使用板管地下灌的节水水种植
Chusnul Arif1, Satyanto Krido Saptomo1, Budi Indra Setiawan1
1Department of Civil and Environmental Engineering, IPB University, Bogor, Indonesia.
Heliyon
|May 21, 2024
概括
板式管道地下灌 (SSI) 可减少高达50.5%的用水量,并提高水生产率. 然而,这种节水的水种植方法可能会使产量降低高达18.6%.
科学领域:
- 农业科学 农业科学
- 水资源管理 水资源管理
- 适应气候变化 适应气候变化
背景情况:
- 由于气候变化,大米种植中的水资源保护至关重要.
- 板管技术提供了创新的地下灌和排水.
- 评估其对大米产量和用水效率的影响至关重要.
研究的目的:
- 用板管技术评估大米植物对降低水位的反应.
- 与传统的洪水灌相比,分析水生产率和用水效率.
主要方法:
- 进行了两个实验:板管地下灌 (SSI) 和常规洪水灌 (CFI).
- 在土壤表面5-10厘米以下 (85-95%和度) 的SSI保持了水.
- CFI保持在土壤表面2-3厘米以上的水位.
主要成果:
- SSI使灌用水减少了37.5-50.5%,并提高了用水效率 (WUE) 高达70.8%.
- 通过SSI,水生产率提高了3.2-10.4%.
- 在SSI下,与CFI相比,大米产量下降了15.5-18.6%.
结论:
- 通过SSI优化节水可以对米产量产生负面影响.
- 需要进一步的研究来确定最佳的水位,以平衡产量和节水.
- 这对于将大米种植适应更干燥,更温暖的气候至关重要.
相关概念视频
Responses to Drought and Flooding
10.7K
Water plays a significant role in the life cycle of plants. However, insufficient or excess of water can be detrimental and pose a serious threat to plants.
10.7K
Multiple Pipe Systems
742
Multipipe systems consist of complex configurations of interconnected pipes designed to transport fluids efficiently across intricate networks. They are essential in engineering applications requiring precise control over flow distribution, pressure, and head loss. They are categorized into series, parallel, loop, and network configurations, each distinguished by unique flow characteristics and applications.
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
742
Design Example: Design of an Irrigation Channel
91
Trapezoidal channels are widely used in irrigation systems due to their cost-effectiveness and efficiency in conveying water. Trapezoidal channels feature a flat bottom and sloping sides, making them stable and easier to construct compared to other shapes. The bottom width and side slope ratio are determined based on the required flow capacity and site conditions. The side slope is kept gentle for unlined channels to prevent soil erosion.Hydraulic parameters in channel design include the flow...
91
Single Pipe Systems
128
In pipe flow analysis, problems are typically categorized into three types — Type I, Type II, and Type III — based on the known parameters and the desired outcome. Each type of problem addresses specific engineering requirements using fluid properties, pipe characteristics, and operational conditions.
In a Type I problem, fluid properties (density and viscosity), pipe characteristics (including diameter, length, and surface roughness), and the flow rate or average velocity are...
In a Type I problem, fluid properties (density and viscosity), pipe characteristics (including diameter, length, and surface roughness), and the flow rate or average velocity are...
128
Pipe Flowrate Measurement: Problem Solving
529
A spray tank system is engineered to uniformly distribute a pest-control liquid across plants by using a pressurized mechanism. The tank, pressurized to 150 kPa, holds the pesticide at a height of 0.80 meters. Liquid flows from the tank through a 1.9 meter pipe with a diameter of 0.015 meters, angled at 0.698 radians, ultimately reaching a 0.007 meter nozzle that sprays the pesticide. Accurate calculation of the system's flow rate is crucial to ensure uniform application, and this is...
529
Adaptations that Reduce Water Loss
25.5K
Though evaporation from plant leaves drives transpiration, it also results in loss of water. Because water is critical for photosynthetic reactions and other cellular processes, evolutionary pressures on plants in different environments have driven the acquisition of adaptations that reduce water loss.
25.5K


