---
res:
  bibo_abstract:
  - Low voltage direct current microgrids (DC-MG) provide a solution for increased
    efficiency by the reduction of conversion losses, total reuse of recuperation
    energy and an increased share of local power generation. Especially industrial
    applications ask for high uptimes and a stable voltage supply, which are both
    at stake in a power grid dominated by renewable generation. DC-MGs overcome these
    drawbacks by balancing energy distribution and power demand locally. For the planning
    and design of these grids a systemic approach is needed, due to the fact that
    many components are interacting. The task arises of structuring the knowledge
    available for individual technologies in an overall design framework. For this
    purpose, current state-of-the-art design processes are discussed in this article.
    These processes are mapped into the context of the requirements in an industrial
    environment. The findings are transferred to the design of industrial DC networks.
    Finally, a complete design process for DC-MGs is derived, which is proposed as
    a basis for the development of tools.@eng
  bibo_doi: 10.1109/CEECT53198.2021.9672633
  dct_date: 2022^xs_gYear
  dct_isPartOf:
  - http://id.crossref.org/issn/978-1-6654-4042-4
  dct_language: eng
  dct_publisher: IEEE@
  dct_subject:
  - Renewable energy sources
  - Power demand
  - Process control
  - Voltage
  - Robustness
  - Planning
  - Stakeholders
  dct_title: Design Framework for Multiple Infeed DC-Microgrids in Industrial Applications@
...
