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Vehicle trips presently account for approximately 50% of San Francisco’s greenhouse gas emissions (San Francisco County Transportation Authority, 2008). City and county officials have developed aggressive strategies for the future of passenger transportation in the metropolitan area, and are determined to move away from a “business as usual” future. This

Vehicle trips presently account for approximately 50% of San Francisco’s greenhouse gas emissions (San Francisco County Transportation Authority, 2008). City and county officials have developed aggressive strategies for the future of passenger transportation in the metropolitan area, and are determined to move away from a “business as usual” future. This project starts with current-state source data from a life-cycle comparison of urban transportation systems (Chester, Horvath, & Madanat, 2010), and carries the inventoried emissions and energy usage through by way of published future scenarios for San Francisco.

From the extrapolated calculations of future emissions/energy, the implied mix of transportation modes can be backed out of the numbers. Five scenarios are evaluated, from “business as usual” through very ambitious “healthy environment” goals. The results show that when planners and policymakers craft specific goals or strategies for a location or government, those targets, even if met, are unlikely to result in the intended physical outcomes. City and state governments would be wise to support broad strategy goals (like 20% GHG reduction) with prioritized specifics that can inform real projects leading to the goals (for instance, add 5 miles of bike path per year through 2020, or remove 5 parking garages and replace them with transit depots). While these results should not be used as predictions or forecasts, they can inform the crafters of future transportation policy as an opportunity for improvement or a cautionary tale.

Created2012-05
Description

This report is the consolidated work of an interdisciplinary course project in CEE494/598, CON598, and SOS598, Urban Infrastructure Anatomy and Sustainable Development. In Fall 2012, the course at Arizona State University used sustainability research frameworks and life-cycle assessment methods to evaluate the comprehensive benefits and costs when transit-oriented development is

This report is the consolidated work of an interdisciplinary course project in CEE494/598, CON598, and SOS598, Urban Infrastructure Anatomy and Sustainable Development. In Fall 2012, the course at Arizona State University used sustainability research frameworks and life-cycle assessment methods to evaluate the comprehensive benefits and costs when transit-oriented development is infilled along the proposed light rail transit line expansion. In each case, and in every variation of possible future scenarios, there were distinct life-cycle benefits from both developing in more dense urban structures and reducing automobile travel in the process.

Results from the report are superseded by our publication in Environmental Science and Technology.

Created2012-12
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Description

Sustainable mobility policy for long-distance transportation services should consider emerging automobiles and aircraft as well as infrastructure and supply chain life-cycle effects in the assessment of new high-speed rail systems. Using the California corridor, future automobiles, high-speed rail and aircraft long-distance travel are evaluated, considering emerging fuel-efficient vehicles, new train

Sustainable mobility policy for long-distance transportation services should consider emerging automobiles and aircraft as well as infrastructure and supply chain life-cycle effects in the assessment of new high-speed rail systems. Using the California corridor, future automobiles, high-speed rail and aircraft long-distance travel are evaluated, considering emerging fuel-efficient vehicles, new train designs and the possibility that the region will meet renewable electricity goals. An attributional per passenger-kilometer-traveled life-cycle inventory is first developed including vehicle, infrastructure and energy production components. A consequential life-cycle impact assessment is then established to evaluate existing infrastructure expansion against the construction of a new high-speed rail system. The results show that when using the life-cycle assessment framework, greenhouse gas footprints increase significantly and human health and environmental damage potentials may be dominated by indirect and supply chain components. The environmental payback is most sensitive to the number of automobile trips shifted to high-speed rail, and for greenhouse gases is likely to occur in 20–30 years. A high-speed rail system that is deployed with state-of-the-art trains, electricity that has met renewable goals, and in a configuration that endorses high ridership will provide significant environmental benefits over existing modes. Opportunities exist for reducing the long-distance transportation footprint by incentivizing large automobile trip shifts, meeting clean electricity goals and reducing material production effects.

Created2012-03-16
Description

Invited paper presented at the Workshop on Aspects of Social and Socio-Environmental Dynamics, Arizona State University, January 2007.

ContributorsSarjoughian, Hessam S. (Author) / Barton, C. Michael (Author)
Created2007
Description
Recent trends show that consumers are starting to prioritize sustainability when they go out to eat now more than ever. Tarbell's, a family-owned restaurant based in Phoenix, Arizona, aims to become a leader in sustainable food service but requires additional expertise in prioritizing and showcasing their sustainability efforts. Founded by

Recent trends show that consumers are starting to prioritize sustainability when they go out to eat now more than ever. Tarbell's, a family-owned restaurant based in Phoenix, Arizona, aims to become a leader in sustainable food service but requires additional expertise in prioritizing and showcasing their sustainability efforts. Founded by Mark Tarbell in 1994, Tarbell’s portfolio includes the main restaurant- Tarbell’s, The Wine Store and Tavern, their catering business, and The Tavern at Phoenix Sky Harbor Airport., Tarbell’s has partnered with the Tarbellas, a group of Master of Sustainability Solutions (MSUS) students at Arizona State University (ASU), to pursue larger impact goals, including conducting a materiality assessment and drafting a sustainability plan of action. To begin the project process, the Tarbellas completed a landscape analysis. We researched the following categories: restaurant vendor practices; small, international restaurants; small, national restaurants; corporate food retailers; and restaurant-related sustainability certifications. This analysis informed our other research methods, including a best practices assessment and TOWS analysis, ultimately leading us to develop four initial priorities that informed our next steps: 1) hire a staff member to manage all sustainability initiatives and reporting, 2) focus on sustainable procurement across the restaurant, 3) complete the Food Made Good online audit, and 4) work towards and obtain Green Restaurant Association Certification. With support from Tarbell’s, we developed a job description for a Sustainability Program Manager and a Sustainable Purchasing Policy. We created both by researching existing job postings and purchasing policies, and then adapted them to fit Tarbell’s needs and goals. Tarbell’s also completed the Food Made Good online audit. Finally, the Tarbellas completed a materiality assessment. In order to do this, we developed an internal stakeholder survey and collected data on Tarbell’s annual spend from 2022. We plotted the results on a materiality matrix and used the results to inform how to prioritize the next steps. This prioritization will help Tarbell’s inform their sustainability strategy in the future. Going forward, we recommend the following to Tarbell’s: 1) Hire a Sustainability Program Manager, 2) Utilize the Sustainable Purchasing Policy (SPP) we developed, 3) Obtain Green Restaurant Association Certification, and 4) routinely revisit their material impacts. Our report takes the format of a sustainability plan of action, enabling Tarbell’s to continue pursuing sustainability while being a leading example and guide for other small, independent restaurants on their paths to pursuing sustainability.
ContributorsAntidormi, Rachel (Author) / Martin, Azita (Author) / Ouellette, Kelsey (Author) / Queen, Sarah (Author)
Created2023-04-26
Description

The ultimate goal of this LCA is to give Arizona State University specific advice on possible changes in lighting systems that will reduce environmental impacts and support ASU’s sustainability efforts. The aim is to assess the potential for a decrease in specific environmental impacts (CO2 emissions and energy use) and

The ultimate goal of this LCA is to give Arizona State University specific advice on possible changes in lighting systems that will reduce environmental impacts and support ASU’s sustainability efforts. The aim is to assess the potential for a decrease in specific environmental impacts (CO2 emissions and energy use) and economic impact (cost) from changing to a different type of lighting in a prototypical classroom in Wrigley Hall. The scope of this assessment is to analyze the impacts of T8 lamps lasting 50,000 hours. Thus, a functional unit was defined as 50,000 hours of use, maintaining roughly 825 lumens. To put this in perspective, 50,000 hours is equivalent to 8 hours of use per day, 365 days per year, for approximately 17.1 years.

Created2014-06-13
Description

Building energy assessment often focuses on the use of electricity and natural gas during the use phase of a structure while ignoring the energy investments necessary to construct the facility. This research develops a methodology for quantifying the “embedded” energy and greenhouse gases (GHG) in the building infrastructure of an

Building energy assessment often focuses on the use of electricity and natural gas during the use phase of a structure while ignoring the energy investments necessary to construct the facility. This research develops a methodology for quantifying the “embedded” energy and greenhouse gases (GHG) in the building infrastructure of an entire metropolitan region. “Embedded” energy and GHGs refer to the energy necessary to manufacture materials and construct the infrastructure. Using these methods, a case study is developed for Los Angeles County.