Agricultural Irrigation
| dc.contributor.author | Montazar, Aliasghar | * |
| dc.date.accessioned | 2021-02-11T07:57:22Z | |
| dc.date.available | 2021-02-11T07:57:22Z | |
| dc.date.issued | 2019 | * |
| dc.date.submitted | 2019-12-09 11:49:16 | * |
| dc.identifier | 42679 | * |
| dc.identifier.uri | https://directory.doabooks.org/handle/20.500.12854/40487 | |
| dc.description.abstract | Agriculture is certainly the most important food supplier while it globally accounts for more than 70% of water used and contributes significantly to water pollution. Irrigated agriculture is facing rising competition worldwide for access to reliable, low cost, and high-quality water resources. However, irrigation as the major tool and determinant of affecting agricultural productivity and environmental resources plays a critical role in food security and environment sustainability. Innovative irrigation technologies and practices may enhance agricultural water efficiency and production, in the meantime decrease the water demand and quality issues. I am very pleased to invite you to submit manuscripts in agricultural irrigation which assess current challenges and offer improvement approaches and opportunities for future irrigation. | * |
| dc.language | English | * |
| dc.subject | QH301-705.5 | * |
| dc.subject | Q1-390 | * |
| dc.subject | S1-972 | * |
| dc.subject.classification | thema EDItEUR::P Mathematics and Science::PS Biology, life sciences | en_US |
| dc.subject.other | semi-arid regions | * |
| dc.subject.other | greenhouse gas emission | * |
| dc.subject.other | model simulation | * |
| dc.subject.other | spinach | * |
| dc.subject.other | benchmarking | * |
| dc.subject.other | leaf mineral composition | * |
| dc.subject.other | available water capacity | * |
| dc.subject.other | irrigated crops | * |
| dc.subject.other | organic production | * |
| dc.subject.other | site-specific irrigation | * |
| dc.subject.other | infiltration depth | * |
| dc.subject.other | pumping plants | * |
| dc.subject.other | performance indicator | * |
| dc.subject.other | treated wastewater irrigation | * |
| dc.subject.other | precision agriculture | * |
| dc.subject.other | evaluation of performance | * |
| dc.subject.other | total yield | * |
| dc.subject.other | row cover | * |
| dc.subject.other | irrigation | * |
| dc.subject.other | slope gradient | * |
| dc.subject.other | farming data | * |
| dc.subject.other | optimal irrigation time | * |
| dc.subject.other | lettuce production | * |
| dc.subject.other | life cycle assessment | * |
| dc.subject.other | mulch | * |
| dc.subject.other | monthly changes | * |
| dc.subject.other | irrigation water use efficiency | * |
| dc.subject.other | energy audit | * |
| dc.subject.other | crop evapotranspiration | * |
| dc.subject.other | irrigation management | * |
| dc.subject.other | downy mildew | * |
| dc.subject.other | biomass production | * |
| dc.subject.other | water application rate | * |
| dc.subject.other | tomato fruit yield | * |
| dc.subject.other | temperature variations | * |
| dc.subject.other | irrigation water regimes | * |
| dc.subject.other | salinization | * |
| dc.subject.other | net irrigation requirements | * |
| dc.subject.other | center-pivot irrigation | * |
| dc.subject.other | cover crop | * |
| dc.subject.other | climate change adaptation | * |
| dc.subject.other | deficit irrigation | * |
| dc.subject.other | drip irrigation | * |
| dc.subject.other | Mediterranean region | * |
| dc.subject.other | principal component analysis | * |
| dc.subject.other | global sensitivity analysis | * |
| dc.title | Agricultural Irrigation | * |
| dc.type | book | |
| oapen.identifier.doi | 10.3390/books978-3-03921-923-0 | * |
| oapen.relation.isPublishedBy | 46cabcaa-dd94-4bfe-87b4-55023c1b36d0 | * |
| oapen.relation.isbn | 9783039219230 | * |
| oapen.relation.isbn | 9783039219223 | * |
| oapen.pages | 172 | * |
| oapen.edition | 1st | * |
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