Biodegradable Stent Strut Cross-Section (2D)
2D reaction-diffusion model of a bioresorbable PLGA stent strut cross-section: a mobile autocatalytic-acid field diffuses through a polymer grid, driving heterogeneous hydrolysis that erodes the interior faster than the rim.
This is the 2D counterpart to the 3D bioresorbable-stent lattice simulator. Rather than animating a whole strut lattice, it zooms into a single strut's circular cross-section and simulates it as a 2D reaction-diffusion grid: each cell independently integrates the autocatalytic Pitt–Schindler chain-scission equation, coupled to its neighbors through a diffusing field of acidic hydrolysis by-products that can only escape at the strut's outer rim. That coupling is what makes this a genuinely distinct, 2D-native mechanism rather than a flattened view of the same 3D animation — it reproduces the well-known "hollowing" pattern of bulk-eroding bioresorbable polymers, where the interior of a strut degrades measurably faster than its surface because trapped acid accelerates hydrolysis in the core. Scrub the timeline or press play to watch 36 months of degradation, and tune glycolide content, autocatalysis strength and the new acid-diffusion rate to see how each reshapes the erosion front.
A 2D reaction-diffusion model of a single bioresorbable PLGA stent strut cross-section: a mobile autocatalytic-acid field diffuses through a grid of polymer cells and leaks out at the rim, driving heterogeneous chain-scission that erodes the strut's interior faster than its surface over a 36-month implant timeline.
2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install