{ "id": "1903.02247", "version": "v1", "published": "2019-03-06T08:54:36.000Z", "updated": "2019-03-06T08:54:36.000Z", "title": "Solution and asymptotic analysis of a boundary value problem in the spring-mass model of running", "authors": [ "Łukasz Płociniczak", "Zofia Wróblewska" ], "categories": [ "math.CA" ], "abstract": "We consider the classic spring-mass model of running which is built upon an inverted elastic pendulum. In a natural way, there arises an interesting boundary value problem for the governing system of two nonlinear ordinary differential equations. It requires us to choose the stiffness to ascertain that after a complete step, the spring returns to its equilibrium position. Motivated by numerical calculations and real data we conduct a rigorous asymptotic analysis in terms of the Poicar\\'e-Lindstedt series. The perturbation expansion is furnished by an interplay of two time scales what has an significant impact on the order of convergence. Further, we use these asymptotic estimates to prove that there exists a unique solution to the aforementioned boundary value problem and provide an approximation to the sought stiffness. Our results rigorously explain several observations made by other researchers concerning the dependence of stiffness on the initial angle of the stride and its velocity. The theory is illustrated with a number of numerical calculations.", "revisions": [ { "version": "v1", "updated": "2019-03-06T08:54:36.000Z" } ], "analyses": { "keywords": [ "asymptotic analysis", "nonlinear ordinary differential equations", "classic spring-mass model", "interesting boundary value problem", "numerical calculations" ], "note": { "typesetting": "TeX", "pages": 0, "language": "en", "license": "arXiv", "status": "editable" } } }