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156 results for “Temperature Influence”
Fig. 3 in The Influence of Environmental Temperature and Humidity on the Elevational and Temporal Distributions of Rove Beetles (Coleoptera: Staphylinidae) in a Quercus L. Forest in Jalisco, Mexico
Fig. 3. Coinertia analysis between environmental variables and number of carrion-trapped specimens of the most abundant staphylinid species at four altitudes in oak forest on Cerro de Garc´ıa, Jalisco, Mexico. a) Factorial plane of Coinertia of the four altitudes; the tip of the arrows represents the composition of the community of staphylinids at the indicated altitude and the diamond base represents the environmental variables, b) Projection of the vectors of the environmental variables, c) Diversity of carrion-trapped staphylinids in the factorial plane of Coinertia. Hmin = minimum humidity; H = average humidity; Hmax = maximum humidity; Tmin = minimum temperature; T = average temperature; Tmax = maximum temperature. Species names for abbreviations are in Table 1. Most species clustered around the center and are not shown. The species indicated are those that showed a significantly different tendency.
Fig. 4 in The Influence of Environmental Temperature and Humidity on the Elevational and Temporal Distributions of Rove Beetles (Coleoptera: Staphylinidae) in a Quercus L. Forest in Jalisco, Mexico
Fig. 4. Coinertia analysis among environmental variables and number of individuals per species at four altitudes on Cerro de Garc´ıa, Jalisco, Mexico: A) 2,100 m, B) 2,300 m, C) 2,500 m, D) 2,700 m. For each altitude: a) Factorial plan of Coinertia of the months; the tip of the arrows represents the composition of the community of staphylinids at the indicated altitude and the round dot base represents the environmental variables; b) Projection of the vectors of the environmental variables; c) Diversity of carrion-trapped staphylinids in the factorial plan of Coinertia. Hum = humidity, Tem = temperature. Species names for abbreviations are in Table 1. Most species clustered around the center and are not shown. The species indicated are those that showed a significantly different tendency.
Fig. 1. Study site. A in The Influence of Environmental Temperature and Humidity on the Elevational and Temporal Distributions of Rove Beetles (Coleoptera: Staphylinidae) in a Quercus L. Forest in Jalisco, Mexico
Fig. 1. Study site. A) Location of carrion traps on Cerro de Garc´ıa, B) Carrion trap, C) Quercus forest.
Burrow ambient temperature influences Helice crab activity and availability for migratory Red-crowned Cranes Grus japonensis
<p><span><span><span><span><span><span><span><span><span><span><span>For migratory birds that specialize on particular benthic macroinvertebrate species, the timing of migration is critical since prey availability may be temporally limited and a function of local ambient temperature. Hence, variation in local ambient temperature can influence the diet composition of migrant birds, and consequently they may be constrained by which stopover and wintering sites they are able to utilize during periods of colder temperatures. Here we use faecal analysis, observer-based population counts, digital video-recordings, and temperature data to test five predictions regarding the influence of local ambient temperature on the activity and availability of mudflat crabs - a key prey resource at three staging/wintering sites in eastern China, for migratory Red-crowned cranes (<i><span>Grus japonensis</span></i>) and how this subsequently influences crane diet and use of wetland sites. Pearson's correlations and generalised linear models revealed that mudflat crabs became significantly more surface active with increasing burrow ambient temperature. Piecewise regression analysis revealed that crab surface activity was largely limited to a burrow ambient temperature threshold between 12~13℃ after which activity significantly increased. Crab activity declining temporally during the crane's autumn migration period but increased during spring migration. Crabs accounted for a significant proportion of crane diet at two of three sites, however the frequency of crab remains was significantly different between sites, and between autumn and spring migration. Analyses of crane count data revealed a degree of congruence between the migration timing of Red-crowned cranes with periods of warmer ambient temperature, and a significant, positive correlation between the percentage of crab remains in crane faeces and site ambient temperature. Collectively our data suggests that temperature-related mudflat crab activity may provide an important time window for migratory Red-crowned cranes to utilise critical stop-over sites and the crabs' food resources.</span></span></span></span></span></span></span></span></span></span></span></p>
Influence of ambient temperature on the phenology of the greater mouse-eared bat (Myotis myotis)
<p>In order to assess the consequences of climate change and evaluate its impacts on wildlife, it is essential to do so on a species-specific level. It is assumed that changes in the ambient temperature influence energy consumption as well as food availability and thus foraging behaviour, reproduction, survival and therefore population dynamics in bats. Based on this assumption, the present study aims to gain insights into the roosting and breeding behaviour of the greater mouse-eared bat (<em>Myotis myotis</em>) in relation to changes of the ambient temperature. For this purpose, we investigated the effect of ambient temperature on the phenology of the greater mouse-eared bat by using activity data of the bats collected using light barriers at the maternity roosts. The light barrier used in this study is a system that detects the interruption of two light beams, e.g. by a flying bat, and displays it as an electrical signal. The investigations have shown that (1) the higher the winter temperatures, the earlier the greater mouse-eared bats returned to the roosts to form the maternity colony; however, this was only true for ambient temperatures below 0.5 °C, (2) birth season started earlier at higher spring temperatures, and (3) the dissolution of maternity roosts occurred earlier with an earlier birth season and at higher ambient temperatures during lactation. The results revealed that ambient temperature has an influence on the phenology of the greater mouse-eared bat. This study highlights that in order to understand the impact of climate change on biodiversity, it is necessary to investigate in detail effects on a species-specific level and also to consider direct and indirect effects of ambient temperature on different life history stages.</p>
The Influence of Lidocaine Temperature on Pain During Subcutaneous Administration
ClinicalTrials.gov study NCT02107690. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
Influence of Ambient Temperature on Resting Energy Expenditure of Healthy Adults
ClinicalTrials.gov study NCT05505240. IPD Sharing: NO. Countries: 1. Publications: 1.
Influence of Ambient Temperature on Food Intake Through a Randomized Control Trial in an Office Setting
ClinicalTrials.gov study NCT02386891. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Influence of Ambient Temperature on Office Behaviors
ClinicalTrials.gov study NCT02507310. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Perioperative Management of Temperature in Children and Influence of Hypothermia on Blood Clotting in Children.
ClinicalTrials.gov study NCT03273894. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
Air temperature influences early Covid-19 outbreak as indicated by worldwide mortality
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Data from: Cardiac plasticity influences aerobic performance and thermal tolerance in a tropical, freshwater fish at elevated temperatures
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Data from: The influence of soil communities on the temperature sensitivity of soil respiration
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Data from: Summer stream temperatures influence sculpin distributions and spatial partitioning in the Upper Clark Fork River Basin, Montana
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Photoperiod influences the shape and scaling of freshwater phytoplankton responses to light and temperature
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Data from: Ambient temperature influences tolerance to plant secondary compounds in a mammalian herbivore
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Data from: New Trepostomate bryozoans from the upper Ordovician of Morocco and the temperature influence on zooid size
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Data from: Annual temperature variation influences the vulnerability of montane bird communities to land-use change
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Influence of ambient temperature on the phenology of the greater mouse-eared bat (Myotis myotis)
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The influence of feeding behaviour and temperature on the capacity of mosquitoes to transmit malaria
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