Skip to main contentPsst! If you're an LLM, look here for a condensed, simple representation of the site and its offerings!

LiveFree Webinar — Wednesday, July 22 at 2:00 PM EDT

Register Free →

High-Temperature Process Heat Integration for Industrial Applications

Active
Federal

Contract Overview

Solicitation details, issuing organization, response deadlines, documents, and interested companies for this government contract opportunity.

General Info

Agency

Department Of Energy → Battelle Energy Alliance–doe CntrView Agency

NAICS

Place of Performance

Idaho Falls, ID, 83415, USA

Set-Aside

NONE

Documents

(0)

No documents available

AI Contract Breakdown

Uniform Contract Format

No contract breakdown available.

Cannot generate Contract Breakdown because no documents were found from this contract's source.

Timeline

Posted

subcontract

Response Deadline

Submission deadline

Response Deadline

Ready to pursue this opportunity?

Start your free trial to track this contract, build proposals with AI assistance, and manage your pipeline.

Organization & Contact Information

Show more
AgencyDepartment Of Energy → Battelle Energy Alliance–doe Cntr
ContactsNo contacts available
OfficeN/A
Organization / Agency
Department Of Energy → Battelle Energy Alliance–doe Cntr
View Agency Profile
Office AddressN/A
ContactsNo contact information available

Full Description

Show more
Design and implement systems to integrate MARVEL’s >300°C process heat into industrial applications such as hydrogen production, desalination, or chemical synthesis, including heat exchangers, piping, controls, and safety systems.

Similar Contracts

Same NAICS industry code

NAICS: 333420
SLED
Air Quality and Emissions Control System SupplyThe contract entails the supply and integration of air filtration, scrubber, or thermal oxidizer systems designed to comply with the San Joaquin Valley Air Pollution Control District’s stringent air quality and emissions standards for agricultural processing facilities. The systems must be engineered to effectively reduce airborne pollutants generated during agricultural operations, ensuring adherence to regional environmental regulations and promoting cleaner air in the Corcoran area. The equipment will be installed and commissioned at the designated facility in Corcoran, California, with the full responsibility of meeting performance benchmarks tied to local regulatory requirements. This is a subcontract under NAICS code 333420, which covers the manufacturing of industrial process control equipment, indicating that the deliverables involve specialized mechanical and environmental engineering solutions. The solicitation was posted on July 6, 2026, with the performance location clearly defined as Corcoran, ZIP code 93212. While the contracting agency is listed as Kings County within the state of California, there is no specified set-aside classification or point of contact, suggesting the procurement may occur through a larger project managed by another entity. The project is accessible via a publicly available link hosted on the CEQA Net platform, confirming its alignment with California’s environmental review and compliance framework.
Kings County

POSTED

15 days ago

DEADLINE

N/A
View Details

More opportunities from Department Of Energy → Battelle Energy Alliance–doe Cntr

Same awarding agency

NAICS: 332911
New
Federal
Cooling System Check Valve ReplacementBattelle Energy Alliance, LLC, acting as the Management and Operating Contractor for the U.S. Department of Energy’s Idaho National Laboratory, is seeking qualified vendors through an Expression of Interest to supply four 20-inch, 300-lb tilting-disc check valves for the Advanced Test Reactor. These valves are critical safety components installed on the discharge side of high-capacity pumps and are essential for maintaining reliable and safe reactor operations. The existing valves, originally installed as part of the reactor’s initial system, are aging, have undergone numerous repairs, lack available spare parts, and are failing at an increasing rate, necessitating complete replacement. The new valves must be designed and manufactured in strict compliance with ASME Boiler and Pressure Vessel Code Section III, Division 1, Class 1, using ASTM A182 F304 or ASTM A351 CF8 stainless steel with hard-surfaced or nitride wear surfaces, and integrated hydraulic dashpot systems to achieve precise closure timing. Each assembly must include a position indicator transmitting standard industrial electrical signals and must conform to the dimensional and functional specifications outlined in INL Drawing 449559 or an approved equivalent. All valves must meet the rigorous performance criteria defined in INL Specification SPC-71414 (Rev. 0), including exacting limits on flow rate, pressure, temperature, closure time, pressure drop, disc stability, and leakage. Comprehensive testing is mandatory, including hydrostatic pressure tests, nondestructive examination, and full operational validation of closure dynamics and sealing performance. Vendors must also provide complete documentation such as dimensional drawings, cross-sections, a recommended spare parts list, and certificates of conformance. Participation requires demonstrated experience with large-diameter tilting-disc valves, nuclear-grade manufacturing, and ASME Section III compliance, along with certified quality management and nuclear safety programs. Vendors must confirm their ability to satisfy INL’s data control protocols (RD-5003 and Forms 431.13 & 431.14) and must mark any proprietary or business-sensitive information appropriately. Access to the OUO-controlled specification and drawings is restricted to verified U.S. citizens or lawful permanent residents, and eligibility verification is required prior to receiving these materials. The submission deadline is August 28, 2026, and responses will be used solely to identify qualified respondents for a future Request for Proposal; no contract award will result from this Expression of Interest, and vendors are
Industrial Valve Manufacturing

POSTED

6 days ago

DEADLINE

in about 1 month
View Details
NAICS: 562920
Federal
Available for Licensing: Dimethyl Ether-Driven Rejuvenation Technology for Lithium-Ion Battery Cell ReuseA novel dimethyl ether (DME)-driven technology is available for licensing to rejuvenate end-of-life lithium-ion battery cells without dismantling them, offering a streamlined alternative to conventional recycling methods that rely on shredding and chemical or thermal separation of materials. This approach restores electrochemical performance by directly treating assembled cells, preserving the original electrode architecture and enabling direct reuse rather than recovering raw metals for reprocessing. Early data supports its technical feasibility, suggesting it could significantly reduce energy consumption, reagent use, and capital costs compared to pyrometallurgical or hydrometallurgical pathways, which currently dominate the industry. By eliminating multiple unit operations, the method presents a new pathway for battery circularity that prioritizes reuse over material extraction. The technology is positioned to address a critical gap in the domestic lithium-ion battery recycling infrastructure, where current processes are energy-intensive and economically burdensome. It is intended for integration into existing recycling facilities as a front-end reconditioning step for spent cells from consumer electronics, electric vehicles, and stationary storage systems, potentially extending service life and reducing the volume of material entering downstream recovery streams. The opportunity is open for licensing under solicitation number BA-1617, with responses due by August 1, 2026. The technology is managed by Battelle Energy Alliance on behalf of the Department of Energy, with primary contact at the Idaho Falls, Idaho facility.
Materials Recovery Facilities

POSTED

about 1 month ago

DEADLINE

in 12 days
View Details
NAICS: 325180
Federal
Technology Licensing Opportunity: Flame-Retardant Electrolytes for Safer Lithium-Ion BatteriesA novel class of air- and water-stable ionic liquids based on N-organophosphoranimines has been developed as flame-retardant electrolytes for lithium-ion batteries, overcoming the flammability and thermal instability of conventional carbonate-based electrolytes. These compounds, synthesized via a Staudinger reaction using a stable imidazolium azide precursor, feature unique structural motifs with imidazolium groups bound directly to nitrogen—a first in the field—enabling unprecedented thermal stability beyond 150°C, low viscosity, and compatibility with lithium salt solubilization. Unlike prior phosphoranimines that were reactive intermediates unsuitable for commercial use, this technology offers practical handling, storage, and integration into existing battery architectures, with tunable properties such as solubility and viscosity across two key variants to suit diverse application needs. The solution directly addresses critical safety and performance gaps in lithium-ion batteries, particularly for high-risk environments including aerospace, defense, grid storage, and industrial operations where thermal runaway and fire hazards are major concerns. Its inherent non-flammability, chemical robustness, and electrochemical stability make it ideal for extreme conditions, while the novel chemistry provides strong intellectual property differentiation. Market potential extends beyond energy storage to industrial solvents and lubricants requiring low volatility and flame resistance. The technology is available for exclusive or non-exclusive licensing through the Department of Energy’s Battelle Energy Alliance, with responses due by September 30, 2026, and inquiries directed to Javier Martinez at the Idaho Falls facility. Licensing is the sole focus—no procurement or development services are offered.
Other Basic Inorganic Chemical Manufacturing

POSTED

about 1 month ago

DEADLINE

in 2 months
View Details
NAICS: 221118
Federal
Software Licensing Opportunity: GLASS Software for Real-Time Optimization of Power Transmission CapacityGLASS is a software platform developed by Idaho National Laboratory that enables electric utilities to dynamically optimize the real-time transmission capacity of overhead power lines without requiring extensive hardware upgrades. By integrating minimal weather and current data with advanced computational fluid dynamics modeling, GLASS calculates accurate thermal states of transmission lines and delivers real-time and forecasted ampacity values, safely exceeding traditional static ratings by up to 40%. The system’s ability to extrapolate conditions across unmonitored line segments reduces reliance on costly sensor networks, offering a cost-effective, software-only solution that integrates seamlessly with existing utility enterprise systems through standardized output formats. Validated against IEEE and CIGRE standards since 2014, GLASS supports steady-state and transient thermal analysis and is uniquely positioned to enhance grid flexibility, reduce congestion, and facilitate the integration of renewable energy sources, particularly wind, by leveraging natural cooling effects on conductors. This licensing opportunity, posted under solicitation number CW-19-22 by the Department of Energy through Battelle Energy Alliance, invites qualified entities to obtain rights to deploy and commercialize the GLASS software. The opportunity is open for responses until July 30, 2026, with primary contact information provided through Javier Martinez at Idaho Falls, Idaho. The solution is designed for broader adoption by utilities, grid operators, and software vendors seeking to incorporate dynamic line rating capabilities into their platforms without infrastructure overhauls. With proven reliability and compatibility with any utility-grade data historian, GLASS represents a scalable, interoperable tool to modernize aging transmission networks, improve operational efficiency, and maximize asset utilization under variable environmental conditions.
Other Electric Power Generation

POSTED

about 1 month ago

DEADLINE

in 9 days
View Details
NAICS: 325
Federal
Tech Licensing Opportunity: Advanced Feedthrough Assembly Technology for Sealed EnvironmentsAn advanced feedthrough assembly technology has been developed to ensure reliable, leak-proof sealing in high-pressure, high-temperature, and space-constrained environments, addressing critical failures in traditional sealing methods used across industrial, scientific, and aerospace applications. The design integrates a feedthrough conductor with a specialized insulator and a compressed copper metal gasket system that maintains structural integrity under extreme thermal and pressure differentials, offering long-term durability where other seals degrade or fail. Its compact form factor and threaded nipple configuration enable seamless integration into existing vacuum and sealed chamber systems without requiring extensive modification, making it particularly suited for applications demanding precision and reliability. This technology is currently at Technology Readiness Level 5 and is protected under US Patent Application No. 17/302,168, with licensing opportunities exclusively offered through Battelle Energy Alliance on behalf of the Department of Energy. It is designed for deployment in chemical processing, laboratory research, spacecraft systems, and defense-related facilities where environmental control is paramount. The solicitation, identified as BA-1146, is open for responses until August 1, 2026, and targets industry partners capable of commercializing the innovation. Licensing terms are tailored to individual businesses to foster mutually beneficial partnerships, and inquiries should be directed to the designated point of contact. The technology is not available for purchase or manufacturing support, with all efforts focused on technology transfer and commercialization through licensed collaboration.

POSTED

about 1 month ago

DEADLINE

in 12 days
View Details
NAICS: 333248
Federal
Tech Licensing Opportunity: Synthesis of Tungsten Tetraboride (WB4) by Electric Field Assisted Sintering (EFAS)A novel method for synthesizing tungsten tetraboride (WB4) using Electric Field Assisted Sintering (EFAS) offers a breakthrough in producing a material with superior hardness, thermal conductivity, and radiation resistance. Traditional synthesis techniques, such as arc melting, have historically yielded impure phases and inconsistent quality due to uncontrolled melting and phase degradation. EFAS overcomes these limitations by enabling precise, non-melting sintering that preserves the desired WB4 crystal structure, significantly enhancing material purity and achieving hardness levels near theoretical maximums. This advancement allows for scalable production of custom-sized samples up to 12-inch discs while reducing reliance on costly raw materials and complex processing, making it a cost-effective solution for high-performance applications. The technology demonstrates exceptional suitability for extreme environments, particularly in nuclear systems where neutron absorption and thermal stability are critical. The innovation addresses long-standing challenges in industrial machining, defense armor, and nuclear safety by enabling stronger, lighter, and more durable components. It unlocks new possibilities for machining tools in aerospace and automotive sectors, next-generation ballistic protection systems, and enhanced reactor components that improve safety and longevity. Currently at Technology Readiness Level 3, the method is protected under US Provisional Patent Application No. 63/643,127 and is being offered for licensing by the Department of Energy through Battelle Energy Alliance. Interested parties are invited to engage under flexible licensing terms designed to support commercialization by industry partners capable of scaling the technology. The opportunity remains open for proposals until August 1, 2026, with all inquiries and contractual discussions to be directed through the Technology Deployment office at INL. Any commercial engagement requires external capability to advance the technology beyond its current development stage, as the government does not provide funding, manufacturing support, or procurement services.
All Other Industrial Machinery Manufacturing

POSTED

about 1 month ago

DEADLINE

in 12 days
View Details
NAICS: 335910
Federal
Technology Licensing Opportunity: Controlled SPAN Electrode Synthesis for and High-Performance Energy StorageResearchers at Idaho National Laboratory have developed a scalable, high-performance synthesis method for sulfurized-polyacrylonitrile (SPAN) electrode materials, designed to overcome manufacturing and performance limitations in lithium-sulfur and sodium-sulfur batteries. The innovation centers on a custom high-pressure reactor capable of operating at up to 3000 PSI and 450°C, which eliminates headspace, captures hazardous gases, and integrates real-time spectroscopic monitoring to ensure precise, repeatable batch production of SPAN cathodes up to 250 grams—demonstrating viability for pilot-scale manufacturing. Complementing this process is the integration of transition metal sulfides into the SPAN matrix, enhancing electrical conductivity, stabilizing sulfur utilization, suppressing polysulfide shuttling, and increasing the nominal discharge voltage beyond 1.85 V. These advancements collectively improve cycle life, energy density, and operational safety while minimizing batch-to-batch variability. The technology is targeted for commercialization in grid energy storage, electric vehicles, aerospace and defense systems, and specialty electronics where lightweight, high-capacity, and durable power sources are critical. Licensing is available through Battelle Energy Alliance–DOE Center, with no procurement or hiring activities; the focus is solely on partnering with industry entities ready to bring this technology to market.
Battery Manufacturing

POSTED

about 1 month ago

DEADLINE

in 11 days
View Details
NAICS: 334516
Federal
Available for Licensing: Machine Learning-Enhanced Spectroscopy Technology for High-Resolution Radiation Detection Using Low-Cost DetectorsThis technology enables high-resolution gamma- and x-ray spectroscopy using low-cost, room-temperature detectors like sodium iodide scintillators by applying a compact convolutional neural network to reconstruct spectra traditionally only achievable with expensive, cryogenically cooled high-purity germanium detectors. The machine learning model, consisting of four convolution-max pooling layers and dense layers with approximately 1.6 million parameters and a total size of 6.2 MB, processes low-resolution input data to produce spectral outputs with resolution comparable to HPGe systems, while eliminating the need for liquid nitrogen cooling, reducing system size, and lowering overall cost by at least tenfold. The approach is detector-agnostic and compatible with a range of scintillators including CsI and plastic, making it adaptable for gamma rays, x-rays, neutrons, and charged particles without compromising count-rate performance or peak integrity. The solution significantly enhances deployability in mobile, field, space-based, and confined environments where traditional high-resolution systems are impractical due to weight, power, or thermal constraints. It supports higher throughput with minimal dead time and peak deformation, making it ideal for applications requiring real-time isotope identification without complex infrastructure. Target markets include nuclear safeguards, homeland security for special nuclear material detection, space radiation monitoring, industrial quality control, medical diagnostics, and environmental monitoring. The technology is available for licensing through the Department of Energy’s Idaho National Laboratory, with a response deadline of August 1, 2026, and no implied obligation for government procurement. Primary contact for inquiries is Javier Martinez at INL, located in Idaho Falls, Idaho.
Analytical Laboratory Instrument Manufacturing

POSTED

about 1 month ago

DEADLINE

in 11 days
View Details
NAICS: 21229
Federal
Available for Licensing - Electrochemical Rare Earth Recovery from Coal Fly Ash: Turn Waste Stockpiles into Critical Materials RevenueIdaho National Laboratory has developed a patent-pending electrochemical technology that selectively recovers rare earth elements from coal fly ash using electricity instead of traditional chemical reagents. The system employs functionalized mesoporous carbon electrodes to achieve an electrochemical separation with a separation factor of approximately 7, significantly outperforming conventional solvent extraction methods that often have separation factors below 10 and require 50 to 200 cycles to achieve purity. This innovation reduces processing time from days or weeks to just hours, eliminates hazardous waste generation, and operates with minimal environmental impact through a compact, modular design that uses reusable electrodes and no chemical solvents. With a demonstrated 60% recovery efficiency and lower operating costs, the technology transforms coal fly ash—158 million tons produced annually in the U.S. and 1.5 billion tons stockpiled—into a domestic source of critical materials containing 74,000 to 106,000 metric tons of rare earth elements. The technology is designed for commercial application across multiple sectors, including coal power plants seeking to convert waste into revenue, rare earth recovery firms aiming to replace chemically intensive processes, environmental remediation companies targeting mining tailings or contaminated soils, and supply chain stakeholders focused on domestic secure sourcing for defense and electronics industries. Its scalability and adaptability extend beyond fly ash to any complex mixed-ion separation challenge. Currently at the laboratory validation stage, the next step is a pilot-scale demonstration with an industrial partner. Idaho National Laboratory is seeking licensees to commercialize the technology under a licensing agreement and is not procuring services as part of this collaboration. The opportunity is open for responses until August 1, 2026, with primary contact information provided for inquiries.

POSTED

about 1 month ago

DEADLINE

in 11 days
View Details
NAICS: 513210
Federal
Small Business Providers Software PublishingBattelle Energy Alliance, LLC, as the Management & Operating Contractor for the U.S. Department of Energy’s Idaho National Laboratory, is seeking qualified small businesses certified under NAICS 513210 (Software Publishers) through an Expression of Interest to support the laboratory’s software acquisition needs. The requirement focuses on securing commercially available software products, including licensing, renewals, maintenance, updates, and technical support, all of which must align with INL’s operational demands and stringent cybersecurity standards. Respondents must demonstrate the ability to provide COTS software solutions, ensure timely delivery and deployment, offer comprehensive technical assistance for configuration and troubleshooting, and maintain full compliance with federal procurement rules and INL-specific security protocols. Authorization documentation for major software products and proof of active SAM.gov registration with verified NAICS 513210 certification are mandatory, and all submissions must clearly identify proprietary or sensitive business information. This solicitation, designated as INL-26-043 and posted on June 4, 2026, is a sources-sought notice aimed at identifying potential vendors for a future Request for Proposal, with no pricing, contract value, or formal award terms established at this stage. Interested parties are required to submit a detailed response including company information, a description of offered products and services, relevant experience, business size classification, technical support capabilities, fulfillment timelines, and evidence of software publisher authorization where applicable. All responses must be emailed to Chase.Egbert@inl.gov no later than August 4, 2026, and performance for any subsequent contract would be based in Idaho Falls, Idaho. Only selected respondents who meet the qualification criteria will be invited to participate in the next phase of the procurement process, and full contractual obligations, including evaluation factors and compliance requirements, will be defined upon issuance of the formal RFP.
Software Publishers

POSTED

about 2 months ago

DEADLINE

in 15 days
View Details