Date of Award
6-2026
Document Type
Thesis
Publisher
Santa Clara : Santa Clara University, 2026
Degree Name
Master of Science (MS)
Department
Bioengineering
First Advisor
Maryam Mobed-Miremadi
Abstract
Traditional bulk cavity microneedles suffer from stagnant zones and internal wall collisions that damage suspended cell carriers. This research computationally optimized and experimentally validated a novel multi-planar, branched hollow microneedle chamber to minimize dead volume and protect sensitive payloads. By replacing the traditional bulk cavity with a symmetric six-peripheral nozzle architecture, COMSOL simulations confirmed the elimination of central stagnation zones. Low fluid velocities (0.05 m/s) maintained streamline alignment, while higher velocities (0.32 m/s) induced wall impacts, a drift completely mitigated by high-viscosity fluids.
Arrays fabricated via SLA 3D printing demonstrated consistent cross-unit nozzle diameters, despite a 27.8% average print shrinkage. Payload extrusion was empirically validated using fluorescent alginate microcapsules, establishing a linear calibration range (R² = 0.9778) to dynamically track volume fractions, with internal payload retention limited to 10% to 20%. Biomechanical testing on tissue phantoms verified structural integrity for reliable puncture under a 7.8 ± 0.7 N peak force.
This novel design resolves historical flow imbalances and operates at shear-protective flow rates of 1.53 to 7.54 mL/min, substantially lower than the 12 mL/min literature standard. This gentle transport environment establishes a robust framework for advancing microencapsulated cell-based therapies, with future translational optimization required to align these workflows with clinical infusion rates that minimize patient discomfort.
Recommended Citation
Lang, Ryan, "Redesign and Flow Characterization of Microcapsules through Hollow 3D-Printed Microneedles" (2026). Bioengineering Master's Theses. 17.
https://scholarcommons.scu.edu/bioe_mstr/17
