunges proportionally to the square of a bubble's shrinking diameter.
Internal stress generated by the CTE mismatch between 316SS and the epoxy matrix during heating.
The injection process utilizes EP42HT-2Med, a medical-grade epoxy known for high-temperature resistance and superior biocompatibility.
A precise 5-step process ensures a void-free hermetic seal within the 0.1 mm annular gap.
Validation based on First-Principles of solid mechanics and ASTM standards.
Result: The ΔCTE induces a thermal shear stress of only 312 psi at 121°C, maintaining a 6.4x safety margin below the material's 2,000 psi shear limit.
Strict adherence to international standards for neurosurgical sterile integrity.