The Unreliability of Tile Effluent for Monitoring Subsurface Nitrate-Nitrogen Losses from Soils

1974 ◽  
Vol 3 (2) ◽  
pp. 183-185 ◽  
Author(s):  
Grant W. Thomas ◽  
Billy J. Barfield
2000 ◽  
Vol 29 (3) ◽  
pp. 817-825 ◽  
Author(s):  
S. L. Zhao ◽  
S. C. Gupta ◽  
D. R. Huggins ◽  
J. F. Moncrief

2005 ◽  
Author(s):  
Vinay Nangia ◽  
Prasanna H. Gowda ◽  
David J. Mulla ◽  
Gary R. Sands

2010 ◽  
Vol 9 (1) ◽  
pp. 61 ◽  
Author(s):  
V. Nangia ◽  
P. H. Gowda ◽  
D. J. Mulla ◽  
G. R. Sands

2011 ◽  
Vol 40 (5) ◽  
pp. 1578-1585 ◽  
Author(s):  
Zhiming Qi ◽  
Matthew J. Helmers ◽  
Reid D. Christianson ◽  
Carl H. Pederson

2021 ◽  
Vol 13 (2) ◽  
pp. 1002
Author(s):  
Honghong Ma ◽  
Tao Yang ◽  
Xinxiang Niu ◽  
Zhenan Hou ◽  
Xingwang Ma

Drip irrigation systems are becoming more and more mature and are now widely used to improve crop yield and nitrogen use efficiency in Xinjiang, NW China. However, it is not known if leaching is occurring or not and whether leaching will harm the water environment following N fertilization and drip irrigation. The purpose of our study was to estimate the leaching volumes, nitrogen losses, forms of nitrogen losses, and nitrogen loss coefficients under different N fertilization, P fertilization, K fertilization and irrigation regimes. A long-term field experiment was conducted from 2009 to 2015 in Baotou Lake farm in Korla City, Xinjiang, with drip-irrigated cotton (Gossypium hirsutum L.) being grown under different N fertilizer and irrigation regimes. The treatments were designed comprising 0 N, 0 P, and 0 K with an irrigation of 480 mm as the control(N0P0K0W480) and the following three other treatments: (1) 357 kg N·hm−2, 90 kg P·hm−2, 0 kg K2O hm−2, and irrigation of 480 mm (N357P90K0W480); (2) 357 kg N·hm−2, 90 kg P·hm−2, 62 kg K·hm−2, and irrigation of 420 mm (N357P90K62W420); and (3) 240 kg N·hm−2, 65 kg P·hm−2, 62 kg K·hm−2, and irrigation of 420 mm (N240P65K62W420). The results showed the following: (1) the leaching volume was determined by nitrogen fertilization, phosphorus fertilization, and the irrigation amount. In general, the leaching volume was highest under treatment N357P90K0W480. (2) The nitrogen loss was highest under treatment N357P90K0W480. (3) Nitrate nitrogen (NO3–) was the main form of nitrogen lost, followed by ammonium nitrogen (NH4+). (4) The annual nitrogen loss coefficients followed the order of: N357P90K0W480 > N357P90K62W420 > N240P65K62W420 > N0P0K0W480, with values of 0.85, 0.55, 0.30, and 0, respectively. The leaching volume, nitrogen loss, nitrate nitrogen, ammonium nitrogen, and annual nitrogen loss coefficient were lowest under the N240P65K62W420 treatment, except in the N0P0K0W480treatment. These results demonstrate that optimizing the management of water and nitrogen (N240P65K62W420 treatment) can effectively reduce nitrogen losses under drip fertigation and plastic mulching.


2021 ◽  
Author(s):  
MEHRAJ U DIN DAR ◽  
J.P. Singh

Abstract In the present study, DRAINMOD-NII model was calibrated for the years 2018-2019 and validated for the period 2019-2020 over the two cropping years. The model simulations were statistically evaluated by comparing the measured drain flows and nitrate-nitrogen (NO3-N) with the model simulated drain outflows and nitrate loss. The study results depicted closer agreement between the simulated and observed results for both the calibration and validation periods. The Root Mean Square Error (RMSE) of the drainage rate was 8.88 cm more than observed data,15.41, 0.53 and 0.57 cm were the values recorded for PBIAS, modelling efficiency (NSE) and R2. The similar parameter values for nitrogen load were recorded to be 0.14, 2.76 ,0.84 and 0.88 respectively during the calibration period for rice wheat system. The model was statistically tested during the validation period also, confirming DRAINMOD-NII has the capability to simulate nitrogen losses from the area subjected to subsurface drainage system.


2020 ◽  
Vol 222 ◽  
pp. 02043
Author(s):  
Anastasiya Ruchkina ◽  
Roman Ushakov ◽  
Natalya Golovina ◽  
Victor Aseev ◽  
Fedor Bobrakov

The purpose of this work is to obtain and evaluate the fertilizing ability of the clay-nitrogen mixture. The relevance of the research lies in studying issues related to the minimization of nitrogen losses when producing the clay-nitrogen fertilizer, the transformation of nitrogen from fertilizer into the soil, and the effectiveness of fertilization when growing barley. The data on the content of nitrate nitrogen (250,986 mg/kg) and the total one (5.0%) indicate the effective binding of nitric acid by clay. The fertilizer can be considered potassium-containing, since the content of mobile and total potassium is respectively 1,250 mg/kg and 0.20%. Mobile phosphorus in the fertilizer is low compared to potassium (76 mg/kg), although the total pool is twice as large (0.45%). The content of the gross form of copper (8.9 mg/kg) and zinc (9.5 mg/kg) corresponded to the MPC.


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