We study an optimization problem for a model of steady state water transport through plants that maximizes water flow subject to the constraints on hydraulic conductance due to vulnerability to embolism (air blockage of conduits). The model has an elementary geometric interpretation, and exhibits bottleneck behavior where one of the plant segments limits the overall optimal flow, sometimes in a counterintuitive way. The results show good agreement with experimental measurements and provide support for the hypothesis that leaves serve as a safety buffer protecting stems against excessive embolism.Comment: 13 pages, 2 tables, 3 figure
Increasing frequencies and intensities of droughts are projected for many regions of the Earth. Wate...
Leaf hydraulic conductance (k leaf) is a central element in the regulation of leaf water balance but...
The evolution of lignified xylem allowed for the efficient transport of water under tension,but als...
In vast areas of the world, forests and vegetation are water limited and plant survival depends on t...
In vast areas of the world, forests and vegetation are water limited and plant survival depends on t...
The definitive version of this article is available at www.newphytologist.com.• There are two optima...
Shaping global water and carbon cycles, plants lift water from roots to leaves through xylem conduit...
Water transport from soils to the atmosphere is critical for plant growth and survival. However, we ...
Water potential explains water transport in the Soil-Plant-Atmosphere Continuum (SPAC), and is gaini...
<p>The purpose of this study was to investigate hydraulic limitations associated with long, tall ste...
Plant function requires effective mechanisms to regulate water transport at a variety of scales. Her...
The ability to transport water through tall stems hydraulically limits stomatal conductance (g(s)), ...
L'article original est publié par The American Society of Plant BiologistsAcross plant species, leav...
Plant root system can be conceptualized as a network of water saturated porous pipes, at the interfa...
With global warming, climate zones are projected to shift poleward, and the frequency and intensity ...
Increasing frequencies and intensities of droughts are projected for many regions of the Earth. Wate...
Leaf hydraulic conductance (k leaf) is a central element in the regulation of leaf water balance but...
The evolution of lignified xylem allowed for the efficient transport of water under tension,but als...
In vast areas of the world, forests and vegetation are water limited and plant survival depends on t...
In vast areas of the world, forests and vegetation are water limited and plant survival depends on t...
The definitive version of this article is available at www.newphytologist.com.• There are two optima...
Shaping global water and carbon cycles, plants lift water from roots to leaves through xylem conduit...
Water transport from soils to the atmosphere is critical for plant growth and survival. However, we ...
Water potential explains water transport in the Soil-Plant-Atmosphere Continuum (SPAC), and is gaini...
<p>The purpose of this study was to investigate hydraulic limitations associated with long, tall ste...
Plant function requires effective mechanisms to regulate water transport at a variety of scales. Her...
The ability to transport water through tall stems hydraulically limits stomatal conductance (g(s)), ...
L'article original est publié par The American Society of Plant BiologistsAcross plant species, leav...
Plant root system can be conceptualized as a network of water saturated porous pipes, at the interfa...
With global warming, climate zones are projected to shift poleward, and the frequency and intensity ...
Increasing frequencies and intensities of droughts are projected for many regions of the Earth. Wate...
Leaf hydraulic conductance (k leaf) is a central element in the regulation of leaf water balance but...
The evolution of lignified xylem allowed for the efficient transport of water under tension,but als...