德国HYDRO-BIOS公司 多通道沉降物捕集器

名称:德国HYDRO-BIOS公司 多通道沉降物捕集器

供应商:青岛水德仪器有限公司

价格:面议

最小起订量:1/台

地址:山东省青岛市城阳区中城路345-2号海都商务中心9层

手机:18006489550

联系人:张国豪 (请说在中科商务网上看到)

产品编号:140887591

更新时间:2021-03-28

发布者IP:112.255.0.251

详细说明

  类别: 浅水沉降物捕集器

  型号: MST

  关键字: 多通道沉降物捕集器,近海沉降物捕集器,沉降物捕集器

  供应商: 青岛水德仪器有限公司

  产品简介:

  多通道沉降物捕集器的设计主要用于对相对垂直颗粒流较大的湖泊、大陆架和水栖环境的沉积物的自动采集。

  德国HYDRO-BIOS公司——多通道沉积物捕集器

  Multi Sediment Trap

  多通道沉降物捕集器的设计主要用于对相对垂直颗粒流较大的湖泊、大陆架和水栖环境的沉积物的自动采集。在北极、南极、热带、亚热带等

  环境中,经过无数次的长期野外操作,已经证明了它的可靠性。这款仪器不需要很重的固定线缆,它在较小的船上也可以很容易地安置和收回。多

  通道沉降物捕集器的控制装置可以执行为期一年多的时间依赖性工作。为了防止捕集到的沉降物从收集筒的上部被冲走,每个收集器在开口处都安

  装一个可拆卸的塑料网格,捕集器内部完全不含金属。当多通道沉降物捕集器的采集瓶不工作时,它们与周围环境是隔离的。在布放和回收操作期

  间,收集筒底部是开放的,允许水流自动流过收集筒腔体。

  整个系统由3节长时间锂电池供电。根据不同的需求,不同多通道沉降物捕集器的收集瓶数量可以是6、12、24:豪华型多通道沉降物捕集器

  通过PC机上的一个HYDRO-BIOS软件进行预编程,允许用户实时(年、月、日、时、分)对每个收集瓶的采样间隔单独预先设定,从1分钟至8760

  小时。豪华型采样器可通过增加各种参数的不同传感器进行升级,数据存储器容量可达4M。

  豪华型多通道沉降物捕集器规格:

  框架材质:钛合金

  采样间隔设定:通过带OceanLab软件的电脑编程

  开口面积:0.015平方米

  沉降筒长:560mm

  圆锥筒夹角:40度

  沉降筒直径与长度比例:1:4

  最大操作深度:3000/6000/11000米

  豪华型多通道沉降物捕集器订购指南:

    货号类型尺寸高度空气中重量水中重量
444 1016瓶直径320mm1200mm12kg5kg
444 12112瓶直径520mm1040mm25kg10kg
444 14124瓶800×800mm1000mm45kg20kg

  444 150    备用收集瓶,容积250ml,24个/套

  444 160    备用锂电池,3节/套

  德国HYDRO-BIOS公司多通道沉降物捕集器国内应用案例

  1、水产养殖领域研究:

  MST12多通道沉降物捕集器和Multi Limnos自动水样采集器共同参与了山东某大型水产养殖企业海参养殖区水体和沉降物之间营养物质循环的研

  究,获得了极其珍贵的数据,为今后饵料的投放建立了非常科学的数学模型,大大降低了企业的养殖成本。

  2、海湾沉积动力学研究:

  德国HYDRO-BIOS公司MST24多通道沉降物捕集器参与了国家海洋局罗源湾沉积动力学科研项目。罗源湾位于福建省沿海东北部,闽江口以北约

  50公里,是全国少有的天然深水港湾,可全天候靠泊30万吨轮船。罗源湾具备建造东方大港的条件,从“十一五”期间开始,罗源湾成为福建省重点建

  设的港口。罗源湾在行政区划上隶属福州市,北岸属罗源县,南岸属连江县。根据海峡西岸经济区规划,列为福州港的深水外港。罗源湾在福建省、

  乃至中国港口的发展中有着非常重要的地位,对它的研究也势在必行。科研人员将MST24长期坐底式布放在罗源湾,成功捕集到了大量极具代表性的

  自然沉降物,为罗源湾沉积动力学的研究提供了真实可靠的数据。

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  3.Bloesch Jürg,1996.Towards a new generation of sediment traps and a better measurement/understanding of settling particle flux in lakes and oceans: A hydrodynamical protocol.Aquatic Sciences.58(4):283-296.

  4.A. Accornero, A. Bergamasco, A. Monaco, S. Tucci,1999.Particle Fluxes at the Edge of the Ross Ice Shelf: the Role of Physical Forcing.Oceanography of the Ross Sea Antarctica.177-195.

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  6.A. ACCORNERO, C. MANNO, K.R. ARRIGO, A. MARTINI and S. TUCCI,2003.The vertical flux of particulate matter in the polynya of Terra Nova Bay. Part I. Chemical constituents.Antarctic Science.15 (1): 119–132.

  7.Alessandra Accornero, Marcia M. Gowing,2003.ANNUAL SEDIMENTATION PATTERN OF ZOOPLANKTON FECAL PELLETSIN THE SOUTHERN ROSS SEA: WHAT FOOD WEBS AND PROCESSESDOES THE RECORD IMPLY?.BIOGEOCHEMISTRY OF THE ROSS SEA ANTARCTIC RESEARCH SERIES.78:261-278.

  8.P. Moreira-Turcq, J.M. Jouanneau, B. Turcq, P. Seylerd, O. Weber, J.L. Guyot,2004.Carbon sedimentation at Lago Grande de Curuai, a floodplain lake in the low Amazon region: insights into sedimentation rates.Palaeogeography, Palaeoclimatology, Palaeoecology.214(1–2):27–40.

  9.V. Ramaswamy, M.M. Sarin, R. Rengarajan,2005.Enhanced export of carbon by salps during the northeast monsoon period in the northern Arabian Sea.Deep Sea Research Part II: Topical Studies in Oceanography.52(14-15):1922–1929.

  10.J. C. Colombo, N. Cappelletti, J. Lasci, M. C. Migoya, E. Speranza, and C. N. Skorupka,2006.Sources, Vertical Fluxes, and Equivalent Toxicity of Aromatic Hydrocarbons in Coastal Sediments of the Río de la Plata Estuary, Argentina.Environmental Science & Technology.40(3), 734–740.

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  13.Jan Michels, Gerhard S. Dieckmann, David N. Thomas, Sigrid B. Schnack-Schiel, Andreas Krell, Philipp Assmy, Hilary Kennedy, Stathis Papadimitriou, Boris Cisewski,2008.Short-term biogenic particle flux under late spring sea ice in the western Weddell Sea.Deep Sea Research Part II: Topical Studies in Oceanography.55(8-9):1024–1039.

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