Analysis of the Dynamics and Characteristics of Rice Stem Tillers via Water Level Management
Abstract
:1. Introduction
2. Materials and Methods
2.1. Basic Information about the Pilot Area
2.2. Experimental Design
2.3. Observation Indicators and Analysis Methods
3. Analysis of the Results
3.1. Changes in Rice Stem Tiller Dynamics in the Tillering Stage via Water Level Management
3.2. Analysis of Stem Tiller Characteristics of Rice during the Tillering Stage via Water Level Management
3.3. Simulation of the Water Level Regulated Rice Stem Tiller Elongation Model
3.4. Dynamic Analysis of Water Level Regulated Rice Stem Tiller Waxing and Waning Logistic Nesting Curves
4. Conclusions and Suggestions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Zhu, Y.B.; Guo, Y.C.; Ling, K.J.; Sum, X.L. Progress on the genes controlling grain shape of rice. J. Fafu 2015, 1, 1–7. [Google Scholar]
- Xia, Q.M.; Chen, Q.H.; Li, C.Y. Effects of different wet-shallow alternate irrigation patterns on rice grain yield and biological characteristics. China Rice 2015, 21, 114–117. [Google Scholar]
- Sun, A.H.; Hua, X.; Ye, X.S. Effect of biochar on rice growth and yield under water-saving irrigated. Water Sav. Irrig. 2016, 6, 6–9. [Google Scholar]
- Yan, D.C.; Zhu, Y.; Cao, W.X. A knowledge model for design of suitable dynamics of growth index in rice. Sci. Agric. Sin. 2005, 38, 38–44. [Google Scholar]
- Tian, Y.Q.; Feng, L.P.; Zou, H.P. Effects of water and nitrogen on growth, development and yield of rice in cold area of Northeast Chin. Acta Ecol. Sin. 2014, 34, 6864–6871. [Google Scholar]
- Duan, S.M.; Yang, A.Z.; Huang, Y.D. Effects of drought stress on growth and physiological feature and yield of various rice varieties. J. Nucl. Agric. Sci. 2014, 28, 1124–1132. [Google Scholar]
- Zhu, Y.; Chang, L.; Tang, L.; Jiang, H.; Zhang, W.; Cao, W. Modelling leaf shape dynamics in rice. NJAS Wagening. J. Life Sci. 2009, 1, 73–81. [Google Scholar] [CrossRef] [Green Version]
- Xu, J.Z.; Peng, S.Z.; Wei, Z. Effect of soil moisture regulation during tillering period on shoot dynamics of rice cultivated in plastic film mulched dryland and its simulatio. J. Hohai Univ. 2010, 38, 511–515. [Google Scholar]
- Yuan, X.M.; Yu, S.E.; Xie, J.Y. Effects of controlled water level on the development of the tiller number and plant height. J. Irrig. Drain. 2011, 30, 56–59. [Google Scholar]
- Lu, H.F.; Guo, X.P.; Wang, Z.C. Effects of alternative stress of drought and waterlogging on leaf character. J. Irrig. Drain. 2017, 36, 47–51. [Google Scholar]
- Chen, Y.H.; Tang, X.R.; Xiao, Y. Effects of physical restriction in non-productive tiller on root characteristics and nutrition absorption in rice. Acta Agric. Boreali Sin. 2015, 30, 163–169. [Google Scholar]
- Pan, S.G.; Wu, Y.Y.; Xiao, Y. Effects of physical restriction to ineffective tiller on non-structural carbohydrates accumulation and yields of rice. J. Hohai Univ. 2015, 41, 229–233. [Google Scholar]
- Xu, J.Z.; Peng, S.Z.; Yang, S.H. Ammonia volatilization losses from a rice paddy with different irrigation and nitrogen managements. Agric. Water Manag. 2012, 104, 184–192. [Google Scholar] [CrossRef]
- Xiao, M.H.; Yu, S.E.; She, D.L. Nitrogen and phosphorus loss and optimal drainage time of paddy field under controlled drainage condition. Arab. J. Geosci. 2015, 8, 4411–4420. [Google Scholar] [CrossRef]
- DE DATTA, S.K. Improving nitrogen fertilizer efficiency in lowland rice in tropical Asia. Fertil. Res. 1986, 9, 171–186. [Google Scholar] [CrossRef]
- Chen, S.Q. Effect of nitrogen application regime on growth dynamics and stem tiller utilization traits of rice. Hubei Agric. Sci. 2018, 57, 20–25. [Google Scholar]
- Li, J.; Zhang, H.C.; Gong, J.L. Tillering characteristics and its relationships with population productivity of super rice under different cultivation types in rice-wheat cropping area. Acta Agron. Sin. 2011, 37, 309–320. [Google Scholar] [CrossRef]
- Zhang, H.; Yu, C.; Chen, K.W. Effect of direct-seeding methods on physiological characteristics and grain yield of rice and its cost analysis. Trans. CSAE 2017, 33, 58–64. [Google Scholar]
- Zhou, M.Y.; Zhou, R.L.; Gu, Y.F. Effects of water and nitrogen coupling on growth and physiological characteristics of overground part of rice. Trans. CASE 2006, 22, 38–43. [Google Scholar]
- Chu, G.; Chen, T.T.; Chen, S. Effects of interaction between irrigation regimes and nitrogen rates on rice yield and water and nitrogen use efficiencies. Chin. J. Rice Sci. 2017, 31, 513–523. [Google Scholar]
- Zhang, Y.D.; Yu, S.E.; Gao, S.K. Rice tillering and plant height dynamic responses to drought and flood alternating stress. J. Drain. Irrig. Mach. Eng. 2018, 36, 77–81. [Google Scholar]
- Wang, W.G.; Peng, S.Z.; Sun, F.C. Spatiotemporal variations of rice irrigation water requirements in the mid-lower reaches of Yangtze River under changing climate. Adv. Water Sci. 2012, 23, 656–664. [Google Scholar]
- He, Y.; Zhang, J.; Yang, S. Effect of controlled drainage on nitrogen losses from controlled irrigation paddy fields through subsurface drainage and ammonia volatilization after fertilization. Agric. Water Manag. 2019, 221, 231–237. [Google Scholar] [CrossRef]
- Wang, W.; Yu, Z.; Wei, Z. Responses of rice yield, irrigation water requirement and water use efficiency to climate change in china: Historical simulation and future projections. Agric. Water Manag. 2014, 146, 249–261. [Google Scholar] [CrossRef]
- Xiao, M.; Li, Y.; Jia, Y. Mechanism of water savings and pollution reduction in paddy fields of three typical areas in southern China. Int. J. Agric. Biol. Eng. 2022, 15, 199–207. [Google Scholar] [CrossRef]
- Wang, F.Y.; Huang, P.S. Study on Basic Dynamic Model for Stem and Tiller Growth and Population Classification in Ric. Sci. Agric. Sin. 1997, 30, 57–64. [Google Scholar]
Processing Number | Regulating Water Levels at All Fertility Stages | ||||
---|---|---|---|---|---|
Tiller Stage | Growth and Gestation Period | Spike Flowering Period | Mammary Period | ||
Flooded (10 d) | L1 | 120 mm (2 mm/d) | −300 mm to 30 mm | −300 mm to 30 mm | −300 mm to 30 mm |
L2 | 120 mm (4 mm/d) | −300 mm to 30 mm | −300 mm to 30 mm | −300 mm to 30 mm | |
Drought-affected | H1 | −300 mm | −300 mm to 30 mm | −300 mm to 30 mm | −300 mm to 30 mm |
H2 | −500 mm | −300 mm to 30 mm | −300 mm to 30 mm | −300 mm to 30 mm | |
Compared to | CK | −200 mm to 20 mm | −300 mm to 30 mm | −300 mm to 30 mm | −300 mm to 30 mm |
Processing | Maximum Stem Size | Effective Stem Tiller Volume | Effective Tiller Rate |
---|---|---|---|
(Million Ears/ha) | (Million Ears/ha) | (%) | |
L1 | 334 | 256 | 69.17 |
L2 | 355 | 269 | 68.58 |
H1 | 377 | 283 | 68.41 |
H2 | 344 | 246 | 62.80 |
CK | 388 | 276 | 63.60 |
Processing | Model Parameters | Statistical Parameters | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
A | b1 | c1 | B | b2 | c2 | C | RMSE | R2 | F Statistics | |
L1 | 350.000 | 0.128 | 10.191 | 166.718 | 0.150 | 814.180 | 50 | 3.454 | 0.996943 | 4239.808 |
L2 | 360.000 | 0.130 | 11.025 | 159.809 | 0.187 | 4662.877 | 50 | 3.347 | 0.997478 | 5142.022 |
H1 | 376.952 | 0.126 | 11.068 | 161.164 | 0.185 | 6397.475 | 50 | 4.413 | 0.996157 | 3370.289 |
H2 | 355.000 | 0.118 | 9.733 | 177.162 | 0.206 | 10,508.498 | 50 | 5.190 | 0.993485 | 1982.306 |
CK | 390.000 | 0.145 | 15.719 | 178.929 | 0.200 | 7505.679 | 50 | 4.451 | 0.996402 | 3599.760 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Hu, X.; Yu, Y.; Xia, Y.; Xie, F.; Xiao, M. Analysis of the Dynamics and Characteristics of Rice Stem Tillers via Water Level Management. Water 2023, 15, 1034. https://doi.org/10.3390/w15061034
Hu X, Yu Y, Xia Y, Xie F, Xiao M. Analysis of the Dynamics and Characteristics of Rice Stem Tillers via Water Level Management. Water. 2023; 15(6):1034. https://doi.org/10.3390/w15061034
Chicago/Turabian StyleHu, Xiujun, Yueyang Yu, Yuedong Xia, Feng Xie, and Menghua Xiao. 2023. "Analysis of the Dynamics and Characteristics of Rice Stem Tillers via Water Level Management" Water 15, no. 6: 1034. https://doi.org/10.3390/w15061034