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DESC0023784

Project Grant

Overview

Grant Description
Next generation microlayer annular co-extrusion.
Funding Goals
NEXT GENERATION MICROLAYER ANNULAR CO-EXTRUSION
Place of Performance
West Warwick, Rhode Island 02893-3612 United States
Geographic Scope
Single Zip Code
Analysis Notes
Amendment Since initial award the End Date has been extended from 04/09/24 to 09/09/25 and the total obligations have increased 555% from $205,862 to $1,348,318.
Guill Tool & Engineering was awarded Project Grant DESC0023784 worth $1,348,318 from the Office of Science in July 2023 with work to be completed primarily in West Warwick Rhode Island United States. The grant has a duration of 2 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
Next Generation Microlayer Annular Co-Extrusion
Abstract
Annular extruded plastics are in everything from fuel lines, hoses, pipes, and wires to catheters, medical tubing, and stents and makes up about ? of the $200B extruded plastics market. Extrusion manufacturing is a major processor of the $600B raw plastics industry, which produces 380 million metric tons of material each year. The production of these materials accounts for 4% of oil consumption and 3% of energy consumption world-wide. Extrusion manufacturing is widely used because it is a highly scalable process, where up to 60% of costs can be directly attributed to material usage. This means that just the slightest improvements in the extrusion manufacturing process can have incredibly scalable and widespread impacts on energy consumption, oil usage, material consumption, and end-products worldwide. Next generation annular microlayer extrusion processes can enable higher-performing materials and end-products that can drive down material and energy usage across the extrusion industry. The Phase I project is estimated to have a savings of over 550,000 metric tons of material in the first 10 years of commercialization. Microlayered annular co-extruded products can revolutionize their performance and form factor resulting in lower energy and material usage while enabling higher-performing products. Annular extruded products remain mostly simple one-to-five-layer constructions due to limitations in manufacturing. Film and sheet extrusions utilize microlayer coextrusion to create 10-to-1000-layer constructions which enables improvements to strength, fracture toughness, conductivity, barrier properties, optical properties, and more of extruded end-products. The Phase I study will develop an annular microlayer coextrusion process that can yield 20 layers, a 233%+ improvement over the approximately 6-layer limit industry can do today and allow for improved end-products compared to what existing current annular co--extrusion technology can produce. Microlayer co-extrusion could lead to a 20%+ reduction in material usage when applied to annular extruded end-products. An extrusion die will be designed and manufactured that is capable of creating the necessary product geometries to demonstrate this foundational technology. Trials with various plastic materials will be run to create samples which will be analyzed to ensure commercial suitability of the process. A 20-layer annular coextrusion process can enable improved barrier properties in fuel lines, and in particular hydrogen fuel lines, for which significant demand has been seen in industry today and is a potential first application to be explored in a Phase II study. This would be the first step in bringing microlayered material benefits to annular extruded materials that can result in improved product performance, and material and energy savings for end-product applications across the extrusion industry. This is a foundational technology with a widespread range of uses and industries.
Topic Code
C56-20c
Solicitation Number
DE-FOA-0002903

Status
(Complete)

Last Modified 9/24/24

Period of Performance
7/10/23
Start Date
9/9/25
End Date
100% 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 DESC0023784

Transaction History

Modifications to DESC0023784

Additional Detail

Award ID FAIN
DESC0023784
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
NVPEBL51CSF8
Awardee CAGE
29030
Performance District
RI-02
Senators
Sheldon Whitehouse
John Reed

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) $205,862 100%
Modified: 9/24/24