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It is, therefore, relevant to precisely know their water use and vegetation requirements with consideration of relevant climate, from extremely cold, dry, with long winter seasons, to tropical humid and hot climates, thus with a large variability of vegetation. Semi-natural grasslands are basically used for grazing and mainly refer to highland pastures and meadows, steppes, savannas, pampas, and mixed forest systems. The FAO method to compute crop (vegetation) evapotranspiration (ET<jats:sub>c<\/jats:sub>) through the product of a crop coefficient (K<jats:sub>c<\/jats:sub>) by the reference evapotranspiration (ET<jats:sub>o<\/jats:sub>) is adopted. The selected papers were those where actual ET<jats:sub>c<\/jats:sub> (ET<jats:sub>c act<\/jats:sub>) was derived from field observations and ET<jats:sub>o<\/jats:sub> was computed with the FAO56 definition, or with another method that could be referred to the former. Field derived ET<jats:sub>c act<\/jats:sub> methods included soil water balance, Bowen ratio and eddy covariance measurements, as well as remote sensing vegetation indices or surface energy balance models, thus reviewed K<jats:sub>c act<\/jats:sub> (ET<jats:sub>c act<\/jats:sub>\/ET<jats:sub>o<\/jats:sub>) values were obtained from field data. These K<jats:sub>c act<\/jats:sub> refer to initial, mid-season and end season (K<jats:sub>c act ini<\/jats:sub>, K<jats:sub>c act mid<\/jats:sub>, K<jats:sub>c act end<\/jats:sub>) when reported values were daily or monthly; otherwise, only average values (K<jats:sub>c act avg<\/jats:sub>) were collected. For cases relative to cold or freezing winters, data refer to the warm season only. For grasses cut for hay, K<jats:sub>c act ini<\/jats:sub>, K<jats:sub>c\u00a0act mid<\/jats:sub>, and K<jats:sub>c act end<\/jats:sub> refer to a cut cycle. K<jats:sub>c act<\/jats:sub> values rarely exceeded 1.25, thus indicating that field measurements reported did respect the available energy for evaporation. Overall, K<jats:sub>c act<\/jats:sub>\u00a0<jats:sub>mid<\/jats:sub> for semi-natural grasslands in cold climates were lower than those in hot climates except when available water was high, with K<jats:sub>c act mid<\/jats:sub> for meadows and mountain pastures generally high. Steppes have K<jats:sub>c act mid<\/jats:sub> values lower than savannas. Grasses commonly planted for hay and for landscape generally showed high K<jats:sub>c act mid<\/jats:sub> values, while a larger variability was observed with grasses for grazing. The collected K<jats:sub>c act<\/jats:sub> values were used to define standard K<jats:sub>c<\/jats:sub> values for all grassland and grasses. Nevertheless, the tabulated K<jats:sub>c act<\/jats:sub> are indicative values of K<jats:sub>c<\/jats:sub> to be used for actual water management purposes and\/or irrigation scheduling of planted grasslands. It is expected that a better knowledge of the standard and\/or indicative K<jats:sub>c<\/jats:sub> values for a wide variety of grasslands and grasses will support better management aimed to improve grass productivity and ecosystem services, including biodiversity and carbon sequestration.<\/jats:p>","DOI":"10.1007\/s00271-023-00867-6","type":"journal-article","created":{"date-parts":[[2023,6,18]],"date-time":"2023-06-18T04:01:25Z","timestamp":1687060885000},"page":"1139-1170","update-policy":"https:\/\/doi.org\/10.1007\/springer_crossmark_policy","source":"Crossref","is-referenced-by-count":16,"title":["Actual and standard crop coefficients for semi-natural and planted grasslands and grasses: a review aimed at supporting water management to improve production and ecosystem services"],"prefix":"10.1007","volume":"42","author":[{"given":"Luis S.","family":"Pereira","sequence":"first","affiliation":[]},{"given":"Paula","family":"Paredes","sequence":"additional","affiliation":[]},{"given":"Dalila","family":"Esp\u00edrito-Santo","sequence":"additional","affiliation":[]},{"given":"Maher","family":"Salman","sequence":"additional","affiliation":[]}],"member":"297","published-online":{"date-parts":[[2023,6,18]]},"reference":[{"key":"867_CR1","doi-asserted-by":"publisher","first-page":"42","DOI":"10.1016\/j.jaridenv.2017.12.004","volume":"150","author":"WE Abaker","year":"2018","unstructured":"Abaker WE, Berninger F, Starr M (2018) Changes in soil hydraulic properties, soil moisture and water balance in Acacia senegal plantations of varying age in Sudan. 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