Measurement of low sap flux density in plants using the single needle heat pulse probe

2021 ◽  
Vol 310 ◽  
pp. 108656
Author(s):  
Ruiqi Ren ◽  
Bingcheng Si ◽  
Nicholas J. Kinar ◽  
Gang Liu ◽  
Buli Cui ◽  
...  
2020 ◽  
Vol 40 (5) ◽  
pp. 683-694
Author(s):  
Michael A Forster

Abstract Heat pulse methods are a popular approach for estimating sap flow and transpiration. Yet, many methods are unable to resolve the entire heat velocity measurement range observable in plants. Specifically, the Heat Ratio (HRM) and Tmax heat pulse methods can only resolve slow and fast velocities, respectively. The Dual Method Approach (DMA) combines optimal data from HRM and Tmax to output the entire range of heat velocity. However, the transition between slow and fast methods in the DMA currently does not have a theoretical solution. A re-consideration of the conduction/convection equation demonstrated that the HRM equation is equivalent to the Péclet equation which is the ratio of conduction to convection. This study tested the hypothesis that the transition between slow and fast methods occurs when conduction/convection, or the Péclet number, equals one, and the DMA would be improved via the inclusion of this transition value. Sap flux density was estimated via the HRM, Tmax and DMA methods and compared with gravimetric sap flux density measured via a water pressure system on 113 stems from 15 woody angiosperm species. When the Péclet number ≤ 1, the HRM yielded accurate results and the Tmax was out of range. When the Péclet number > 1, the HRM reached a maximum heat velocity at approximately 15 cm hr −1 and was no longer accurate, whereas the Tmax yielded accurate results. The DMA was able to output accurate data for the entire measurement range observed in this study. The linear regression analysis with gravimetric sap flux showed an r2 of 0.541 for HRM, 0.879 for Tmax and 0.940 for DMA. With the inclusion of the Péclet equation, the DMA resolved the entire heat velocity measurement range observed across 15 taxonomically diverse woody species. Consequently, the HRM and Tmax are redundant sap flow methods and have been superseded by the DMA.


2013 ◽  
pp. 85-92
Author(s):  
M.W. Vandegehuchte ◽  
S.S.O. Burgess ◽  
A. Downey ◽  
K. Steppe

2014 ◽  
Vol 35 (4) ◽  
pp. 346-353 ◽  
Author(s):  
M. W. Vandegehuchte ◽  
S. S. O. Burgess ◽  
A. Downey ◽  
K. Steppe

2004 ◽  
Vol 24 (3) ◽  
pp. 241-249 ◽  
Author(s):  
C. R. Ford ◽  
M. A. McGuire ◽  
R. J. Mitchell ◽  
R. O. Teskey

Trees ◽  
2014 ◽  
Vol 28 (6) ◽  
pp. 1867-1868
Author(s):  
Lidewei L. Vergeynst ◽  
Maurits W. Vandegehuchte ◽  
Mary Anne McGuire ◽  
Robert O. Teskey ◽  
Kathy Steppe

1997 ◽  
Vol 24 (5) ◽  
pp. 701 ◽  
Author(s):  
Ping Lu

The Granier sap flow measuring system that normally uses one analogue input channel of a datalogger for each sensor was modified to enable one channel to measure the average value of signals from two or more sensors. The sap flux density calculated from this average value of signals was very close (difference < 6.0%) to the arithmetic mean of the sap flux densities measured separately by means of individual sensors (using two or more input channels). The dynamics of the sap flux density measured by the modified method were similar to those measured by the original method. On a per-channel basis, the modified method reduced the ‘estimation error’ of sap flux density by 4–14-fold compared to the original method. By using the modified Granier system, the error in sap flow measurement that is usually associated with limited sampling can be substantially reduced without the need for extra dataloggers, the greatest item of expense.


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