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<Article>
<Journal>
				<PublisherName>دانشگاه تهران</PublisherName>
				<JournalTitle>پژوهشهای جغرافیای انسانی</JournalTitle>
				<Issn>2008-6296</Issn>
				<Volume>45</Volume>
				<Issue>3</Issue>
				<PubDate PubStatus="epublish">
					<Year>2013</Year>
					<Month>09</Month>
					<Day>23</Day>
				</PubDate>
			</Journal>
<ArticleTitle>Geomorphological analysis of switching the location of military bases
(Case study Western slopes of Sahand Mountain)</ArticleTitle>
<VernacularTitle>تحلیل ژئو مورفولوژیکی مکان گزینی مراکز نظامی (نمونه موردی: دامنه های غربی کوهستان سهند)</VernacularTitle>
			<FirstPage>209</FirstPage>
			<LastPage>228</LastPage>
			<ELocationID EIdType="pii">35253</ELocationID>
			
<ELocationID EIdType="doi">10.22059/jhgr.2013.35253</ELocationID>
			
			<Language>FA</Language>
<AuthorList>
<Author>
					<FirstName>شهرام</FirstName>
					<LastName>روستایی</LastName>
<Affiliation>دانشیار  جغرافیای طبیعی دانشگاه تبریز</Affiliation>

</Author>
<Author>
					<FirstName>محمد حسین</FirstName>
					<LastName>فتحی</LastName>
<Affiliation>دانشجوی دکترای ژئومورفولوژی، دانشگاه محقّق اردبیلی</Affiliation>

</Author>
<Author>
					<FirstName>سیروس</FirstName>
					<LastName>فخری</LastName>
<Affiliation>دانشجوی دکترای ژئومورفولوژی، دانشگاه تهران</Affiliation>

</Author>
<Author>
					<FirstName>عادل</FirstName>
					<LastName>محمدی فر</LastName>
<Affiliation>کارشناس ارشد ژئومورفولوژی، دانشگاه تبریز</Affiliation>

</Author>
</AuthorList>
				<PublicationType>Journal Article</PublicationType>
			<History>
				<PubDate PubStatus="received">
					<Year>2011</Year>
					<Month>01</Month>
					<Day>10</Day>
				</PubDate>
			</History>
		<Abstract>Extended Abstract&lt;br /&gt;Introduction&lt;br /&gt;Cities have been developing since the Industrial Revolution. The growth of cities has many&lt;br /&gt;consequences on the environment. As a result of the increase in adverse consequences of the&lt;br /&gt;urban growth, United Nations considered the necessity for sustainable development issues in&lt;br /&gt;cities. The first step in this procedure is some methods for measurement of the sustainable&lt;br /&gt;development by Reliable indicators. Ecological footprint is one of these methods that have been&lt;br /&gt;used for measuring urban sustainability in the Cities like London, Santiago, and Liverpool. We&lt;br /&gt;have used this method to measure urban sustainability in Rasht County, Iran. The results&lt;br /&gt;indicate that the ecological footprint is equivalent to 1.797 per capita in Rasht. Also biological&lt;br /&gt;capacity (biocapacity) in this city is equal to 0.414 hectar per capita. Therefore, we conclude&lt;br /&gt;that Rasht is not sustainable in terms of ecological footprint index.&lt;br /&gt;Cities have been developing since the Industrial Revolution with many consequences on the&lt;br /&gt;environment. An increase in deleterious effects of urban growth caused the United Nations to&lt;br /&gt;pay attention to sustainable development in cities. As the first step in this procedure it is&lt;br /&gt;required to measure the sustainable development by reliable indicators. Sustainable&lt;br /&gt;development can be measured by determining Ecological Footprint as one of the indicators.&lt;br /&gt;This is a measure of the amount of biologically productive land and water required to support  &lt;br /&gt;the demands of a population or productive activity. The first Ecological Footprints have been&lt;br /&gt;calculated using a component-based approach. This has evolved into a more comprehensive and&lt;br /&gt;robust approach, compound Footprinting, now used for national Footprint accounting. The&lt;br /&gt;component-based approach sums the Ecological Footprint of all relevant components of a&lt;br /&gt;population in resource consumption and waste production. This is, first, by identifying all of&lt;br /&gt;the individual goods and services and the amounts thereof a given population consumes,&lt;br /&gt;and second, by assessing the Ecological Footprint of each component using life-cycle data that&lt;br /&gt;track the resource requirements of a given product from resource extraction to waste disposal.&lt;br /&gt;Ecological footprint method has already been used for measuring urban sustainability in the&lt;br /&gt;Cities like London, Santiago, and Liverpool. We have used this method for measuring urban&lt;br /&gt;sustainability in Rasht County, Iran. The Ecological Footprint utilize the yields of primary&lt;br /&gt;products (from cropland, forest, grazing and fisheries) to calculate the area necessary to support&lt;br /&gt;a given activity. Biocapacity is measured by calculating the amount of biologically productive&lt;br /&gt;area of land and sea available to provide the resources a population consumes and to absorb its&lt;br /&gt;wastes, given current technology and management practices. Countries differ in the productivity&lt;br /&gt;of their ecosystems, and this is reflected in corresponding accounts. Ecological Footprint&lt;br /&gt;accounts allow governments to track a city or region’s demand on natural capital, and to&lt;br /&gt;compare this demand with the amount of natural capital actually available. The accounts also&lt;br /&gt;give governments the ability to answer more specific questions about the distribution of these&lt;br /&gt;demands within their economy. In other words, it gives them information about their resource&lt;br /&gt;metabolism. They also help assess the ecological capacity embodied in the imports upon which&lt;br /&gt;a region is dependent. This can shed light on the region’s constraints or future liabilities in&lt;br /&gt;comparison with other regions of the world, and identify opportunities to defend or improve the&lt;br /&gt;local quality of life. Footprint accounts help governments become more specific about&lt;br /&gt;sustainability in a number of ways. The accounts provide a common language and a clearly&lt;br /&gt;defined methodology that can be used to support staff training and to communicate about&lt;br /&gt;sustainability issues with other levels of government or with the public. Footprint accounts add&lt;br /&gt;value to existing data sets on production, trade and environmental performance by providing a&lt;br /&gt;comprehensive way to interpret them. For instance, the accounts can help guide “environmental&lt;br /&gt;management systems” by offering a framework for gathering and organizing data, setting&lt;br /&gt;targets and tracking progress. The accounts can also serve as environmental reporting&lt;br /&gt;requirements, and inform strategic decision-making for regional economic development. The&lt;br /&gt;global effort for sustainability will be won, or lost, in the world’s cities, where urban design&lt;br /&gt;may influence over 70 percent of people’s Ecological Footprint. High-Footprint cities can&lt;br /&gt;reduce this demand on nature greatly with existing technology. Many of these savings also cut&lt;br /&gt;costs and make cities more livable. Since urban infrastructure is long-lasting and influences&lt;br /&gt;resource needs for decades to come, infrastructure decisions make or break a city’s future.&lt;br /&gt;Which cities are building future resource traps? Which ones are building opportunities for&lt;br /&gt;resource efficient and more competitive lifestyles? Without regional resource accounting,&lt;br /&gt;governments can easily overlook or fail to realize the extent of these kinds of opportunities and&lt;br /&gt;threats. The Ecological Footprint, a comprehensive, science-based resource accounting system  &lt;br /&gt;that compares people’s use of nature with nature’s ability to regenerate, helps eliminate this&lt;br /&gt;blind spot.&lt;br /&gt;Methodology&lt;br /&gt;We have used the Ecological footprint method for testing the research hypotheses. Ecological&lt;br /&gt;footprint is a measure of human demand on the Earth&#039;s ecosystems. It is a standardized measure&lt;br /&gt;of demand for natural capital that may be contrasted with the planet&#039;s ecological capacity for&lt;br /&gt;regeneration. It represents the amount of biologically productive land and sea area necessary to&lt;br /&gt;supply the resources a human population consumes, and to assimilate associated waste. Using&lt;br /&gt;this assessment, it is possible to estimate how much of the Earth it would take to support&lt;br /&gt;humanity if everybody followed a given lifestyle.&lt;br /&gt;Results and Discussion&lt;br /&gt;The results show that the ecological footprint is equivalent to 1.797 per capita in Rasht. Also&lt;br /&gt;biological capacity (biocapacity) in this city is also equal to 0.414 hectar per capita. In the study&lt;br /&gt;area ecological Footprint is much more than the biological capacity. This means the instability&lt;br /&gt;in ecological system. The Ecological Footprint in consumption for the study area is lower than&lt;br /&gt;other counties in Iran.&lt;br /&gt;Conclusion&lt;br /&gt;According to the results of the study, we conclude that Rasht is not sustainable in terms of&lt;br /&gt;ecological footprint index. Although the county is ecologically instable, but the Ecological&lt;br /&gt;Footprint in Rasht County is lower than that in the Iran and in the world. The instability may be&lt;br /&gt;resulted from excessive use of natural resources and also tourism activities. It can be&lt;br /&gt;recommended to have optimized use of natural resources, suitable planning for tourism, and&lt;br /&gt;education of the public for sound consumption of resources. &lt;br /&gt; </Abstract>
			<OtherAbstract Language="FA">در پژوهش حاضر به تحلیل ژئومورفولوژیکی مکان گزینی مراکز نظامی موجود در دامنه ها ی&lt;br /&gt;غربی کوهستان سهند، ازجمله، پادگان پیاده مکانیزه لشگر 21 حمزه ی سیدالشّ هدا، واقع در&lt;br /&gt;شهر تبریز، مرکز آموزش 03 عجب شیر و گروه 11 توپخانه ی مراغه و سایر مراکز نظامی&lt;br /&gt;موجود در محدوده ی مورد مطالعه پرداخته شده است. هدف از این پژوهش تولید نقشه ای است&lt;br /&gt;که با شناسایی و الوی تبندی مکا نها، مناطق مناسب برای احداث مراکز نظامی را مشخّص کند.&lt;br /&gt;روش کار بدین صورت انجام گرفت که ابتدا با تنظیم پرسش نامه به روش پیمایشی ، نظرات&lt;br /&gt;متخصصان نظامی و ژئومورفولوژی درباره ی عوامل مؤثّر در مکان گزینی مراکز نظامی جمع آوری&lt;br /&gt;شد. سپس با برداشت نقاط زمینی و رقومی کردن لایه های مورد نیاز از روی نقشه های موجود،&lt;br /&gt;AHP تهیه و همچنین وزن دهی داده ها با استفاده از روش Arc GIS پایگاه داده در نرم افزار&lt;br /&gt;و پردازش دادها ی مکانی و غیر مکانی در AHP انجام گرفت. درنهایت با استفاده از روش&lt;br /&gt;نقشه ی مکان های مناسب، متوسط و نامناسب برای احداث پادگان ،Arc GIS محیط نرم افزار&lt;br /&gt;ترسیم شد. نتایج نشان می دهد که شرایط مناسب مکان گزینی در نیمه ی شمالی منطقه ی مورد&lt;br /&gt;مطالعه، مساحت بیشتری را نسبت به نیمه ی جنوبی منطقه شامل می شود که دربرگیرنده ی&lt;br /&gt;قسمت هایی زیادی از تبریز، اسکو و شبستر است. همچنین قسم تهای کمتری از بناب، ملکان،&lt;br /&gt;آذرشهر و عج بشیر از شرایط مناسب برخوردارند. منطقه ی مراغه و قسم ت ها ی کمی از&lt;br /&gt;آذرشهر، اسکو و بناب، شرایط متوسطی برای مکان گزینی دارند.</OtherAbstract>
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