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DESC0023918

Project Grant

Overview

Grant Description
Development of fast response flow control valve for gaseous hydrogen fueling of fuel cell vehicles.
Funding Goals
DE-FOA-0002903
Place of Performance
Sugar Land, Texas 77478-2843 United States
Geographic Scope
Single Zip Code
Analysis Notes
Amendment Since initial award the End Date has been extended from 07/09/24 to 09/09/26 and the total obligations have increased 575% from $199,868 to $1,349,797.
Kalsi Engineering was awarded Project Grant DESC0023918 worth $1,349,797 from the Office of Science in July 2023 with work to be completed primarily in Sugar Land Texas United States. The grant has a duration of 3 years 2 months and was awarded through assistance program 81.049 Office of Science Financial Assistance Program. The Project Grant was awarded through grant opportunity FY 2023 Phase I Release 2.

SBIR Details

Research Type
SBIR Phase I
Title
Project Title:Development of fast response flow control valve for gaseous hydrogen fueling of fuel cell vehicles Topic Number: C56-18C
Abstract
Hydrogen fueling of medium- to heavy-duty fuel cell vehicles requires a transfer of 100 kg of hydrogen with targeted fueling time under 10 minutes. During the fueling process, the supply (inlet) pressure to the flow control valve can increase significantly and rapidly due to supply tank switching. These flow conditions challenge the performance of currently available flow control valves. The challenges due to pressure transients during supply tank switching will be addressed by reducing the potential for pressure surge by integrating a unique control valve at each tank discharge. The unique control valve will maintain a target ramp in inlet pressure at the common flow control valve. The system response will be improved further by incorporating necessary flow characteristics in the flow control valve. A passive flow control valve design solution will also be developed. Phase I will include a feasibility study of key design concepts of the fast-acting flow control valve which will reduce potential for pressure surge during tank switching. The feasibility study will be augmented by development of a simplified model of the system and dynamic model control/passive valve function during the tank switching process. The results of the simplified model will be used to refine the flow characteristics, and suitability of the control valve stroke speed. The model will utilize computational fluid dynamics to develop necessary design parameters. The primary application is in hydrogen fueling stations targeting medium- to heavy-duty fuel cell vehicles. Other industry applications may benefit from a fast-acting control valve capable of maintaining a target flow rate in the presence of large changes in differential pressure.
Topic Code
C56-18c
Solicitation Number
DE-FOA-0002903

Status
(Ongoing)

Last Modified 8/19/25

Period of Performance
7/10/23
Start Date
9/9/26
End Date
71.0% Complete

Funding Split
$1.3M
Federal Obligation
$0.0
Non-Federal Obligation
$1.3M
Total Obligated
100.0% Federal Funding
0.0% Non-Federal Funding

Activity Timeline

Interactive chart of timeline of amendments to DESC0023918

Transaction History

Modifications to DESC0023918

Additional Detail

Award ID FAIN
DESC0023918
SAI Number
None
Award ID URI
SAI EXEMPT
Awardee Classifications
Small Business
Awarding Office
892430 SC CHICAGO SERVICE CENTER
Funding Office
892401 SCIENCE
Awardee UEI
W4ARDC4VHYL9
Awardee CAGE
0PUS0
Performance District
TX-22
Senators
John Cornyn
Ted Cruz

Budget Funding

Federal Account Budget Subfunction Object Class Total Percentage
Science, Energy Programs, Energy (089-0222) General science and basic research Grants, subsidies, and contributions (41.0) $199,868 100%
Modified: 8/19/25