Challenges and advances in measuring sap flow in agriculture and agroforestry: A review with focus on nuclear magnetic resonance
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M. Shadmand | S. Jagadish | B. Ghanbarian | Mohsen Hosseinzadehtaher | Ritesh Kumar | Nathan T. Hein
[1] S. Hill,et al. Modelling biodiversity responses to land use in areas of cocoa cultivation , 2022, Agriculture, Ecosystems & Environment.
[2] J. Domec,et al. Sap Flow Disruption in Grapevine Is the Early Signal Predicting the Structural, Functional, and Genetic Responses to Esca Disease , 2021, Frontiers in Plant Science.
[3] F. Casanoves,et al. Prediction model for sap flow in cacao trees under different radiation intensities in the western Colombian Amazon , 2021, Scientific Reports.
[4] J. Bonny,et al. Circadian Variation of Root Water Status in Three Herbaceous Species Assessed by Portable NMR , 2021, Plants.
[5] Da Li,et al. Electromagnetic Design and Mechanical Behavior Analysis of an 850 MHz All REBCO Nuclear Magnetic Resonance Magnet , 2021, IEEE Transactions on Applied Superconductivity.
[6] J. Gardeniers,et al. Influence of the Distribution of the Properties of Permanent Magnets on the Field Homogeneity of Magnet Assemblies for Mobile NMR , 2021, IEEE Transactions on Magnetics.
[7] H. Tsutsui,et al. Emerging Technologies for Monitoring Plant Health in Vivo , 2021, ACS omega.
[8] C. Windt,et al. A Mobile NMR Sensor and Relaxometric Method to Non-destructively Monitor Water and Dry Matter Content in Plants , 2021, Frontiers in Plant Science.
[9] S. Bouallègue,et al. A New Method , 2021, Black Power and the American Myth.
[10] Viacheslav I. Adamchuk,et al. Comparison of Heating Strategies on Soil Water Measurement Using Actively Heated Fiber Optics on Contrasting Textured Soils , 2021, Sensors.
[11] N. Leksungnoen,et al. Comparison of water-use characteristics of tropical tree saplings with implications for forest restoration , 2021, Scientific Reports.
[12] L. Williams,et al. Functional hydraulic sectoring in grapevines as evidenced by sap flow, dye infusion, leaf removal and micro-computed tomography. , 2021, AoB PLANTS.
[13] Johannes Kochs,et al. An integrated magnetic resonance plant imager for mobile use in greenhouse and field. , 2020, Journal of magnetic resonance.
[14] L. Armengot,et al. Cocoa agroforestry systems versus monocultures: a multi-dimensional meta-analysis , 2020, Environmental Research Letters.
[15] L. Hutyra,et al. Ribbonized sap flow: an emerging technology for the integration of sap flow sensor components onto a single platform , 2020, Ecosphere.
[16] Hong Liu,et al. Short-term transcriptomic responses of Populus euphratica roots and leaves to drought stress , 2020, Journal of Forestry Research.
[17] Y. Terada,et al. Dynamics of xylem and phloem sap flow in an outdoor zelkova tree visualized by magnetic resonance imaging. , 2019, Tree physiology.
[18] Q. Hu,et al. Climate Warming Changed the Planting Boundaries of Varieties of Summer Corn with Different Maturity Levels in the North China Plain , 2019 .
[19] T. Morelli,et al. Finding the sweet spot: Shifting optimal climate for maple syrup production in North America , 2019, Forest Ecology and Management.
[20] T. Iizumi,et al. Global Patterns of Crop Production Losses Associated with Droughts from 1983 to 2009 , 2019, Journal of Applied Meteorology and Climatology.
[21] A. McElrone,et al. Functional Status of Xylem Through Time. , 2019, Annual review of plant biology.
[22] J. Holden,et al. Northward shift of the agricultural climate zone under 21st-century global climate change , 2018, Scientific Reports.
[23] C. Peng,et al. Effect of Drought on Agronomic Traits of Rice and Wheat: A Meta-Analysis , 2018, International journal of environmental research and public health.
[24] I. Teliban,et al. Additive Manufactured and Topology Optimized Passive Shimming Elements for Permanent Magnetic Systems , 2018, Scientific Reports.
[25] Michael A. Forster. How Reliable Are Heat Pulse Velocity Methods for Estimating Tree Transpiration , 2017 .
[26] M. Musse,et al. A mobile NMR lab for leaf phenotyping in the field , 2017, Plant Methods.
[27] Michael A. Forster,et al. A vegetation‐focused soil‐plant‐atmospheric continuum model to study hydrodynamic soil‐plant water relations , 2017 .
[28] N. Holbrook,et al. Stomatal Closure, Basal Leaf Embolism, and Shedding Protect the Hydraulic Integrity of Grape Stems1[OPEN] , 2017, Plant Physiology.
[29] L. Iverson,et al. Managing for delicious ecosystem service under climate change: can United States sugar maple (Acer saccharum) syrup production be maintained in a warming climate? , 2017 .
[30] R. Horton,et al. The effects of probe misalignment on sap flux density measurements and in situ probe spacing correction methods , 2017 .
[31] K. Jencso,et al. Contribution of sapwood traits to uncertainty in conifer sap flow as estimated with the heat-ratio method , 2016 .
[32] M. Koch,et al. Water Resources Assessment and Management in Drylands , 2016 .
[33] S. Daryanto,et al. Global Synthesis of Drought Effects on Maize and Wheat Production , 2016, PloS one.
[34] Michelle A. Espy,et al. In vivo Observation of Tree Drought Response with Low-Field NMR and Neutron Imaging , 2016, Front. Plant Sci..
[35] Katsumi Kose,et al. Development of an outdoor MRI system for measuring flow in a living tree. , 2016, Journal of magnetic resonance.
[36] B. Scanlon,et al. Implications of projected climate change for groundwater recharge in the western United States , 2016 .
[37] G. Perra,et al. Advanced NMR methodologies and micro-analytical techniques to investigate the stratigraphy and materials of 14th century Sienese wooden paintings , 2016 .
[38] Peter Blümler,et al. Proposal for a permanent magnet system with a constant gradient mechanically adjustable in direction and strength , 2016 .
[39] J. Prueger,et al. Temperature extremes: Effect on plant growth and development , 2015 .
[40] E. Fiscus. Water Transport and Balance Within the Plant: Resistance to Water Flow in Roots , 2015 .
[41] Kathy Steppe,et al. Plant-PET Scans: In Vivo Mapping of Xylem and Phloem Functioning. , 2015, Trends in plant science.
[42] Jifeng Deng,et al. The Sap Flow Dynamics and Response of Hedysarum scoparium to Environmental Factors in Semiarid Northwestern China , 2015, PloS one.
[43] E. D. Sousa,et al. Advanced techniques using the plant as indicator of irrigation management , 2015 .
[44] Maurizio Mencuccini,et al. Sap flow as a key trait in the understanding of plant hydraulic functioning. , 2015, Tree physiology.
[45] C. Windt,et al. A portable NMR sensor to measure dynamic changes in the amount of water in living stems or fruit and its potential to measure sap flow. , 2015, Tree physiology.
[46] Michael A. Forster,et al. Performance Measurement Via Sap Flow Monitoring of Three Eucalyptus Species for Mine Site and Dryland Salinity Phytoremediation , 2015, International journal of phytoremediation.
[47] A. Sõber,et al. Patterns of night-time water use are interrelated with leaf nitrogen concentration in shoots of 16 deciduous woody species , 2014 .
[48] C. Müller,et al. Constraints and potentials of future irrigation water availability on agricultural production under climate change , 2013, Proceedings of the National Academy of Sciences.
[49] T. Stacke,et al. Multimodel projections and uncertainties of irrigation water demand under climate change , 2013 .
[50] Petra Döll,et al. Impact of climate change on renewable groundwater resources: assessing the benefits of avoided greenhouse gas emissions using selected CMIP5 climate projections , 2013 .
[51] Sang Joon Lee,et al. Gold Nanoparticle Contrast Agents in Advanced X-ray Imaging Technologies , 2013, Molecules.
[52] M. A. Jiménez-Bello,et al. Thermographic measurement of canopy temperature is a useful tool for predicting water deficit effects on fruit weight in citrus trees , 2013 .
[53] K. Steppe,et al. Sap-flux density measurement methods: working principles and applicability. , 2013, Functional plant biology : FPB.
[54] J. Labavitch,et al. Vascular Occlusions in Grapevines with Pierce’s Disease Make Disease Symptom Development Worse1[OA] , 2013, Plant Physiology.
[55] K. Steppe,et al. Sapflow+: a four-needle heat-pulse sap flow sensor enabling nonempirical sap flux density and water content measurements. , 2012, The New phytologist.
[56] L. Elsgaard,et al. Shifts in comparative advantages for maize, oat and wheat cropping under climate change in Europe , 2012, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.
[57] Kathy Steppe,et al. MRI links stem water content to stem diameter variations in transpiring trees. , 2012, Journal of experimental botany.
[58] A. King,et al. A model of heat transfer in sapwood and implications for sap flux density measurements using thermal dissipation probes. , 2011, Tree physiology.
[59] Tomoyuki Haishi,et al. Development of a mobile magnetic resonance imaging system for outdoor tree measurements. , 2011, The Review of scientific instruments.
[60] T. Haishi,et al. The Developmental Process of Xylem Embolisms in Pine Wilt Disease Monitored by Multipoint Imaging Using Compact Magnetic Resonance Imaging1[OA] , 2011, Plant Physiology.
[61] F. Do,et al. Transient thermal dissipation method for xylem sap flow measurement: implementation with a single probe. , 2011, Tree physiology.
[62] Fu Chen,et al. The Possible Effect of Climate Warming on Northern Limits of Cropping System and Crop Yield in China , 2011 .
[63] J. Bennett,et al. Protein and metabolite composition of xylem sap from field-grown soybeans (Glycine max) , 2011, Planta.
[64] J. Ehleringer,et al. Calibration of thermal dissipation sap flow probes for ring- and diffuse-porous trees. , 2010, Tree physiology.
[65] Sang Joon Lee,et al. Synchrotron X-ray imaging for nondestructive monitoring of sap flow dynamics through xylem vessel elements in rice leaves. , 2010, The New phytologist.
[66] J. Ehleringer,et al. Sap flux-scaled transpiration by tamarisk (Tamarix spp.) before, during and after episodic defoliation by the saltcedar leaf beetle (Diorhabda carinulata) , 2010 .
[67] Jordi Sardans,et al. Changes in water content and distribution in Quercus ilex leaves during progressive drought assessed by in vivo 1H magnetic resonance imaging , 2010, BMC Plant Biology.
[68] Kathy Steppe,et al. A comparison of sap flux density using thermal dissipation, heat pulse velocity and heat field deformation methods , 2010 .
[69] P. Blümler,et al. Dipolar Halbach magnet stacks made from identically shaped permanent magnets for magnetic resonance , 2010 .
[70] A. McElrone,et al. The role of tyloses in crown hydraulic failure of mature walnut trees afflicted by apoplexy disorder. , 2010, Tree physiology.
[71] J. Perlo,et al. Noninvasive testing of art and cultural heritage by mobile NMR. , 2010, Accounts of chemical research.
[72] U. Zimmermann,et al. Functional repair of embolized vessels in maize roots after temporal drought stress, as demonstrated by magnetic resonance imaging. , 2009, The New phytologist.
[73] Frank J. Vergeldt,et al. MRI of intact plants , 2009, Photosynthesis Research.
[74] C. Windt,et al. Most Water in the Tomato Truss Is Imported through the Xylem, Not the Phloem: A Nuclear Magnetic Resonance Flow Imaging Study[W][OA] , 2009, Plant Physiology.
[75] I. Serša,et al. A single point NMR method for an instantaneous determination of the moisture content of wood , 2009 .
[76] Luisa Mannina,et al. In Situ Investigation of Leaf Water Status by Portable Unilateral Nuclear Magnetic Resonance12[C][W][OA] , 2009, Plant Physiology.
[77] Kevin M Koch,et al. Optimization of static magnetic field homogeneity in the human and animal brain in vivo. , 2009, Progress in nuclear magnetic resonance spectroscopy.
[78] R. Zweifel,et al. Ultrasonic acoustic emissions in drought-stressed trees--more than signals from cavitation? , 2008, The New phytologist.
[79] R. Romero,et al. Design and testing of an automatic irrigation controller for fruit tree orchards, based on sap flow measurements , 2008 .
[80] G. Slafer,et al. Genotypic variability and response to water stress of pre- and post-anthesis phases in triticale , 2008 .
[81] J. E. Fernández,et al. The use of sap flow measurements for scheduling irrigation in olive, apple and Asian pear trees and in grapevines , 2008, Plant and Soil.
[82] Sophie Alvarez,et al. Metabolomic and proteomic changes in the xylem sap of maize under drought. , 2008, Plant, cell & environment.
[83] Sang-Joon Lee,et al. In vivo visualization of the water-refilling process in xylem vessels using X-ray micro-imaging. , 2008, Annals of botany.
[84] Curtis A. Siller,et al. Emerging Technologies , 2008, 2018 IEEE International Meeting for Future of Electron Devices, Kansai (IMFEDK).
[85] C. Windt,et al. 0.7 and 3 T MRI and Sap Flow in Intact Trees: Xylem and Phloem in Action , 2007 .
[86] T. Scheenen,et al. Intact Plant Magnetic Resonance Imaging to Study Dynamics in Long-Distance Sap Flow and Flow-Conducting Surface Area1 , 2007, Plant Physiology.
[87] Maurizio Mencuccini,et al. A noninvasive optical system for the measurement of xylem and phloem sap flow in woody plants of small stem size. , 2007, Tree physiology.
[88] M. Matthews,et al. Pruning-induced tylose development in stems of current-year shoots of Vitis vinifera (Vitaceae). , 2006, American journal of botany.
[89] Frank J Vergeldt,et al. MRI of long-distance water transport: a comparison of the phloem and xylem flow characteristics and dynamics in poplar, castor bean, tomato and tobacco. , 2006, Plant, cell & environment.
[90] Mehmet Atak,et al. Seed treatments to overcome salt and drought stress during germination in sunflower (Helianthus annuus L.) , 2006 .
[91] Sixue Chen,et al. Characterization of the maize xylem sap proteome. , 2006, Journal of proteome research.
[92] R. E. Sharp,et al. Relationships between xylem sap constituents and leaf conductance of well-watered and water-stressed maize across three xylem sap sampling techniques. , 2005, Journal of experimental botany.
[93] P. Giavalisco,et al. Analysis of xylem sap proteins from Brassica napus , 2005, BMC Plant Biology.
[94] E. Cienciala,et al. The analysis of physical background of tree sap flow measurement based on thermal methods , 2005 .
[95] Norihiro Sadato,et al. Magnetic field strength increase yields significantly greater contrast-to-noise ratio increase: Measured using BOLD contrast in the primary visual area. , 2005, Academic radiology.
[96] U Santamaria,et al. Determination of moisture fraction in wood by mobile NMR device. , 2004, Journal of magnetic resonance.
[97] H. Jones. Irrigation scheduling: advantages and pitfalls of plant-based methods. , 2004, Journal of experimental botany.
[98] Hans-Peter Raich,et al. Design and construction of a dipolar Halbach array with a homogeneous field from identical bar magnets: NMR Mandhalas , 2004 .
[99] W. Hartung,et al. Solute flows from Hordeum vulgare to the hemiparasite Rhinanthus minor and the influence of infection on host and parasite nutrient relations. , 2004, Functional plant biology : FPB.
[100] M. Adams,et al. A validation, comparison and error analysis of two heat-pulse methods for measuring sap flow in Eucalyptus marginata saplings. , 2004, Functional plant biology : FPB.
[101] N. Nadezhdina,et al. Sap flow measurements with some thermodynamic methods, flow integration within trees and scaling up from sample trees to entire forest stands , 2004, Trees.
[102] G. Moreno,et al. Comparison of soil water-contents as measured with a neutron probe and time domain reflectometry in a Mediterranean forest (“Sierra de Gata”, Central Western Spain) , 2003 .
[103] K. Snyder,et al. Night-time conductance in C3 and C4 species: do plants lose water at night? , 2003, Journal of experimental botany.
[104] I. Offenthaler,et al. Xylem sap flow of Norway spruce after inoculation with the blue‐stain fungus Ceratocystis polonica , 2002 .
[105] Clifford R. Pollock,et al. A laser-diode-based system for measuring sap flow by the heat-pulse method , 2002 .
[106] F. Asch,et al. Drought-induced changes in xylem pH, ionic composition, and ABA concentration act as early signals in field-grown maize (Zea mays L.). , 2002, Journal of experimental botany.
[107] J. Richards,et al. Predawn plant water potential does not necessarily equilibrate with soil water potential under well-watered conditions , 2001, Oecologia.
[108] M. Adams,et al. An improved heat pulse method to measure low and reverse rates of sap flow in woody plants. , 2001, Tree physiology.
[109] Axel Haase,et al. Simultaneous measurement of water flow velocity and solute transport in xylem and phloem of adult plants of Ricinus communis over a daily time course by nuclear magnetic resonance spectrometry , 2001 .
[110] S. Green,et al. Sap flow as an indicator of transpiration and the water status of young apricot trees , 2000, Plant and Soil.
[111] A. Haase,et al. Portable nuclear magnetic resonance imaging system , 2000 .
[112] T. Scheenen,et al. Quantification of water transport in plants with NMR imaging. , 2000, Journal of experimental botany.
[113] Nadezhdina. Sap flow index as an indicator of plant water status. , 1999, Tree physiology.
[114] I. Kaihotsu,et al. Sap Flow Measurement Using a Digital Heat-Pulse Sensor , 1999 .
[115] A Haase,et al. Fast NMR flow measurements in plants using FLASH imaging. , 1999, Journal of magnetic resonance.
[116] M. Adams,et al. Spatial and temporal variations in phloem sap composition of plantation-grown Eucalyptus globulus , 1998, Oecologia.
[117] B. Blümich,et al. The NMR-mouse: construction, excitation, and applications. , 1998, Magnetic resonance imaging.
[118] Y. Xia,et al. A non-invasive measurement of phloem and xylem water flow in castor bean seedlings by nuclear magnetic resonance microimaging , 1997, Planta.
[119] T. Hsiao,et al. Hydraulic propagation of pressure along immature and mature xylem vessels of roots of Zea mays measured by pressure-probe techniques , 1993, Planta.
[120] P. Callaghan,et al. Diffraction-like effects in NMR diffusion studies of fluids in porous solids , 1991, Nature.
[121] T. H. Boyer,et al. The force on a magnetic dipole , 1988 .
[122] J. Abe,et al. A Heat Balance Method for Measuring Water Flow Rate in Stems of Intact Plants and Its Application to Sugarcane Plants , 1985 .
[123] H. Van As,et al. Noninvasive measurement of plant water flow by nuclear magnetic resonance. , 1984, Biophysical journal.
[124] M. Fuchs,et al. Improvement of the heat pulse method for determining sap flow in trees , 1981 .
[125] Tetsuo Sakuratani,et al. A heat balance method for measuring water flux in the stem of intact plants , 1981 .
[126] K. Halbach. Design of permanent multipole magnets with oriented rare earth cobalt material , 1980 .
[127] M. Penka,et al. Improved thermal method of continual recording the transpiration flow rate dynamics , 1977, Biologia Plantarum.
[128] J. Balek,et al. Sap stream velocity as an indicator of the transpirational process , 1977 .
[129] L. Gusta. Determination of unfrozen water in winter cereals at subfreezing temperatures. , 1975, Plant physiology.
[130] M. Deml,et al. A new method of sap flow rate determination in trees , 1973, Biologia Plantarum.
[131] Hanno H. Richter. On the Ascent of Sap , 1973, Science.
[132] T. Kozlowski,et al. Patterns of Water Movement in Forest Trees , 1963, Botanical Gazette.
[133] J. M. Harris. Water-Conduction in the Stems of Certain Conifers , 1961, Nature.
[134] D. Marshall. Measurement of Sap Flow in Conifers by Heat Transport. , 1958, Plant physiology.
[135] T. Shaw,et al. Moisture Determination, Determination of Water by Nuclear Magnetic Absorption in Potato and Apple Tissue , 1956 .
[136] I. I. Rabi,et al. The Molecular Beam Resonance Method for Measuring Nuclear Magnetic Moments The Magnetic Moments of 3 Li 6 , 3 Li 7 and 9 F 19 , 1939 .
[137] I. Rabi,et al. A New Method of Measuring Nuclear Magnetic Moment , 1938 .
[138] S. Hussain,et al. Plant Science Today , 2019 .
[139] J. Sperry,et al. Sensitivity of mean canopy stomatal conductance to vapor pressure deficit in a flooded Taxodium distichum L. forest: hydraulic and non-hydraulic effects , 2017, Oecologia.
[140] P. Prasad,et al. Agronomic and Physiological Responses to High Temperature, Drought, and Elevated CO2 Interactions in Cereals , 2014 .
[141] Helmut Soltner,et al. A portable Halbach magnet that can be opened and closed without force: the NMR-CUFF. , 2011, Journal of magnetic resonance.
[142] C. Windt,et al. Effects of cold-girdling on flows in the transport phloem in Ricinus communis: is mass flow inhibited? , 2006, Plant, cell & environment.
[143] N. Samarah. Effects of drought stress on growth and yield of barley , 2005 .
[144] R. Zorn,et al. Neutron Scattering , 2004 .
[145] J. Barnett. TREE PHYSIOLOGY | Xylem Physiology , 2004 .
[146] L. Doner. SUGAR | Palms and Maples , 2003 .
[147] M. Zimmermann,et al. Xylem Structure and the Ascent of Sap , 2002, Springer Series in Wood Science.
[148] N. Zieslin,et al. Night water consumption by rose plants , 1996 .
[149] H. As,et al. In situ plant water balance studies using a portable NMR spectrometer. , 1994 .
[150] A. Bano,et al. Changes in the contents of free and conjugated abscisic acid, phaseic acid and cytokinins in xylem sap of drought stressed sunflower plants , 1994 .
[151] R. H. Swanson,et al. Inoculation of lodgepole pine with four blue-stain fungi associated with mountain pine beetle, monitored by a heat pulse velocity (HPV) instrument , 1990 .
[152] A. Granier. Une nouvelle méthode pour la mesure du flux de sève brute dans le tronc des arbres , 1985 .
[153] M. Canny,et al. Water pathways in wheat leaves. II: Water-conducting capacities and vessel diameters of different vein types, and the behaviour of the integrated vein network , 1985 .