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Fig. 6 in Life-cycle of the Afrotropical snail-killing fly Sepedon (Parasepedon) ruficeps Becker, 1923
Fig. 6. Sepedon (Parasepedon) ruficeps, details of larval immature stages: (A–D) egg, lateral (A) and ventral (B) views, anterior (C) and posterior (D) ends; (E–H) first instar larva: (E) anterior end showing cephalic (I) and thoracic (II–III) segments, frontal view; (F) first instar larva, anterior end in lateral view; (G) characteristic details of thoracic segment; (H) first instar larva more or less in ventrolateral view, segments I–IV showing position of the spinulate ventral band; (I) thoracic sensilla 2–8. Abbreviations:Ae – aeropyle, Ant – anterior end, AO – antennal organ, arabic numbers – sensilla, CL – cephalic lobe, DF – dorsal face, Gl – glue, I–IV – segment numbers, LF – lateral face, MO – maxillary organ, My – micropyle, Pst – posterior end, Post B – post oral spinulated band, Sdr – subdorsal ridge, Slr – sublateral ridge, Tsv B – transverse spinulate ventral band, VF – ventral face. Scale bars in μm.
Life Cycle Assessment of the LiftWEC Design Dataset
<p>The Life Cycle Assessment Dataset contains data used to perform the cradle to grave LCA methodology to quantify the carbon and energy intensity of the proposed device configuration.<br> The dataset includes input data obtained through a combination of project partner contributions, peer-reviewed literature, and pre-existing databases, as well as results of environmental impacts found through the application of LCA techniques in the SimaPro tool and using Ecoinvent database.<br> These data were compiled and used to conduct a LCA of the LiftWEC device in Work Package 9, to evaluate and inform device design choices. The findings of this assessment were presented as part of Task 9.4 and included in Deliverable D9.4, titled "Life Cycle Assessment of the LiftWEC Design.</p>
Figure 4 A-E in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 4 A-E. Numbers of adults, egg strings and pupal exuviae of Metriocnemus (Inermipupa) carmencitabetarum recorded between April and December in 2012 and 2013 at Appingdam and Nijmegen and of 4th instar larvae at Nijmegen in 2013: 4A number of adults and egg strings at Appingedam, 2012; 4B number of adults and pupal exuviae at Appingedam 2013; 4C number of adults and egg strings at Nijmegen 2012; 4D number of adults and pupal exuviae at Nijmegen 2013; 4E numbers of 4th instar larvae recorded in the upper 50 cm of the water butt at Nijmegen, 2013. Horizontal brackets indicate periods of adult activity of one generation. Periods with no observations are shaded.
Figure 3 in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 3. Emergence pattern of the wintering generation from the Appingedam vase in spring 2014 (black dots and solid line) and hypothetical emergence pattern when larval development would have been interrupted by a diapause (dotted line). Number of pupal exuviae are added up per week.
Figure 5 in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 5. Seasonal length differences in male and female pupal exuviae in Nijmegen in 2013, with a binomial fit (left y-axis). The two wavy lines represent mean weekly minimum and maximum temperatures from April to October (right y-axis).
Figure 1 in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 1. Distribution of Metriocnemus (I.) carmencitabertarum in the Netherlands and the location of the two research sites Appingedam and Nijmegen.
Figure 2 in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 2. Head width and head length of wintering larvae collected in the Appingedam vase in December 2013 and February 2014. Results are projected in a HW-HL graph of the four M. (I.) carmencitabertarum instars obtained from Kuper (2015) revealing wintering in 3rd and 4th larval stage in the Appingedam vase.
Figure 6 in LIFE CYCLE OF NATURAL POPULATIONS OF METRIOCNEMUS (INERMIPUPA) CARMENCITABERTARUM LANGTON & COBO 1997 (DIPTERA: CHIRONOMIDAE) IN THE NETHERLANDS: INDICATIONS FOR A SOUTHERN ORIGIN? Abstract
Figure 6. Correlation between mean ambient temperature during development and skin size for males and females from the Nijmegen water butt in 2013.
Data set for the journal article: Social life cycle assessment of green methanol and benchmarking against conventional fossil methanol
<p>Single File containing:</p> <ul> <li>Green Methanol Inventories: numerical data as displayed in Figure 4, Main social life cycle inventory data of the green methanol system. </li> <li>Conventional Methanol Inventories: numerical data as displayed in Figure 5, Main social life cycle inventory data of the conventional methanol system. </li> <li>Supplementary information: Diagrams and tables describing teh flowsheet of the simulations used in this work: <ul> <li> <p>Green methanol production process (flowsheet and stream table)</p> </li> <li> <p>Syngas production through Steam Methane Reforming (flowsheet and stream table)</p> </li> <li> <p>Conventional methanol production process (flowsheet and stream table)</p> </li> </ul> </li> </ul>
Life cycle inventory database for consumption in Québec – Food consumption
<p>These inventory datasets are essential for calculating the carbon footprint of an individual’s consumption in Quebec.</p> <p>Led by the CIRAIG, in collaboration with PolyCarbone and ESG-UQAM, this project aims to develop an inventory database of the life cycle of consumption in Quebec. These inventory datasets are essential for calculating the carbon footprint of an individual’s consumption in Quebec. The inventory is developed with a life cycle approach. Ultimately, it allows for evaluating carbon footprints at every step of the consumption life cycle (extraction of primary sources, transformation, transport, use of goods and services, end of life). The inventory is developed in a modular fashion for the different areas of individual consumption as Food; Transport; Housing; Clothing; Travel; Communications; Entertainment and Culture; Financial and Administrative Management; Health, Hygiene, and Beauty. These areas are developed and detailed as a priority, as they contribute most to an individual’s carbon footprint in Quebec. Other non-priority areas are roughly modelled in order to provide a complete (but more uncertain) portrait of individual consumption. The project is underway and the deliverables will be made available online as things progress. It is not, however, an objective of the project to create a carbon footprint calculation tool at the moment.</p> <p>https://ciraig.org/index.php/project/life-cycle-inventory-database-for-consumption-in-quebec/</p> <p> </p>
Towards alternative solutions for flaring : life cycle assessment and carbon substance flow analysis of associated gas conversion into C3 chemicals
<p>Supplementary material and used data for the publication.</p>
START Workshop - Use of Life Cycle Assessment as an Environmental Impact Tool
<p>Video from an internal workshop on Life Cycle Assessment that was held in June 2023 by 3drivers (speakers were Eduardo Santos and Ana Braga) as a basic training for other consortium members, with the goal of creating a common ground among partners for the subsequent environmental impact assessment activities that START will carry out on the thermoelectric solutions that will be delivered.</p> <p>The video is related to the general introduction given by E. Santos on the basics of the LCA approach and applications. It may be useful to you if new to the topic.</p>
[Supplementary Information] Model uncertainty versus variability in the life cycle assessment of commercial fisheries
<p>Supporting information from the manuscript: <em>Model uncertainty versus variability in the life cycle assessment of commercial fisheries</em>. The study analyses the life cycle assessment of fish species landed by Danish trawlers, comparing sources of uncertainty (such as modelling approaches) with sources of variability (vessel length and years).</p> <p>Supporting information 1: In depth description of the different models used in the study, the fuel disaggregation processes and the sensitivity analysis performed</p> <p>Supporting information 2: Contains the excel table with the datasets and related calculations to replicate the results described in the paper and the R code used to analyze the results.</p>
Time lapse microscopy images of Saccharomyces cerevisiae's full life cycle
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Data from: Adaptive division of growth and development between hosts in helminths with two-host life cycles
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Slower environmental cycles maintain greater life-history variation within populations
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A comparative analysis testing Werner's theory of complex life cycles
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Redwood Creek Chinook salmon life cycle model code and data
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Data from: Tradeoffs with growth limit host range in complex life cycle helminths
Parasitic worms with complex life cycles have several developmental stages, with each stage creating opportunities to infect additional host species. Using a dataset for 973 species of trophically transmitted acanthocephalans, cestodes, and nematodes, we confirmed that worms with longer life cycles (i.e. more successive hosts) infect a greater diversity of host species and taxa (after controlling for study effort). Generalism at the stage level was highest for 'middle' life stages, the second and third intermediate hosts of long life cycles. By simulating life cycles in real food webs, we found that middle stages had more potential host species to infect, suggesting that opportunity constrains generalism. However, parasites usually infected fewer host species than expected from simulated cycles, suggesting generalism also has costs. There was no tradeoff in generalism from one stage to the next, but worms spent less time growing and developing in stages where they infected more taxonomically diverse hosts. Our results demonstrate that life cycle complexity favors high generalism, and host use across life stages is determined by both ecological opportunity and life history tradeoffs.
The Life Cycle of Features in Highly-Configurable Software Systems Evolving in Space and Time
<p>Dataset covering the entire development history of four open-source systems from different domains, covering a total of 37500 commits from up to 20 years of development, which can serve as a source of information for new studies on the evolution of systems in space and time.</p>
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.