• Title/Summary/Keyword: Total Capital Cost

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인공위성 영상레이더를 이용한 멕시코시티 시계열 지반침하 관측 (Monitoring of a Time-series of Land Subsidence in Mexico City Using Space-based Synthetic Aperture Radar Observations)

  • 주정헌;홍상훈
    • 대한원격탐사학회지
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    • 제37권6_1호
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    • pp.1657-1667
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    • 2021
  • 지반침하는 인위적인 인간 활동 또는 자연적 현상에 의해 지표면이 가라앉는 현상이다. 멕시코시티는 전세계에서 가장 심각한 지반침하가 발생하는 지역 중 하나로 평가받고 있다. 멕시코시티 지반침하의 원인은 과도한 지하수 채취로서 해당 지역 전체의 물 사용량의 약 70%를 지하수가 차지하고 있다. 범 지구 위성 항법 시스템(Global Navigation Satellite System, GNSS) 또는 수준측량과 같은 전통적인 현장 관측 방법은 지반침하를 정확하게 측정하기 위해 선호되어 왔다. 하지만 GNSS 관측은 매우 높은 시간해상도를 가진 정확한 지표 변위량을 측정할 수 있음에도 불구하고, 넓은 지역에 대한 부분적인 관측 정보를 제공하고 많은 시간과 비용이 요구되는 한계점이 존재한다. 그러나, 인공위성 영상레이더(Synthetic Aperture Radar, SAR)는 주야 조건과 기상상태에 관계없이 높은 공간 해상도의 지표변화 정보를 mm에서 cm 크기의 정밀도로 비교적 낮은 비용으로 관측할 수 있다는 점에서 효과적인 방법으로 제시되고 있다. 본 연구에서는 2007년 2월 11일에서 2011년 2월 22일까지 획득된 ALOS PALSAR L-band 영상레이더를 이용하여 멕시코시티의 지반 침하 시계열을 추정하였다. 본 연구에서는 대표적인 시계열 분석 방법인 고정 산란체 위상간섭기법(persistent scatterer interferometry, PSI)과 small baseline subset (SBAS)을 적용하여 지표 변위의 시계열 결과를 획득하였으며 대기 효과 및 지형 오차를 제거하였다. PSI 및 SBAS 기법을 이용한 분석 결과 최대 지반침하 속도는 각각 -29.5 cm/year, -27.0 cm/year로 나타났다. 또한 연구지역을 지질 공학적 특성에 따라 세 가지 구역으로 분류하여 각 분류에서의 지반 침하속도를 비교한 결과, 단단한 기반암으로 구성된 지역에 비해 압축률이 큰 호수성 퇴적물로 구성된 지역에서 침하가 크게 발생하였다.

일본 어류 양식업의 발전과정과 산지교체에 관한 연구 : 참돔양식업을 사례로 (A study on Development Process of Fish Aquaculture in Japan - Case by Seabream Aquaculture -)

  • 송정헌
    • 수산경영론집
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    • 제34권2호
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    • pp.75-90
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    • 2003
  • When we think of fundamental problems of the aquaculture industry, there are several strict conditions, and consequently the aquaculture industry is forced to change. Fish aquaculture has a structural supply surplus in production, aggravation of fishing grounds, stagnant low price due to recent recession, and drastic change of distribution circumstances. It is requested for us to initiate discussion on such issue as “how fish aquaculture establishes its status in the coastal fishery\ulcorner, will fish aquaculture grow in the future\ulcorner, and if so “how it will be restructured\ulcorner” The above issues can be observed in the mariculture of yellow tail, sea scallop and eel. But there have not been studied concerning seabream even though the production is over 30% of the total production of fish aquaculture in resent and it occupied an important status in the fish aquaculture. The objectives of this study is to forecast the future movement of sea bream aquaculture. The first goal of the study is to contribute to managerial and economic studies on the aquaculture industry. The second goal is to identify the factors influencing the competition between production areas and to identify the mechanisms involved. This study will examine the competitive power in individual producing area, its behavior, and its compulsory factors based on case study. Producing areas will be categorized according to following parameters : distance to market and availability of transportation, natural environment, the time of formation of producing areas (leaderㆍfollower), major production items, scale of business and producing areas, degree of organization in production and sales. As a factor in shaping the production area of sea bream aquaculture, natural conditions especially the water temperature is very important. Sea bream shows more active feeding and faster growth in areas located where the water temperature does not go below 13∼14$^{\circ}C$ during the winter. Also fish aquaculture is constrained by the transporting distance. Aquacultured yellowtail is a mass-produced and a mass-distributed item. It is sold a unit of cage and transported by ship. On the other hand, sea bream is sold in small amount in markets and transported by truck; so, the transportation cost is higher than yellow tail. Aquacultured sea bream has different product characteristics due to transport distance. We need to study live fish and fresh fish markets separately. Live fish was the original product form of aquacultured sea bream. Transportation of live fish has more constraints than the transportation of fresh fish. Death rate and distance are highly correlated. In addition, loading capacity of live fish is less than fresh fish. In the case of a 10 ton truck, live fish can only be loaded up to 1.5 tons. But, fresh fish which can be placed in a box can be loaded up to 5 to 6 tons. Because of this characteristics, live fish requires closer location to consumption area than fresh fish. In the consumption markets, the size of fresh fish is mainly 0.8 to 2kg.Live fish usually goes through auction, and quality is graded. Main purchaser comes from many small-sized restaurants, so a relatively small farmer and distributer can sell it. Aquacultured sea bream has been transacted as a fresh fish in GMS ,since 1993 when the price plummeted. Economies of scale works in case of fresh fish. The characteristics of fresh fish is as follows : As a large scale demander, General Merchandise Stores are the main purchasers of sea bream and the size of the fish is around 1.3kg. It mainly goes through negotiation. Aquacultured sea bream has been established as a representative food in General Merchandise Stores. GMS require stable and mass supply, consistent size, and low price. And Distribution of fresh fish is undertook by the large scale distributers, which can satisfy requirements of GMS. The market share in Tokyo Central Wholesale Market shows Mie Pref. is dominating in live fish. And Ehime Pref. is dominating in fresh fish. Ehime Pref. showed remarkable growth in 1990s. At present, the dealings of live fish is decreasing. However, the dealings of fresh fish is increasing in Tokyo Central Wholesale Market. The price of live fish is decreasing more than one of fresh fish. Even though Ehime Pref. has an ideal natural environment for sea bream aquaculture, its entry into sea bream aquaculture was late, because it was located at a further distance to consumers than the competing producing areas. However, Ehime Pref. became the number one producing areas through the sales of fresh fish in the 1990s. The production volume is almost 3 times the production volume of Mie Pref. which is the number two production area. More conversion from yellow tail aquaculture to sea bream aquaculture is taking place in Ehime Pref., because Kagosima Pref. has a better natural environment for yellow tail aquaculture. Transportation is worse than Mie Pref., but this region as a far-flung producing area makes up by increasing the business scale. Ehime Pref. increases the market share for fresh fish by creating demand from GMS. Ehime Pref. has developed market strategies such as a quick return at a small profit, a stable and mass supply and standardization in size. Ehime Pref. increases the market power by the capital of a large scale commission agent. Secondly Mie Pref. is close to markets and composed of small scale farmers. Mie Pref. switched to sea bream aquaculture early, because of the price decrease in aquacultured yellou tail and natural environmental problems. Mie Pref. had not changed until 1993 when the price of the sea bream plummeted. Because it had better natural environment and transportation. Mie Pref. has a suitable water temperature range required for sea bream aquaculture. However, the price of live sea bream continued to decline due to excessive production and economic recession. As a consequence, small scale farmers are faced with a market price below the average production cost in 1993. In such kind of situation, the small-sized and inefficient manager in Mie Pref. was obliged to withdraw from sea bream aquaculture. Kumamoto Pref. is located further from market sites and has an unsuitable nature environmental condition required for sea bream aquaculture. Although Kumamoto Pref. is trying to convert to the puffer fish aquaculture which requires different rearing techniques, aquaculture technique for puffer fish is not established yet.

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