Статті в журналах з теми "Environmental scales"

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1

Wainwright, John, Thackwray S. Driver, and Graham P. Chapman. "Time-Scales and Environmental Change." Geographical Journal 163, no. 3 (November 1997): 309. http://dx.doi.org/10.2307/3059749.

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2

Dalby, Simon. "Mastering scales of environmental regulation." Dialogues in Human Geography 2, no. 3 (November 2012): 357–59. http://dx.doi.org/10.1177/2043820612461611.

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3

Åkerman, Maria, and Taru Peltola. "Temporal scales and environmental knowledge production." Landscape and Urban Planning 61, no. 2-4 (November 2002): 147–56. http://dx.doi.org/10.1016/s0169-2046(02)00109-3.

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4

Lichtveld, Covert, Sherman, Shankar, Wickliffe, and Alcala. "Advancing Environmental Health Literacy: Validated Scales of General Environmental Health and Environmental Media-Specific Knowledge, Attitudes and Behaviors." International Journal of Environmental Research and Public Health 16, no. 21 (October 28, 2019): 4157. http://dx.doi.org/10.3390/ijerph16214157.

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Анотація:
Environmental health literacy (EHL) involves understanding and using environmental information to make decisions about health. This study developed a validated survey instrument with four scales for assessing media-specific (i.e., air, food, water) and general EHL. The four scales were created as follows: 1) item generation: environmental health scientists and statisticians developed an initial set of items in three domains: knowledge, attitudes, and behaviors; 2) item review: items were reviewed for face validity; 3) validation: 174 public health students, the exploratory sample, and 98 community members, the test sample, validated the scales. The scales’ factor structure was based on exploratory factor analysis (EFA) and model fit was assessed through confirmatory factor analysis (CFA). For each scale, the final EFA resulted in an independent three-factor solution for knowledge, attitudes, and behaviors. Good fit for the three-factor structure was observed. Model fit for CFA was generally confirmed with fit indices. The scales showed internal consistency with Cronbach’s alpha from 0.63 to 0.70. The 42-item instrument represents an important contribution towards assessing EHL and is designed to enable meaningful engagement between researchers and community members about environmental health. The intended outcome is sustained community–academic partnerships benefiting research design, implementation, translation, dissemination, and community action.
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5

Chang, Chew-Hung, and Gillian Kidman. "Considering geographical and environmental education at scales." International Research in Geographical and Environmental Education 30, no. 2 (April 3, 2021): 91–94. http://dx.doi.org/10.1080/10382046.2021.1912969.

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6

Lettoof, D. C., K. Rankenburg, B. J. McDonald, N. J. Evans, P. W. Bateman, F. Aubret, and M. M. Gagnon. "Snake scales record environmental metal(loid) contamination." Environmental Pollution 274 (April 2021): 116547. http://dx.doi.org/10.1016/j.envpol.2021.116547.

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7

Richter, O., and B. Diekkrüger. "Translating environmental xenobiotic fate models across scales." Hydrology and Earth System Sciences 1, no. 4 (December 31, 1997): 895–904. http://dx.doi.org/10.5194/hess-1-895-1997.

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Abstract. The classical models developed for degradation and transport of xenobiotics have been derived with the assumption of homogeneous environments. Unfortunately, deterministic models function well in the laboratory under homogeneous conditions but such homogeneous conditions often do not prevail in the field. A possible solution is the incorporation of the statistical variation of soil parameters into deterministic process models. This demands the development of stochastic models of spatial variability. To this end, spatial soil parameter fields are conceived as the realisation of a random spatial process. Extrapolation of local fine scale models to large heterogeneous fields is achieved by coupling deterministic process models with random spatial field models.
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8

El-Daoushy, F., and R. Garcia-Tenorio. "Radionuclide time-scales and recent environmental changes." Applied Radiation and Isotopes 46, no. 6-7 (June 1995): 627–28. http://dx.doi.org/10.1016/0969-8043(95)00113-1.

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9

Lijklema, Lambertus. "Dimensions and scales." Water Science and Technology 37, no. 3 (February 1, 1998): 1–7. http://dx.doi.org/10.2166/wst.1998.0162.

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Анотація:
Phenomena in the environment occur on a wide range of spatial and temporal scales. This puts certain demands on the ways we perform research and model systems. Transverse mixing in rivers and internal loading of lakes with phosphates are examples illustrating certain features. Time lags in both ecosystems and in society in combination tend to postpone the solution of environmental problems. Eutrophication serves as an example.
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10

Green, David R., Giles Foody, and Paul Curran. "Environmental Remote Sensing from Regional to Global Scales." Transactions of the Institute of British Geographers 20, no. 2 (1995): 270. http://dx.doi.org/10.2307/622439.

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11

Lawrence, Peter, Giles M. Foody, and Paul J. Curran. "Environmental Remote Sensing from Regional to Global Scales." Geographical Journal 162, no. 1 (March 1996): 111. http://dx.doi.org/10.2307/3060273.

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12

Sparks, Aaron C., Phillip J. Ehret, and Cameron Brick. "Measuring pro-environmental orientation: Testing and building scales." Journal of Environmental Psychology 81 (June 2022): 101780. http://dx.doi.org/10.1016/j.jenvp.2022.101780.

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13

Hsu, Hsuan L. "Literary Topographies and the Scales of Environmental Justice." English Language Notes 52, no. 1 (March 1, 2014): 45–55. http://dx.doi.org/10.1215/00138282-52.1.45.

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14

Pinek, Liliana, India Mansour, Milica Lakovic, Masahiro Ryo, and Matthias C. Rillig. "Rate of environmental change across scales in ecology." Biological Reviews 95, no. 6 (August 5, 2020): 1798–811. http://dx.doi.org/10.1111/brv.12639.

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15

Noonan, Douglas S., Rama Mohana R. Turaga, and Brett M. Baden. "Superfund, Hedonics, and the Scales of Environmental Justice." Environmental Management 44, no. 5 (September 24, 2009): 909–20. http://dx.doi.org/10.1007/s00267-009-9372-y.

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16

Keaulana, Samantha, Melissa Kahili-Heede, Lorinda Riley, Mei Linn N. Park, Kuaiwi Laka Makua, Jetney Kahaulahilahi Vegas, and Mapuana C. K. Antonio. "A Scoping Review of Nature, Land, and Environmental Connectedness and Relatedness." International Journal of Environmental Research and Public Health 18, no. 11 (May 31, 2021): 5897. http://dx.doi.org/10.3390/ijerph18115897.

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Анотація:
The importance of nature and the environment in relation to human health is coalescing, as demonstrated by the increased research that attempts to measure nature connectedness and relatedness. These findings align with constructs of cultural connectedness that assess for land connectedness as part of Indigenous ways of knowing. From an Indigenous worldview, relationships with the environment are critical to wellbeing. The purpose of this comprehensive systematic scoping literature review was two-fold: (1) identify and summarize existing measures of land, nature, and/or environmental connectedness, relatedness, and attitudes and (2) evaluate the psychometric properties of these scales. In total, 1438 articles were retrieved from select databases including PubMed/MEDLINE, PsycINFO, CINAHL (EBSCO), and Academic Search Complete (EBSCO). The final searches and application of the inclusion/exclusion criteria resulted in 57 unique articles and 38 scales categorized as connectedness and relatedness scales (n = 9 scales), attitudinal and values-based scales (n = 16 scales), cultural and spiritually based scales (n = 9 scales), and paradigm-based scales (n = 4 scales) (articles could be placed in multiple categories). Psychometric properties and general outcomes associated with nature-related scales are reported, with implications for future education, research, practice, and policy.
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17

Hubacek, Klaus, Kuishuang Feng, Jan C. Minx, Stephan Pfister, and Naijun Zhou. "Teleconnecting Consumption to Environmental Impacts at Multiple Spatial Scales." Journal of Industrial Ecology 18, no. 1 (January 24, 2014): 7–9. http://dx.doi.org/10.1111/jiec.12082.

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18

Castellanos, Adrian A., Jerry W. Huntley, Gary Voelker, and A. Michelle Lawing. "Environmental filtering improves ecological niche models across multiple scales." Methods in Ecology and Evolution 10, no. 4 (February 5, 2019): 481–92. http://dx.doi.org/10.1111/2041-210x.13142.

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19

Ryan, Kendra, Andy Danylchuk, and Adrian Jordaan. "Consideration of scales in offshore wind environmental impact assessments." Environmental Impact Assessment Review 75 (March 2019): 59–66. http://dx.doi.org/10.1016/j.eiar.2018.12.004.

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20

Zurek, Monika B., and Thomas Henrichs. "Linking scenarios across geographical scales in international environmental assessments." Technological Forecasting and Social Change 74, no. 8 (October 2007): 1282–95. http://dx.doi.org/10.1016/j.techfore.2006.11.005.

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21

Baird, John C. "Prediction of environmental risk over very long time scales." Journal of Environmental Psychology 6, no. 3 (September 1986): 233–44. http://dx.doi.org/10.1016/s0272-4944(86)80024-x.

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22

Stoorvogel, Jetse. "Environmental information management and analysis: Ecosystem to glogal scales." Agricultural Systems 52, no. 1 (September 1996): 133–34. http://dx.doi.org/10.1016/0308-521x(96)85099-2.

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23

Black, Megan. "Environmental Deadpan: New Scales and Sensations of Ecological Fallout." American Quarterly 69, no. 2 (2017): 397–409. http://dx.doi.org/10.1353/aq.2017.0033.

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24

MAUZ, ISABELLE, BERNARD DEBARBIEUX, and CÉLINE GRANJOU. "Cosmopolitanization in action: connecting scales in international environmental organizations." Global Networks 13, no. 2 (February 5, 2013): 164–82. http://dx.doi.org/10.1111/glob.12004.

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25

Sylva, Kathy, Iram Siraj-Blatchford, Brenda Taggart, Pam Sammons, Edward Melhuish, Karen Elliot, and Vasiliki Totsika. "Capturing quality in early childhood through environmental rating scales." Early Childhood Research Quarterly 21, no. 1 (January 2006): 76–92. http://dx.doi.org/10.1016/j.ecresq.2006.01.003.

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26

Gkargkavouzi, Anastasia, Stefanos Paraskevopoulos, and Steriani Matsiori. "Connectedness to Nature and Environmental Identity Scales Reveal Environmental Awareness in Greek Teachers." Natural Sciences Education 47, no. 1 (July 19, 2018): 170011. http://dx.doi.org/10.4195/nse2017.05.0011.

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27

Lukas, Martin C., and Michael Flitner. "Scalar fixes of environmental management in Java, Indonesia." Environment and Planning E: Nature and Space 2, no. 3 (May 6, 2019): 565–89. http://dx.doi.org/10.1177/2514848619844769.

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Анотація:
This paper analyses the emergence and fixing of scales in struggles over environmental issues. Using the example of watershed and coastal management in Java, we show how political framings of environmental matters and struggles over resources are linked to scalar regimes. We conceptualise these regimes as scalar fixes in which scales of intervention and scales of knowledge production are bound by environmental narratives and social–ecological processes to produce lock-in effects for prolonged periods of time. In our empirical case, particular scales were central in providing ‘problem closure’ and legitimising interventions while precluding other problematisations. Sedimentation of the Segara Anakan lagoon, first desired to support conversion into a rice bowl, was later framed as threat caused by upland peasants. The lock-in of interpretive framings and scales of observation and intervention, which was linked to politics of forest control, impeded debate on the various causes of sedimentation. With our newly defined concept of scalar fixes we contribute to understanding environmental narratives and related knowledge, providing a complement to the micro-perspectives on the stabilisation of knowledge claims currently discussed in cultural and political ecology. In doing so, we offer an approach to scalar analysis of environmental conflicts linking environmental narratives with the material social–ecological processes enrolled.
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28

Sheaffer, Christopher I., Steven R. Gold, and Bruce B. Henderson. "Environmental Influences on Children's Fantasy." Imagination, Cognition and Personality 6, no. 2 (October 1986): 151–57. http://dx.doi.org/10.2190/cytk-k3tl-rn4y-keb9.

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Анотація:
A new scale, the Environmental Support for Fantasy Scale (ESFS) was developed to assess factors within the home environment which correlate with measures of children's fantasy. The sample consisted of forty preschool children and their parents. Three scales were derived from the ESFS; a measure of parental attitude, parental control, and environmental fantasy stimulation. A significant first root canonical correlation was found between the three scales of the ESFS and three measures of children's imagination. Parents who provided a role model, were supportive of their children's fantasies, exerted less control over their children's time and activities, and used learning approaches to discipline had children who were more frequent and fanciful fantasizers.
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29

Lenton, Timothy M., and Hans Joachim Schellnhuber. "Tipping the scales." Nature Climate Change 1, no. 712 (November 22, 2007): 97–98. http://dx.doi.org/10.1038/climate.2007.65.

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30

McClanahan, T. R. "Crossing scales: Howard T. Odum." Environmental Conservation 29, no. 3 (September 2002): 271–72. http://dx.doi.org/10.1017/s0376892902000176.

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Анотація:
One of the founders of modern ecology, environmental science, ecological engineering and economics, H.T. Odum, passed away on 11 September 2002 in Gainesville, Florida, from cancer at the age of 78. He died less than a month after the death of his older brother and long-time collaborator, Eugene P. Odum. The two brothers published the classic ecological textbook of the early 1950s (Odum 1953; H.T. Odum's role was not credited until an acknowledgement page in the 3rd edition, published in 1971), one of the first modern holistic views of ecology, ecosystems and human impacts. Among numerous other prizes and awards, they jointly won the Crafoord Prize in 1987, equivalent to a Nobel Prize in ecology, and the Prize of the Institut de la Vie in Paris in 1976. Howard Odum produced 15 books, nearly 300 articles and was chairman for nearly 100 doctoral dissertations of which 75 were during his tenure at the University of Florida from 1970. His students are leaders in many fields of environmental science. His ashes were scattered in the Howard T. Odum Memorial Cypress Swamp, a cypress dome near the University of Florida campus that he donated to the University for research purposes.
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31

Kammerling, D. R. M. "Health Measurement Scales." Journal of Epidemiology & Community Health 44, no. 4 (December 1, 1990): 328. http://dx.doi.org/10.1136/jech.44.4.328.

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32

Li, Jiake, Cong Mu, Chenning Deng, and Menghua Ma. "Hydrologic-environmental effects of sponge city under different spatial scales." Journal of Water Reuse and Desalination 10, no. 1 (December 17, 2019): 45–56. http://dx.doi.org/10.2166/wrd.2019.046.

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Abstract The storm water management models were established at three spatial scales (large, medium, and small) based on a sponge city pilot area in China to explore the hydrological and environmental effects of rainfall conditions and development modes. Results showed the following. (1) Total runoff reduction rates increased from 26.7% to 53.9% for the rainfall event of a 2-year recurrence period as the scale increased. For 5-year and above recurrence periods, total runoff reduction rates were 19.5–49.4%. These rates increased from the small to medium scale and slightly decreased from the medium to large scale. (2) The runoff coefficients were 0.87–0.29, which decreased from the small to medium scale and were basically constant from the medium to large scale. (3) The peak flow reduction rates decreased with increased recurrence periods. The rates increased initially and then decreased at the small scale, whereas the opposite trend occurred at the medium scale. (4) The reduction rates of pollutants were negatively correlated with recurrence periods under the three spatial scales. The pollution load reduction rates were 19.5–54.7%, which increased from the small to medium scale and were basically constant from the medium to large scale.
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33

Huang, Erhan, Yuxin Chen, Miao Fang, Yi Zheng, and Shixiao Yu. "Environmental drivers of plant distributions at global and regional scales." Global Ecology and Biogeography 30, no. 3 (January 16, 2021): 697–709. http://dx.doi.org/10.1111/geb.13251.

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34

Oliveira, M., A. Zucaro, R. Santagata, and S. Ulgiati. "Environmental assessment of milk production from local to regional scales." Ecological Modelling 463 (January 2022): 109795. http://dx.doi.org/10.1016/j.ecolmodel.2021.109795.

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35

Marković, Slobodan B., and Qingzhen Hao. "Eurasian environmental dynamics and humans: interactions over different time scales." Quaternary Research 103 (September 2021): 1–3. http://dx.doi.org/10.1017/qua.2021.55.

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36

Özkan, Korhan, Jens-Christian Svenning, and Erik Jeppesen. "Environmental species sorting dominates forest-bird community assembly across scales." Journal of Animal Ecology 82, no. 1 (July 31, 2012): 266–74. http://dx.doi.org/10.1111/j.1365-2656.2012.02019.x.

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37

Richards, James M., Denise C. Gottfredson, and Gary D. Gottfredson. "Units of Analysis and the Psychometrics of Environmental Assessment Scales." Environment and Behavior 23, no. 4 (July 1991): 423–37. http://dx.doi.org/10.1177/0013916591234002.

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38

Correa-Metrio, Alexander, Jorge A. Meave, Socorro Lozano-García, and Mark B. Bush. "Environmental determinism and neutrality in vegetation at millennial time scales." Journal of Vegetation Science 25, no. 3 (October 29, 2013): 627–35. http://dx.doi.org/10.1111/jvs.12129.

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39

Berthot, Laureline, André St-Hilaire, Daniel Caissie, Nassir El-Jabi, Judith Kirby, and Sébastien Ouellet-Proulx. "Southern Quebec environmental flow assessments: spatial and temporal scales sensitivity." Canadian Water Resources Journal / Revue canadienne des ressources hydriques 45, no. 4 (October 1, 2020): 358–71. http://dx.doi.org/10.1080/07011784.2020.1834881.

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40

Bulkeley, Harriet. "Reconfiguring environmental governance: Towards a politics of scales and networks." Political Geography 24, no. 8 (November 2005): 875–902. http://dx.doi.org/10.1016/j.polgeo.2005.07.002.

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41

Parish, Esther S., Keith L. Kline, Virginia H. Dale, Rebecca A. Efroymson, Allen C. McBride, Timothy L. Johnson, Michael R. Hilliard, and Jeffrey M. Bielicki. "Comparing Scales of Environmental Effects from Gasoline and Ethanol Production." Environmental Management 51, no. 2 (December 2, 2012): 307–38. http://dx.doi.org/10.1007/s00267-012-9983-6.

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42

Richards, James M., Denise C. Gottfredson, and Gary D. Gottfredson. "Units of analysis and item statistics for environmental assessment scales." Current Psychology 9, no. 4 (December 1990): 407–13. http://dx.doi.org/10.1007/bf02687196.

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43

Jana, Polakova. "Is economic institutional adaptation feasible for agri-environmental policy? Case of Good Agricultural and Environmental Condition standards." Agricultural Economics (Zemědělská ekonomika) 64, No. 10 (October 24, 2018): 456–63. http://dx.doi.org/10.17221/138/2017-agricecon.

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Анотація:
This review focuses on Czech implementation of standards for soil and water protection called Good Agricultural and Environmental Conditions (GAEC), with linkage to the European Union (EU) level. I investigate different elements of adaptive institutional economics: (i) summarise current knowledge regarding the social reasons for introducing GAEC; (ii) assess the evidence linked to GAEC to better understand the potential as well as boundaries of formalizing cause-effect links; (iii) clarify the pertinence of producers’ claims on costs accruing from GAEC implementation. These three points highlight the thesis of this paper: implementation in farmers’ practices of the theoretical concept of sustainability in terms of bridging together economics, society and the environment. The economic reasoning for GAEC introduction within adaptive institutional economics stems from the relational positioning of the knowledge of the costs of the impact of agricultural land use on other characteristic rural land uses. GAEC are needed, albeit the size of support obtained by producers surpasses the costs of complying; therefore, the result pays off for farms. We have learned that GAEC implementation is important from regional to EU levels and that its role is more related to economic institutional adaptation than to regulation. Adaptation of institutional economics is therefore feasible, making it possible to understand GAEC as a network which manages and enables knowledge transfer linked directly to regulation. Institutional economics can link sustainability with farmers’ practices and accounts for the behaviour of the farmers. In this review, I find that, for society, it is necessary to require measurement of agri-environmental outcomes for water resources, soil and biodiversity through GAEC at appropriate scales. These scales are likely to be relevant to adaptive institutional economy localities perceived by the rural public.
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44

Andrew, M., T. Jarvis, B. Howard, G. McLeod, S. Robinson, R. Standen, D. Toohey, and A. Williams. "The Environmental Stewardship System (ESS): a generic system for assuring rural environmental performance." Australian Journal of Experimental Agriculture 47, no. 3 (2007): 245. http://dx.doi.org/10.1071/ea06025.

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Анотація:
The Environmental Stewardship System (ESS) is proposed as a generic assurance system for demonstrating environmental performance. It incorporates Environmental Management Systems (EMS) and is matched to natural resources management (NRM) and catchment targets. ESS is a framework for aligning and clarifying environmental objectives and targets across scales. It operates at the catchment and farm levels, interdependently, focusing on the main industries, mainstream farming methods and whole-farm business management. For farmers, it provides a staged pathway of increasing levels of performance and audit process that they can progress along, up to full ISO 14001. It is a modular system that is expandable to suit the particular operational needs of land managers, industries and catchment agencies. ESS is an inclusive framework for integrating various industry farm management improvement schemes and other management requirements. It is an auditable system to provide recognition to land managers who deliver environmental stewardship. The ESS was developed from the findings of the Murray–Darling Basin Commission’s Watermark Environmental Stewardship Project. By addressing the four major deficiencies in current arrangements for NRM delivery (the Stewardship Standard is poorly defined at the Murray–Darling Basin and at the local scales; reporting of outcomes is poorly aligned across scales; and auditing arrangements are not integrated) ESS has the potential to significantly improve the delivery of NRM within Australia, when the drivers for uptake are strong enough. In particular, it would reinforce and elaborate the Australian regional NRM delivery model at the subregional scale. The ESS provides a national framework for assured agricultural production and rural land management. It is in the public domain for others to draw from or adopt.
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45

Kastritis, Panagiotis L., and Anne-Claude Gavin. "Enzymatic complexes across scales." Essays in Biochemistry 62, no. 4 (October 12, 2018): 501–14. http://dx.doi.org/10.1042/ebc20180008.

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Анотація:
An unprecedented opportunity to integrate ~100 years of meticulous in vitro biomolecular research is currently provided in the light of recent advances in methods to visualize closer-to-native architectures of biomolecular machines, and metabolic enzymes in particular. Traditional views of enzymes, namely biomolecular machines, only partially explain their role, organization and kinetics in the cellular milieu. Enzymes self- or hetero-associate, form fibers, may bind to membranes or cytoskeletal elements, have regulatory roles, associate into higher order assemblies (metabolons) or even actively participate in phase-separated membraneless organelles, and all the above in a transient, temporal and spatial manner in response to environmental changes or structural/functional changes of their assemblies. Here, we focus on traditional and emerging concepts in cellular biochemistry and discuss new opportunities in bridging structural, molecular and cellular analyses for metabolic pathways, accumulated over the years, highlighting functional aspects of enzymatic complexes discussed across different levels of spatial resolution.
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46

Li, Ming Chang, Qi Si, Ying Wang, and Jian Hua Zhu. "Multiple Scales Analysis and Assessment of Environmental Air Quality in Tianjin." Applied Mechanics and Materials 744-746 (March 2015): 2378–81. http://dx.doi.org/10.4028/www.scientific.net/amm.744-746.2378.

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Анотація:
Following the development of regional economy, especially the construction of Tianjin Binhai new district, environmental pollution and ecological hazards has been resulted from the pollutant discharge and reclamation etc. The environmental air quality is very important for the health of human being, so it is very important for analyzing and evaluating the environmental air quality for guiding the environmental management and control. In this paper, the environmental air quality of recent fourteen years in Tianjin is analyzed. Multiple scales method is applied to obtain the environmental air current situation. The results of analysis and assessment show the environmental air quality is becoming worse in recent years.
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47

Hölting, Lisanne, Sander Jacobs, María R. Felipe-Lucia, Joachim Maes, Albert V. Norström, Tobias Plieninger, and Anna F. Cord. "Measuring ecosystem multifunctionality across scales." Environmental Research Letters 14, no. 12 (December 19, 2019): 124083. http://dx.doi.org/10.1088/1748-9326/ab5ccb.

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48

Parasiewicz, Piotr. "Overcoming the limits of scales." River Research and Applications 23, no. 8 (2007): 891–92. http://dx.doi.org/10.1002/rra.1042.

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49

Deubner, David C., and H. Daniel Roth. "Occupational Cohort Time Scales." Journal of Occupational and Environmental Medicine 57, no. 6 (June 2015): 643–48. http://dx.doi.org/10.1097/jom.0000000000000412.

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50

GUILHERME, Laianne Souza, Pedro Silva SANTOS, Maria Raquel Bizerra FREITAS, Habyhabanne Maia OLIVEIRA, and Edevaldo SILVA. "ANALYSIS OF THE ENVIRONMENTAL PROFILE OF STUDENTS FROM CATINGUEIRA, PARAÍBA, USING TWO ENVIRONMENTAL MEASURE SCALES." REVISTA DA UNIVERSIDADE VALE DO RIO VERDE 14, no. 2 (2016): 150–59. http://dx.doi.org/10.5892/ruvrd.v14i1.2757.

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