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Evaluating and minimizing water use by greenhouse evaporative cooling systems in a semi-arid climate.

机译:在半干旱气候下,通过温室蒸发冷却系统评估和减少用水。

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摘要

Water availability is a common concern in semi-arid regions, such as Southern Arizona, USA. Hydroponic greenhouse crop production greatly reduces irrigation water use, but the study of water use by evaporative cooling has been limited.; This project investigated water use by two evaporative cooling systems: pad-and-fan and high-pressure-fog with fan ventilation. All studies were performed in a double-layer polyethylene film-covered greenhouse (28 x 9.8 x 6.3 m) with mature tomato plants (2.9 plants m-2). Water use efficiency (WUE, kg yield per m3 water use) was calculated daily according to ventilation rate, as well as for a 6-month cropping period, which used temperature-controlled pad-and-fan cooling.; Pad-and-fan water use was 3.2, 6.4, 8.5, and 10.3 L m-2 d-1 for ventilation rates of 0.016, 0.034, 0.047, 0.061 m 3 m-2 s-1, respectively. High-pressure-fog water use with a single central, overhead line was 7.9, 7.4, and 9.3 L m -2 d-1 for ventilation rates of 0.01, 0.016, 0.034 m3 m-2 s-1, respectively. For pad-and-fan ventilation rates less than 0.034 m3 m-2 s-1, total greenhouse WUE (20--33 kg m-3) was similar to field drip irrigation. For the temperature-controlled high-pressure-fog system, total greenhouse WUE (14--17 kg m-3) was similar to field sprinkler irrigation.; For the 6-month crop cycle, combining water use by closed irrigation and pad-and-fan systems produced a total WUE of 15 kg m -3. Pad-and-fan WUE increased during monsoon conditions due to lower water use rates.; Evaporative cooling water use and air temperature were well-predicted by the energy balance model. Predictions of air temperature improved when outside climate the measured conditions at one greenhouse location. Wind tunnel and full-scale studies of natural ventilation demonstrated the value of knowing airflow patterns when designing and operating a high-pressure-fog system.; It is possible for greenhouse tomato production to have a higher WUE than field production, if ventilation rates are not excessive, if closed irrigation is used, and if control methodologies are improved. Water use can be minimized by knowing how the evaporative cooling system affects greenhouse climate and plant responses.
机译:在半干旱地区,例如美国南亚利桑那州,水的可用性是一个普遍关注的问题。水耕温室作物的生产大大减少了灌溉用水,但是通过蒸发冷却进行水利用的研究受到限制。该项目研究了两种蒸发冷却系统的用水量:垫式风扇和带风扇通风的高压雾。所有研究均在双层聚乙烯薄膜覆盖的温室(28 x 9.8 x 6.3 m)中进行,其中使用成熟的番茄植株(2.9植株m-2)。每天根据通风率以及六个月的种植期计算出用水效率(WUE,每立方米用水的千克产量),其中使用温度控制的垫板式风扇冷却。通风量分别为0.016、0.034、0.047、0.061 m 3 m-2 s-1时,垫式风扇用水量分别为3.2、6.4、8.5和10.3 L m-2 d-1。通风量分别为0.01、0.016、0.034 m3 m-2 s-1的高压雾水和一条中央,架空线分别为7.9、7.4和9.3 L m -2 d-1。对于垫式和风扇通风速率小于0.034 m3 m-2 s-1的温室,总WUE(20--33 kg m-3)与田间滴灌相似。对于温度控制的高压雾系统,总温室WUE(14--17 kg m-3)类似于田间喷灌。在6个月的作物周期中,密闭灌溉和垫板风机系统的用水相结合产生的总WUE为15 kg m -3。在季风条件下,由于水的使用率降低,因此,便车和风扇的WUE有所增加。能量平衡模型可以很好地预测蒸发冷却水的使用量和气温。当外界气候在一处温室位置处的测量条件得到改善时,对气温的预测将会提高。风洞和自然通风的全面研究表明,在设计和操作高压雾系统时,了解气流模式的价值。如果通风速率不过度,使用封闭灌溉以及改善控制方法,温室番茄的WUE可能高于田间生产的WUE。通过了解蒸发冷却系统如何影响温室气候和植物响应,可以最大限度地减少用水。

著录项

  • 作者

    Sabeh, Nadia Christina.;

  • 作者单位

    The University of Arizona.$bAgricultural & Biosystems Engineering.;

  • 授予单位 The University of Arizona.$bAgricultural & Biosystems Engineering.;
  • 学科 Agriculture Horticulture.; Engineering Agricultural.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 215 p.
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农业工程;
  • 关键词

  • 入库时间 2022-08-17 11:38:59

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