40 research outputs found
Body size and digestive system shape resource selection by ungulates : a cross-taxa test of the forage maturation hypothesis
The forage maturation hypothesis (FMH) states that energy intake for ungulates is maximised when forage biomass is at intermediate levels. Nevertheless, metabolic allometry and different digestive systems suggest that resource selection should vary across ungulate species. By combining GPS relocations with remotely sensed data on forage characteristics and surface water, we quantified the effect of body size and digestive system in determining movements of 30 populations of hindgut fermenters (equids) and ruminants across biomes. Selection for intermediate forage biomass was negatively related to body size, regardless of digestive system. Selection for proximity to surface water was stronger for equids relative to ruminants, regardless of body size. To be more generalisable, we suggest that the FMH explicitly incorporate contingencies in body size and digestive system, with small-bodied ruminants selecting more strongly for potential energy intake, and hindgut fermenters selecting more strongly for surface water.DATA AVAILABILITY STATEMENT : The dataset used in our analyses is available via Dryad repository (https://doi.org/10.5061/dryad.jsxksn09f) following a year-long embargo from publication of the manuscript. The coordinates associated with mountain zebra data are not provided in an effort to protect critically endangered black rhino (Diceros bicornis) locations. Interested researchers can contact the data owner (Minnesota Zoo) directly for inquiries.https://wileyonlinelibrary.com/journal/elehj2022Mammal Research InstituteZoology and Entomolog
International Surviving Sepsis Campaign guidelines 2016: the perspective from low-income and middle-income countries
In the most recent international Surviving Sepsis Campaign guidelines, Rhodes and colleagues1excellently outline evidence-based management of patients with sepsis and septic shock. Of note, however, is that most of the world\u27s population resides in low-income and middle-income countries (LMICs), where the burden of sepsis is enormous, outcomes are often poor, and socioeconomic consequences are dire.2 Of the 655 references supporting the new sepsis guidelines, only a few pertain to studies in LMICs (about 10%)
Fast Synchrotron and FEL Beam Monitors Based on Single Crystal Diamond Detectors and InGaAs/InAlAs Quantum-Well Devices
Simultaneous photon-beam position and intensity monitoring is becoming of increasing importance for new-generation synchrotron-radiation (SR) sources and free-electron lasers (FEL). Thus, novel concepts of beam diagnostics are required in order to keep such beams under control.
From this perspective diamond is a promising material for the production of semitransparent in situ photon-beam monitors which can withstand the high dose rates occurring in such radiation facilities. Here, we report on the development of freestanding, single-crystal chemical-vapor-deposited diamond detectors with segmented electrodes.
Due to their direct, low-energy band gap, InGaAs quantum-well (QW) devices operated at room temperature may be used as fast detectors for photons ranging from visible to X-ray. These features are valuable in low-energy and time-resolved FEL applications. In particular, a novel segmented InGaAs/InAlAs device has been developed and will be discussed.
Dedicated measurements carried out on both these devices at the Elettra Synchrotron show their capability to monitor the position and the intensity of the photon beam with bunch-by-bunch temporal performances. Furthermore, preliminary tests have been performed on diamond detectors at the Fermi FEL, extracting quantitative intensity and position information for 100-fs-wide FEL pulses with a photon energy of 28.8 eV