Haruka Yoshimura, Ph.D.
Fig. 1. Landscape of high primary productivity for the cooling strategy in agricultural areas. To construct high LAI vegetation structure, spatial design with diverse plant species of canopy forming tall trees, mid-story small trees/shrubs and under-story/ground covers (e.g., small shrubs, herbs, grasses, climbers) should be sought out.
Urgent need for regional cooling
strategy to secure agricultural productivity
Intensifying Climate Change impacts: altered precipitation
patterns and increase in temperature especially during the summer with the
higher solar radiation energy are already realities. Negative impacts of the
climate trends on crop production are already evident in several regions of the
world (IPCC: Porter et al. 2014).
Recent studies have demonstrated a great negative
sensitivity of cereal productivity to high temperatures—high
temperature stress. Rice (Oryza sativa) is one of
the most important food crops and is a staple food for much of the world’s
population. Although the strains of rice are native to tropical and subtropical
regions, they are strikingly vulnerable to high temperatures. The negative
impacts of high temperatures on rice production are already being seen in
China, India, Indonesia, the Philippines, Thailand, Vietnam (e.g., Welch et al.
2010), and Japan (e.g., Sakata et al. 2012).
In the spikelets during the flowering period, exposure
to high temperatures exceeding around 34°C induces sterility (Jagadish et al.
2007) owing to poor anther dehiscene and low pollen production (Matsui et al.
2000, 2001; Prasad et al. 2006). Increased nighttime temperatures during the
critical stages of development reduce rice yield (Peng et al. 2004; Welch et
al. 2010) and quality (Ambardekar et al. 2011), through spikelets sterility,
increased respiration rates (Mohammed and Tarpley 2009), and decreased
assimilate accumulation (Morita et al. 2005). In major Asian rice-growing
countries, the night temperatures have increased faster than the day temperatures
(Peng et al. 2004; Padma Kumari et al. 2007), and the trend is projected to
continue into the future (IPPC: Christensen et al. 2007).
Using regional-scale statistical analyses, Schlenker
and Roberts (2009) have shown that yields increase with temperatures up to 29°C
for corn (Zea mays), 30°C for
soybeans (Glycine max) and 32°C for
cotton (Gossypium spp.) but that temperatures above these thresholds are very harmful.
Wheat (Triticum aestivum) is very sensitive
to high temperatures. High temperatures during anthesis or the “flowering period”
(e.g., Ferris et al. 1998) and grain-filling phase can reduce yield and quality
(e.g., Farooq et al. 2011). The optimum temperature for wheat anthesis and
grain filling ranges from 12 to 22°C (Farooq et al. 2011). In wheat, high nighttime
temperatures are detrimental, decreasing gain yields through spikelet sterility
and decreased photosynthesis (Prasad et al. 2008a).
Sorghum (Sorghum
bicolor) is an important grain crop in semiarid regions in the world, because
of its tolerance to drought and water-saving qualities, the cereal has been
called the “camel of crops.” However, high temperature stress can cause
significant decreases in sorghum grain yields. The optimum temperatures for
maximum dry matter and seed yields of grain sorghum are around 27/22°C (daytime/nighttime
temperature). Although season-long (from emergence to maturity) growth temperatures
in the range of 36/26 to 44/34°C do not influence leaf photosynthetic rates,
high temperature (≥36/26°C) significantly decreases seed set, seed number, seed
size, and seed yields (Prasad et al. 2006). Even short periods of high
temperature exposure during the pre-flowering and flowering stage and early stages
of seed development reduce sorghum grain yields (Prasad et al 2008b).
High temperature is a crucial constraint to yield
and the quality of crops. Even short-term extreme temperature events can be
critical, especially during the key stages of development. Only a few days of
extreme temperature (above 32°C) at the flowering stages of many crops can
drastically reduce yield (Wheeler et al. 2000).
Most cereal grains are currently grown in regions
where current temperatures are already close to optimum for production.
Therefore, any further increases in the temperature that exceeds thresholds
during the sensitive stages or extreme climate episodes could threaten food
security (e.g., Gornall et al. 2010).
Construction of the cooling landscapes: integrated with mitigation and adaptation strategy for climate change
Urbanization is an important component of global
land modification (Vitousek et al. 1997) and urban heat island phenomenon is an
extreme case of regional climate change owing to land use modification (Foley
et al. 2005). As a fundamental solution for urban-heat-islands mitigation,
increasing tree canopy cover is becoming regarded as a major promising strategy
(Akbari et al. 2001; Akbari 2002; Mcpherson et al. 2005, 2011).
Recent studies have shown that the density of
vegetation or leaf area index (LAI) is an important indicator in the cooling
effect (Hardin and Jensen 2007; Jenerette et al. 2007; Peters and McFadden
2010). LAI is generally defined as one-sided green leaf area per unit ground
area in broadleaf canopies, and variously defined (projected or total) in needle
canopies. The LAI is zero on bare soil, farm land prior to crop emergence and civil
engineering structures made from concrete and asphalt without vegetation cover and
is low in grasslands, as the leaf stratified structure is thinner and simpler.
A recent field measurement shows tree shade can provide effective cooling,
whereas grass has little effect (Armson et al. 2012).
All life on earth, including human beings, stems
primarily from the conversion of solar radiation energy by photosynthesis into
biochemical energy. Primary production is the estimated amount of biomass fixed
atmospheric carbon dioxide using solar radiation energy through photosynthesis and
subsequent biochemical activities. Primary production and LAI roughly correlate,
as primary production is closely related to light interception, which is mainly
determined by LAI. Terrestrial ecosystems have spatial variation in structure,
depending on LAI. Biomes with high LAI have high primary productivity, as the highly
stratified structure of canopy foliage effectively intercept solar radiation
for photosynthesis. A high LAI of over 8 is the level found in mature forests
such as temperate broad-leaved evergreen forests and tropical rain forests
(Odum 1971; Whittaker and Likens 1973; Chapin 2003). The mature forests with
high LAI have evolved in such a way that the vertically stratified structure of canopy
foliage effectively alters the solar radiation balance (e.g., Yoshimura et al.
2010) and cools the air by transpiration.
Micro climate amelioration in agricultural areas is
essential, as high temperatures already threaten food security. It is well known
that ‘urban heat island’ effect takes place at night (e.g., Grimm et al. 2008),
when buildings and streets radiate the solar heat absorbed during the day (Kalnay
& Cai 2003).
Even in agricultural areas, land has been modified by
expanding human infrastructure such as highways, roads, and irrigation canals
lined with concrete. Consequently, nighttime temperatures are elevated as
concrete, asphalt and water bodies without riparian forests absorb the solar
radiation during the day and radiate it back out as heat at night. Tree foliage shields solar radiation and keeps soil (Jones et al. 2003) and water bodies (Dan Moore
et al. 2005) cool underneath the canopy, which in turn keeps the nighttime
temperature cool. The cooling strategies incorporating landscapes with high LAI
vegetation structure is applicable in agricultural areas (Fig.1.).
Restoring wetlands and streams in
agricultural areas for high LAI vegetation
The cooling strategy of high LAI tree coverage
through the interception of solar radiation and transpiration requires
adequate water. Endreny (2008) advocates naturalization
of urban watersheds hydrology to ensure the cooling function of
vegetation. The cooling strategy of irrigated naturalized watersheds hydrology
is applicable in agricultural areas. Infiltration of human-made wetlands such
as irrigation channels, ponds, canals, and ditches provides a low-cost,
self-sufficient method of natural irrigation for high LAI vegetation structure.
While the Ramsar Convention (www.ramsar.org) is an inter-governmental
conservation treaty primarily for the importance of wetlands as a habitat for
migratory birds, human-made wetlands such as irrigation channels, ponds,
canals, and ditches utilized for ecosystems’ cooling function result in a wide
range of values and functions including groundwater recharge and discharge,
storm water control, maintenance/restoration of clear water, and a habitat for
valuable fishery species (Fig. 2.). The cooling strategy should be integrated within
broader catchment management strategies (Bernhardt and Palmer 2007).
Biodiversity and primary production (LAI) are linked
(e.g., Loreau et al. 2001). To support biodiversity, land planning of diverse habitats is essential (Fig.1.).
Strategic planning and
regional design solutions appropriate for agricultural areas are urgently
needed, as current trends of high temperatures already threaten food security.
Fig. 2. Cool water creek to cool down irrigation water and to ameliorate microclimate. Human-made wetlands with riparian forests provide integrated ecosystem services. See text for explanation
Fig. 2. Cool water creek to cool down irrigation water and to ameliorate microclimate. Human-made wetlands with riparian forests provide integrated ecosystem services. See text for explanation
Acknowledgements This research was partially supported by the Ministry of Education, Science, Sports and Culture of Japan, Grant-in-aid for Scientific Research (C)(2); Project number: 11650553.
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