SCC-CIVIC-PG Track A: Ocean Model Infrastructure For A Resilient Coastal City
SCC-CIVIC-PG Track A: Ocean Model Infrastructure For A Resilient Coastal City
批准号:
2228535
负责人:
Curtis Bohlen
金额:
$4.64万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
已结题
起止时间:
2022-10-01 至 2023-03-31
中文摘要
气候变化给沿海城市和港口带来了重大挑战。在接下来的几十年里,沿海城市将应对海平面上升、风暴强度增加、海水变暖、降水变化、水质威胁以及沿海海洋生态系统的变化。对于像缅因州波特兰这样被选为试点的工业化城市来说,这是对现代化港口复杂的社会经济结构进行管理的补充。这项研究提供了一种新的方法,涉及运用沿海科学、高分辨率建模和直接社区参与的方法,使波特兰等沿海城市受益,以提高社区的复原力。它涉及一种新颖、全面的沿海水动力模型的工作,该模型综合了空气和水温、盐度、风、海流、海岸线和海底特征以及其他相关参数的数据。然而,为了让沿海城市受益,模型必须与社区需求联系起来并反映出来,因为获得数据是不够的。明智的决策和社区的复原力取决于空间和时间尺度上的信息,这些信息对决策者来说是重要的,以易于消化、准确、透明、可获取和有用的方式。缅因州的波特兰是一个沿海小城市,拥有充满活力的工作海滨和复杂的港口运营。由于缅因州的规模相对较小,与巴尔的摩或洛杉矶、波特兰等其他港口相比,缅因州是开发可扩展方法将海洋科学纳入地方治理的理想试验场。这项工作的目标将是建立和验证波特兰港的城市海洋模型,从开始到城市基础设施和社区需求。这项工作的更广泛影响包括以有用的方式向决策者、土地利用规划者和社区提供关键信息,并提供一套综合方案,从中可以考虑港口和沿海海域的当前和未来情况。这样的公用事业将帮助沿海城市评估风险,为暴风雨和其他危险做好准备。该模型还可用于为港口作业和应急管理提供信息,支持溢油响应,并促进沿海水质管理。该项目确定了三个最初的沿海管理挑战,通过水动力模型的洞察可以解决一些重要的公民关切:洪水风险和风暴潮的补救和适应;水质监测和管理;港口作业,特别是疏浚和沉积物管理。在这个第一阶段的项目中,大学研究人员将与市政领导、滨水企业和高危社区合作,定义信息需求并制定建模战略,以应对社区挑战。在第二阶段后续试验中,该项目将开发和验证波特兰港的运行水动力模型(基于现有的较低分辨率模型),并进行额外的模型运行(“情景”),以回答我们的民间合作伙伴提出的问题。该项目与终端用户密切合作,将创建新的、新的、复杂的数据产品,如仪表板和可视化,这些产品对用户友好,易于使用,以提供来自城市海洋模型的见解,以支持当地决策。适用于该项目的方法有可能扩展和转化到其他拥有港口作业的沿海城市。该项目是对公民创新挑战计划的回应-轨道A。生活在不断变化的气候:围绕适应、恢复和缓解的灾前行动-是NSF、国土安全部和能源部的合作。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Climate change poses significant challenges for coastal cities and ports. In coming decades, coastal cities will contend with sea-level rise, increasing storm intensity, warming waters, changes in precipitation, threats to water quality, and shifts in coastal marine ecosystem. For industrialized cities, like Portland, Maine, which is selected as a pilot location, this is in addition to managing the complex socio-economic structure of a modern port. This research provides a novel approach involving methods for deploying coastal science, high-resolution modeling, and direct community engagement to benefit coastal cities like Portland in order to improve community resilience. It involves work on a novel, comprehensive, coastal hydrodynamic model that integrates data on air and water temperature, salinity, wind, currents, features of the coastline and seafloor, and other relevant parameters. To benefit coastal cities, however, models must link to and reflect community needs because access to data is not enough. Informed decisions and community resilience depend on information at spatial and temporal scales that matter to decision-makers in ways that are easily digestible, accurate, transparent, accessible, and useful. Portland, Maine is a small coastal city, with a vibrant working waterfront and complex port operation. Because of its relatively small scale, compared to other ports like Baltimore or Los Angeles, Portland, Maine is an ideal testing ground for developing scalable methods for integrating ocean science into local governance. Goals of the work will be to build and validate an urban ocean model of Portland Harbor coupled from the start to urban infrastructure and community needs. Broader impacts of the work include providing critical information in a useful manner to decision makers, land-use planners, and the community with a comprehensive package from which current and future conditions in the port and coastal ocean area can be considered. Such a utility will help coastal cities assess risks and prepare for storms and other hazards. The model also can also be used to inform port operations and emergency management, to support oil spill response, and to facilitate coastal water quality management. The project has identified three initial coastal management challenges where insight from hydrodynamic models can address a number of important civic concerns: flood risk and storm surge remediation and adaptation; water quality monitoring and management; and port operations, especially dredging and sediment management. In this Phase 1 project, university researchers will work with municipal leaders, waterfront businesses, and at-risk communities to define information needs and develop modeling strategies to address community challenges. In the Phase 2 follow-on pilot, the project will develop and validate an operational hydrodynamic model of Portland Harbor (based on lower-resolution models that already exist) and conduct additional model runs (“scenarios”) needed to answer questions identified by our civic partners. Working closely with end-users, the project will create novel, new, sophisticated data products, like dashboards and visualizations, that are user-friendly and easy to use to deliver insights from the urban ocean model to support local decisions. The approach applied for this project has the potential for scaling and translation to other coastal cities with port operations.This project is in response to the Civic Innovation Challenge program—Track A. Living in a changing climate: pre-disaster action around adaptation, resilience, and mitigation—and is a collaboration between NSF, the Department of Homeland Security, and the Department of Energy.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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