Modeling and simulation of heat source trajectories through phase-change materials

09/19/2019
by   Alexander Gary Zimmerman, et al.
0

The modeling and simulation of heat source trajectories through phase-change materials is a relevant problem both for space exploration and for terrestrial climate research, among other fields. In space, the DLR and NASA are both interested in exploring beneath the surfaces of icy moons, primarily Enceladus and Europa, where conditions may alloy for extraterrestrial life. On Earth, unique sub-glacial aquatic ecosystems offer potential for geo-biological discoveries. Unfortunately, existing ice-drilling technology is dirty and cumbersome. Melting probes are a clean and compact alternative technology which use heaters to melt through the ice. A melting probe's trajectory can be controlled with differential heating. Successful trajectory control requires advancements not only in the modeling and simulation of the ambient dynamics, but also of the probe's coupled rigid body dynamics. Fundamentally, the rigid body dynamics can be modeled by the equations of motion; but this approach is prohibitively complex. This work proposes an approach which exploits that the motion of the probe is driven by contact with the evolving liquid-solid interface. From this perspective, an energy minimization problem is formulated. The general mathematical problem is formulated as two split operators, respectively for the rigid body dynamics and the ambient dynamics. These operators are coupled with feasibility constraints which ensure that the probe does not penetrate the solid. Concrete examples are shown both for the energy minimization problem and for the unsteady ambient dynamics. Finally, an algorithm is presented for the temporal coupling of the split operators, which is implemented using Python and C++. Example trajectories are shown, including the dynamic response of the probe velocity to a rapid change in the heat flux.

READ FULL TEXT

page 13

page 14

page 15

page 20

page 26

research
11/02/2022

A scale-coupled numerical method for transient close-contact melting

We introduce a numerical workflow to model and simulate transient close-...
research
01/25/2022

Affine Body Dynamics: Fast, Stable Intersection-free Simulation of Stiff Materials

Simulating stiff materials in applications where deformations are either...
research
10/15/2019

On the Hardware Feasibility of Nonlinear Trajectory Optimization for Legged Locomotion based on a Simplified Dynamics

We propose two feasibility constraints to be included in a Single Rigid ...
research
02/18/2019

An adaptive simulation of nonlinear heat and moisture transfer as a boundary value problem

This work presents an alternative view on the numerical simulation of di...
research
11/23/2020

Computing Feasible Trajectories for an Articulated Probe in Three Dimensions

Consider an input consisting of a set of n disjoint triangular obstacles...
research
06/05/2023

Reef Elegy: An Auditory Display of Hawaii's 2019 Coral Bleaching Data

This paper describes an auditory display of Hawaii's 2019 coral bleachin...

Please sign up or login with your details

Forgot password? Click here to reset