Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Elastic Tubes: Modeling Elastic Deformation of Hollow Tubes

View through CrossRef
Abstract The Cosserat theory of elastic rods has been used in a wide range of application domains to model and simulate the elastic deformation of thin rods. It is physically accurate and its implementations are efficient for interactive simulation. However, one requirement of using Cosserat rod theory is that the tubular object must have rigid cross‐sections that are small compared to its length. This requirement make it difficult for the approach to model elastic deformation of rods with large, non‐rigid cross‐sections that can change shape during rod deformation, in particular, hollow tubes. Our approach achieves this task using a hybrid model that binds a mesh elastically to a reference Cosserat rod. The mesh represents the surface of the hollow tube while the reference rod models bending, twisting, shearing and stretching of the tube. The cross‐sections of the tube may take on any arbitrary shape. The binding is established by a mapping between mesh vertices and the rod's directors. Deformation of the elastic tube is accomplished in two phases. First, the reference rod is deformed according to Cosserat theory. Next, the mesh is deformed using Laplacian deformation according to its mapping to the rod and its surface elastic energy. This hybrid approach allows the tube to deform in a physically correct manner in relation to the bending, twisting, shearing, and stretching of the reference rod. It also allows the surface to deform realistically and efficiently according to surface elastic energy and the shape of the reference rod. In this way, the deformation of elastic hollow tubes with large, non‐rigid cross‐sections can be simulated accurately and efficiently.
Title: Elastic Tubes: Modeling Elastic Deformation of Hollow Tubes
Description:
Abstract The Cosserat theory of elastic rods has been used in a wide range of application domains to model and simulate the elastic deformation of thin rods.
It is physically accurate and its implementations are efficient for interactive simulation.
However, one requirement of using Cosserat rod theory is that the tubular object must have rigid cross‐sections that are small compared to its length.
This requirement make it difficult for the approach to model elastic deformation of rods with large, non‐rigid cross‐sections that can change shape during rod deformation, in particular, hollow tubes.
Our approach achieves this task using a hybrid model that binds a mesh elastically to a reference Cosserat rod.
The mesh represents the surface of the hollow tube while the reference rod models bending, twisting, shearing and stretching of the tube.
The cross‐sections of the tube may take on any arbitrary shape.
The binding is established by a mapping between mesh vertices and the rod's directors.
Deformation of the elastic tube is accomplished in two phases.
First, the reference rod is deformed according to Cosserat theory.
Next, the mesh is deformed using Laplacian deformation according to its mapping to the rod and its surface elastic energy.
This hybrid approach allows the tube to deform in a physically correct manner in relation to the bending, twisting, shearing, and stretching of the reference rod.
It also allows the surface to deform realistically and efficiently according to surface elastic energy and the shape of the reference rod.
In this way, the deformation of elastic hollow tubes with large, non‐rigid cross‐sections can be simulated accurately and efficiently.

Related Results

Hydrogel and Polyester Ventilation Tubes in an Animal Model
Hydrogel and Polyester Ventilation Tubes in an Animal Model
ProblemDetermine the resorption rate and biocompatibility characteristics of novel cross‐linked hydrogel ventilations tubes and varied formulations of polyester ventilation tubes.M...
Stability Analysis of Transmission Towers in Mining-Affected Zones
Stability Analysis of Transmission Towers in Mining-Affected Zones
Transmission towers located above mined-out areas may experience collapse or instability due to mining-induced ground subsidence and deformation, which poses significant risks to t...
The Hollow Month At Athens
The Hollow Month At Athens
Abstract(1) Metageitnion in 407/6 was made a hollow month while still retaining δευτερα φνoντo by the omission of a day after δεℵάτη υστερα, undoubtedly ενάτη φνoντo (pp. 230-2)....
Analysis of effective permeability behaviors of magnetic hollow fibers filled in composite
Analysis of effective permeability behaviors of magnetic hollow fibers filled in composite
In order to predict the permeability behaviors of magnetic hollow fibers and their composites in the high frequency region, we proposed a simple hollow approximation method for hol...
Evaluation of Additively Manufactured Heat Exchanger Tubes Using Experimental and Conjugate Heat Transfer Analysis
Evaluation of Additively Manufactured Heat Exchanger Tubes Using Experimental and Conjugate Heat Transfer Analysis
Abstract Additive manufacturing offers many benefits for the design and production of gas turbine engine components. Direct metal laser sintering (DMLS) expands the ...
Deformation Time-series Analysis and Disaster Potentiality Inversion by Short Baseline Interferometry Measurement
Deformation Time-series Analysis and Disaster Potentiality Inversion by Short Baseline Interferometry Measurement
Synthetic aperture radar interferometry (InSAR) measurement technology is a new remote sensing technology that can effectively monitor slight land deformation. Compared with tradit...
Depth Cue Integration is Cognitive Rather than Perceptual: Linton Un-Hollow Face Illusion and Linton Morphing Face Illusion
Depth Cue Integration is Cognitive Rather than Perceptual: Linton Un-Hollow Face Illusion and Linton Morphing Face Illusion
We present two new versions of the Hollow Face Illusion that challenge our understanding of depth cue integration. Traditional accounts of depth cue integration operate at the leve...
Depth Cue Integration is Cognitive Rather than Perceptual: Linton Un-Hollow Face Illusion and Linton Morphing Face Illusion
Depth Cue Integration is Cognitive Rather than Perceptual: Linton Un-Hollow Face Illusion and Linton Morphing Face Illusion
We present two new versions of the Hollow Face Illusion that challenge our understanding of depth cue integration. Traditional accounts of depth cue integration operate at the leve...

Back to Top