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Assessing low-carbon fuel technology innovation through a Technology Innovation System approach.

机译:通过技术创新系统方法评估低碳燃料技术创新。

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摘要

Addressing anthropogenic climate change will require a variety of novel technology solutions. Where will these solutions come from, and how can we foster their development? To answer these questions, it is important to delve into the process of technology innovation. We need to better understand how technological transitions happen, and we need to figure out how innovation can be directed.;While the existing work on technology innovation is abundant, the innovation process largely remains a "black box," shrouded in mystery. Energy models that incorporate innovation concepts, such as experience curves, fail to consider the fundamental processes that drive innovation. More nuanced approaches to innovation, however, are largely qualitative and difficult to model or to employ. This makes it hard to draw objective conclusions, or to make predictions about technologies moving forward.;This dissertation research establishes a set of methodological approaches to better break in to this innovation black box, aiding in the quantification of the more qualitative approaches to innovation. These methods are applied to better examine low-carbon technology innovation in transportation. Specifically, this dissertation looks at biofuel innovation and the more recent diffusion of electric vehicles.;Patent trends, one traditional approach for quantifying innovations, are used to provide a point of comparison for the novel methodologies employed. This research shows that the innovation narrative and conclusions that can be drawn from patent data are largely dependent on how patents are classified.;Employing statistical models in conjunction with computational linguistics and machine-learning algorithms, it is possible to classify large bodies of text. This methodology is applied to a large selection of patents to better classify biofuel technologies. Additionally, this method is applied to a large repository of textual media, such as newspaper articles and trade journals, to select for specific technologies, and to classify articles by the type of information they convey. This Technology Innovation System (TIS) database is believed to adequately proxy the flow of information over time, due to the large number of documents collected.;The innovation trends captured in the TIS database align well with the biofuel narrative established in literature. There is also good alignment between patent data classified through this methodology and the TIS database.;Through use of the TIS database in conjunction with deployment data and policy data, this dissertation demonstrates several applications for assessing technology innovation. Results can be used to provide suggestions, supported by the data, which may foster improved innovation outcomes for low-carbon transportation technologies.
机译:解决人为气候变化将需要各种新颖的技术解决方案。这些解决方案将来自何处,我们如何促进其发展?要回答这些问题,深入研究技术创新的过程很重要。我们需要更好地了解技术转变是如何发生的,我们需要弄清楚如何指导创新。虽然现有的技术创新工作非常丰富,但是创新过程在很大程度上仍然是一个“黑匣子”,笼罩在神秘之中。包含创新概念(例如经验曲线)的能源模型无法考虑推动创新的基本过程。但是,更细微的创新方法在本质上是定性的,很难建模或采用。这使得很难得出客观的结论,也很难对技术的发展做出预测。;本论文的研究建立了一套方法论方法,以更好地打入这一创新黑匣子,帮助量化更定性的创新方法。这些方法适用于更好地研究交通领域的低碳技术创新。具体而言,本文着眼于生物燃料创新和电动汽车的最新发展。专利趋势是一种量化创新的传统方法,用于为所采用的新颖方法提供比较点。这项研究表明,可以从专利数据中得出的创新叙事和结论在很大程度上取决于专利的分类方式;;结合统计模型,计算语言学和机器学习算法,可以对大型文本进行分类。这种方法论适用于众多专利,以更好地对生物燃料技术进行分类。此外,此方法应用于文本媒体的大型存储库,例如报纸文章和行业期刊,以选择特定技术,并根据它们传达的信息类型对文章进行分类。由于收集了大量的文件,人们相信该技术创新系统(TIS)数据库可以随着时间的推移适当地代理信息流。TIS数据库中捕获的创新趋势与文献中建立的生物燃料叙述非常吻合。通过此方法分类的专利数据与TIS数据库之间也有很好的一致性。;通过将TIS数据库与部署数据和策略数据结合使用,本论文演示了几种评估技术创新的应用。结果可以用来提供建议,并得到数据的支持,这些建议可以促进改善低碳交通技术的创新成果。

著录项

  • 作者

    Kessler, Jeff.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Transportation.;Climate change.;Energy.;Alternative Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 242 p.
  • 总页数 242
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:21

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