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  4. Minimizing hydraulic resistance of a plant root by shape optimization
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Minimizing hydraulic resistance of a plant root by shape optimization

Full metadata

Description

Analytical solution of the pressure field for water uptake through a composite root, coupled with fully saturated soil is derived by using the slender body approximation. It is shown that in general, the resistance of the root and soil are not additive. This result can play a very important role in modelling water uptake through plant roots and determination of hydraulic resistances of plant roots. Optimum plant root structure that minimizes a single root’s hydraulic resistance is also studied in this work with the constraint of prescribed root volume. Hydraulic resistances under the slender body approximation and without such a limitation are considered. It is found that for large stele-to-cortex permeability ratio, there exists an optimum root length-to-base-radius ratio that minimizes the hydraulic resistance. A remarkable feature of the optimum root structure is that the optimum dimensionless stele conductivity depends only on a single geometrical parameter, the stele-to-root base-radius ratio. Once the stele-to-root base-radius ratio and the stele-to-cortex permeability ratio are given, the optimum root length-to-radius ratio can be found. While these findings remain to be verified by experiments for real plant roots, they offer theoretical guidance for the design of bio-inspired structures that minimizes hydraulic resistance for fluid production from porous media.

Date Created
2016
Contributors
  • Chandrashekar, Sriram (Author)
  • Chen, Kang-Ping (Thesis advisor)
  • Huang, Huei-Ping (Committee member)
  • Rykaczewski, Konrad (Committee member)
  • Arizona State University (Publisher)
Topical Subject
  • Mechanical Engineering
  • Hydraulic Resistance
  • Plant Root
  • Frictional resistance (Hydrodynamics)
  • Fluid Dynamics
  • Roots (Botany)
Resource Type
Text
Genre
Masters Thesis
Academic theses
Extent
vi, 62 pages : illustrations (some color)
Language
eng
Copyright Statement
In Copyright
Reuse Permissions
All Rights Reserved
Primary Member of
ASU Electronic Theses and Dissertations
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.40290
Statement of Responsibility
by Sriram Chandrashekar
Description Source
Viewed on November 22, 2016
Level of coding
full
Note
Partial requirement for: M.S., Arizona State University, 2016
Note type
thesis
Includes bibliographical references (pages 61-62)
Note type
bibliography
Field of study: Mechanical engineering
System Created
  • 2016-10-12 02:19:58
System Modified
  • 2021-08-30 01:21:20
  •     
  • 11 months 2 weeks ago
Additional Formats
  • OAI Dublin Core
  • MODS XML

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