Area of research
Electrical and Electronic Engineering · Environmental Engineering
Research interest
Research focused on Modular design and Converters, with related work in Fault (geology), Navy, Systems engineering. Notable publications include 'Size and Weight Computation of MVDC Power Equipment in Architectures Developed Using the Smart Ship Systems Design Environment', 'Approach to Scalable Model Development for Navy Shipboard Compatible Modular Multilevel Converters', and 'Preliminary Investigation on Economic Aspects of Superconducting Magnetic Energy Storage (SMES) Systems and High-Temperature Superconducting (HTS) Transformers'.
Continued Development of an Integrated Capstone Design Curriculum
Exploration of Power Density Based Scaling Laws for Naval Shipboard Compatible Modular Multilevel Converters
Preliminary Investigation on Economic Aspects of Superconducting Magnetic Energy Storage (SMES) Systems and High-Temperature Superconducting (HTS) Transformers
Set-based design for naval shipboard power systems using pertinent metrics from product development tools
Investigation of product development tools to aid naval shipboard power systems design
Size and Weight Computation of MVDC Power Equipment in Architectures Developed Using the Smart Ship Systems Design Environment
Approach to Scalable Model Development for Navy Shipboard Compatible Modular Multilevel Converters
A Coordinated Design Course Sequence to Integrate Mechanical Engineering Capstone Design Experience
Primary and backup protection for fault current limited MVDC shipboard power systems
Impacts and interactions of voltage regulators on distribution networks with high PV penetration
PHIL implementation of a MVDC fault management test bed for ship power systems based on megawatt-scale modular multilevel converters
Approach to develop ship design evaluation rule-base