語系:
繁體中文
English
說明(常見問題)
回圖書館首頁
手機版館藏查詢
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Techniques for extended modeling of ...
~
Young, Jonathan Michael.
FindBook
Google Book
Amazon
博客來
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick.
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick./
作者:
Young, Jonathan Michael.
面頁冊數:
190 p.
附註:
Source: Dissertation Abstracts International, Volume: 71-12, Section: B, page: 7681.
Contained By:
Dissertation Abstracts International71-12B.
標題:
Engineering, Biomedical. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3430842
ISBN:
9781124303888
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick.
Young, Jonathan Michael.
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick.
- 190 p.
Source: Dissertation Abstracts International, Volume: 71-12, Section: B, page: 7681.
Thesis (Ph.D.)--University of Rochester, 2010.
Computational models that simulate the biophysical mechanisms of early cardiac morphogenesis in the embryonic chick heart have been used to demonstrate the influence of biomechanics in cardiac development. However, algorithms for the automatic coding of material subroutines that govern the constitutive relations of biological tissues, generating realistic: geometries, transferring solution results correctly during analysis continuation procedures, and for including advanced biomechanical components of the developing cardiac environment limit current models from demonstrating the role biomechanics has on normal cardiac development. The purpose of our work is to develop and demonstrate novel techniques to resolve each of the aforementioned limitations and use new techniques to model the hypothetical role of biormechanics in cardiac development.
ISBN: 9781124303888Subjects--Topical Terms:
1017684
Engineering, Biomedical.
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick.
LDR
:05337nam 2200349 4500
001
1404608
005
20111130124056.5
008
130515s2010 ||||||||||||||||| ||eng d
020
$a
9781124303888
035
$a
(UMI)AAI3430842
035
$a
AAI3430842
040
$a
UMI
$c
UMI
100
1
$a
Young, Jonathan Michael.
$3
1683941
245
1 0
$a
Techniques for extended modeling of cardiac morphogenesis in the embryonic chick.
300
$a
190 p.
500
$a
Source: Dissertation Abstracts International, Volume: 71-12, Section: B, page: 7681.
500
$a
Adviser: Renato Perucchio.
502
$a
Thesis (Ph.D.)--University of Rochester, 2010.
520
$a
Computational models that simulate the biophysical mechanisms of early cardiac morphogenesis in the embryonic chick heart have been used to demonstrate the influence of biomechanics in cardiac development. However, algorithms for the automatic coding of material subroutines that govern the constitutive relations of biological tissues, generating realistic: geometries, transferring solution results correctly during analysis continuation procedures, and for including advanced biomechanical components of the developing cardiac environment limit current models from demonstrating the role biomechanics has on normal cardiac development. The purpose of our work is to develop and demonstrate novel techniques to resolve each of the aforementioned limitations and use new techniques to model the hypothetical role of biormechanics in cardiac development.
520
$a
First, we use the symbolic mathematics software Mathematica and nonlinear continuum mechanics to automatically generate FORTRAN based user material subroutines. The Mathematica notebook only requires the definition of a pseudoelastic strain energy function to generate the current Cauchy stress and Tensor of Elasticity for all integration points in the model. We demonstrate the accuracy of the automatically generated code using uniaxial, equibiaxial, and simple shear tests of materials defined by a Fung-Orthotropic pseudoelastic strain energy function. The code is also capable of modeling continuum growth, and we therefore test it by curling and twisting a bilayered bar. The Mathematica user material subroutine generator automatically generated user material subroutines that performed well for standard tests in hyperelasticity and complex problems in biomechanics. Therefore, we made the code freely available as supplemental material to an article we published in the Journal of Biomechanical Engineering.
520
$a
We then describe the generation of realistic geometries by demonstrating the benefits and drawbacks to voxel based reconstructions. To resolve the limitations of the pure voxel based mesh, we present both results smoothing and mesh smoothing algorithms. We adapt the theory of membranes to design an algorithm, which recalculates the results on the boundaries of a pure voxel based mesh. Additionally, we implement Laplacian band-pass smoothing to modify the pure voxel based mesh, and thus generate a new smoothed geometric mesh. We conclude that results recalculation is only valid if the radius of curvatures represented in the model are large compared to voxel size. However, the mesh smoothing technique used here provides a realistic valid mesh, which can be used in nonlinear analyses.
520
$a
Next we outline the standard technique for solution transfer and demonstrate its limitation when transferring field discontinuities. We develop a novel solution transfer scheme that reduces the diffusion of solution fields during analysis transfer. We demonstrate the benefits of our novel solution transfer technique in a simple growth based example that relates to cardiac morphogenesis.
520
$a
Finally, we include the presence of the splanchnopleure, implement cohesive contact to simulate fusion of the omphalomesenteric veins, include element deletion to simulate the rupture of the dorsal mesocardium, and recast the developmental biomechanics of early cardiac morphogenesis using a nonlinear explicit dynamics solver. The new computational model extends previously studied mechanisms of cardiac morphogenesis to study c-looping in a single simulation. We maintain the growth stretches used to simulate normal development, while we independently eliminate the major structural components of the heart model to provide secondary validation of the hypothesized growth mechanisms of normal development. The predicted deformation, stress, and strain of the extended model are qualitatively and quantitatively agreeable compared to in vivo observations of cardiac development in the embryonic chick.
520
$a
The algorithms we describe and implement in this work extend the capabilities of current computational models in describing the biomechanics of cardiac morphogenesis. We use a variety of numerical tools to overcome the limitations of current models, and though our focus is on cardiac development, these tools are beneficial for studying related problems in growth and remodeling.
590
$a
School code: 0188.
650
4
$a
Engineering, Biomedical.
$3
1017684
650
4
$a
Engineering, Mechanical.
$3
783786
650
4
$a
Biophysics, Biomechanics.
$3
1035342
690
$a
0541
690
$a
0548
690
$a
0648
710
2
$a
University of Rochester.
$3
515736
773
0
$t
Dissertation Abstracts International
$g
71-12B.
790
1 0
$a
Perucchio, Renato,
$e
advisor
790
$a
0188
791
$a
Ph.D.
792
$a
2010
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3430842
筆 0 讀者評論
館藏地:
全部
電子資源
出版年:
卷號:
館藏
1 筆 • 頁數 1 •
1
條碼號
典藏地名稱
館藏流通類別
資料類型
索書號
使用類型
借閱狀態
預約狀態
備註欄
附件
W9167747
電子資源
11.線上閱覽_V
電子書
EB
一般使用(Normal)
在架
0
1 筆 • 頁數 1 •
1
多媒體
評論
新增評論
分享你的心得
Export
取書館
處理中
...
變更密碼
登入