🏆
International Scholarly Publisher
Serving Researchers Since 2012

A Circular-Material Hybrid Energy Storage Architecture for Fast-Ramping and Black-Start Support of a 500 MW Coal-Fired Power Plant

DOI : 10.5281/zenodo.22789677
Download Full-Text PDF Cite this Publication

Text Only Version

A Circular-Material Hybrid Energy Storage Architecture for Fast-Ramping and Black-Start Support of a 500 MW Coal-Fired Power Plant

Municipal-Waste-Derived Hard-Carbon Sodium-Ion BES Integrated with Fly-Ash Thermal Energy Storage

Sangapu V S Narasimha Sai

India

Abstract – This paper proposes a multi-timescale energy-storage architecture for retrofitting a 500 MW subcritical coal- fired power plant with a 250 MW/1,000 MWh-class fly-ash thermal energy storage (TES) system and a 30 MW fast- response electrical storage layer. The electrical layer consists of a 5 MW supercapacitor subsystem and a 25 MW sodium- ion battery energy storage system (BESS), with an indicative battery duration of 12 h. To reduce dependence on critical imported materials, the proposed sodium-ion cells use municipal-waste-derived hard carbon as the anode, a sodiumiron manganese cathode family, and qualified secondary aluminium current collectors. Fly-ash-derived silicon is deliberately excluded from the baseline because it adds processing complexity and development risk. The proposed architecture separates electrical fast-response duties from bulk thermal energy shifting: the supercapacitor addresses sub-second transients, the sodium-ion BESS supplies seconds-to-minutes response and black-start support, and the fly-ash TES supplies sustained power for minutes-to-hours. The complete concept is estimated at approximately TRL 45, although several constituent technologies are considerably more mature.

Index Terms – sodium-ion battery, hard carbon, municipal solid waste, fly ash, thermal energy storage, black start, fast ramping, supercapacitor, coal power plant.

Accordingly, the paper should claim potential superiority in waste utilization, feedstock availability at the power-plant site, avoidance of virgin-material procurement, and integration with existing ash-handling infrastructure-not an assumed intrinsic heat-capacity advantage. Effective storage capacity must be demonstrated experimentally from measured density, temperature-dependent specific heat, allowable temperature range and thermal losses.

The stronger engineering argument is system-level. Fly ash is already generated, collected and handled at the host thermal plant, whereas suitable sand must be procured, transported and stored. Fly ash can also be immobilized or structured in an alkali-activated/geopolymer matrix, allowing TES geometry, thermal conductivity and mechanical integrity to be engineered. Recent studies report promising high-temperature stability of fly-ash-containing alkali-activated materials for TES applications in approximately the 400600 °C range [12].

A critical qualification is required when comparing fly ash with sand. Fly ash should not be described as intrinsically having a higher specific heat capacity than sand. Published values for fly ash are commonly around 0.70.8 kJ kg1 K1, while dry quartz sand is approximately 0.83 kJ kg1 K1; exact values vary with composition, temperature, moisture, particle size and measurement method [10], [11]. Thus, an

unsupported claim that raw fly ash has superior gravimetric thermal capacity would weaken the paper.

II. FLY ASH VERSUS SAND AS TES MEDIA

These developments establish the prior-art baseline for the present work: the novelty is not the general concept of storing heat in an inexpensive solid medium. The proposed contribution is the substitution of a coal-power-plant waste stream-fly ash-into a plant-integrated TES architecture and its coordination with a waste-derived sodium-ion BESS and supercapacitor layer.

A related commercial pathway has been demonstrated by Polar Night Energy, whose Sand Battery uses sand or similar solid materials to store electricity as heat and subsequently deliver hot water, steam, or hot air. Its current product information describes systems up to 10 MW heating power and up to 1,000 MWh of thermal capacity, with approximate thermal round- trip efficiencies of 8590% depending on configuration [8]. Polar Night Energy is also developing power-to-heat-to-power capability [9].

Solid-particle thermal energy storage has been investigated for high-temperature energy storage because inexpensive solid media can tolerate temperatures above those commonly associated with conventional nitrate molten salts. The National Renewable Energy Laboratory (NREL) has published work on

particle-based TES for concentrating solar power, including designs using inexpensive, thermally stable solid particles as both heat-transfer and storage media. NREL reports particle systems above 800 °C and emphasizes that larger temperature differences can improve storage capacity and enable high- efficiency power cycles [6], [7].

I. BACKGROUND: SOLID-PARTICLE AND SAND- BASED TES

The principal invention proposed in this work is not merely the use of a solid thermal-storage medium. It is the conversion of a large, continuously generated coal-fly-ash waste stream into an engineered thermal-storage asset and its integration with an existing thermal generating fleet to decouple boiler operation from grid-output requirements. The resulting architecture is intended to allow the thermal fleet to operate more flexibly, absorb renewable-energy variability, reduce unnecessary thermal cycling, and provide fast electrical services through a separate electrochemical/supercapacitor layer.

The concept therefore addresses two linked problems: (1) the need to make existing thermal generation more flexible as variable renewable generation increases, and (2) the need to beneficially utilize large quantities of coal-combustion fly ash. The proposed TES transforms fly ash from a disposal liability into an energy-storage infrastructure material, while the sodium-ion BESS and supercapacitor provide services for which thermal storage alone is too slow or operationally inefficient.

  1. INTRODUCTION

    Coal-fired generating units increasingly require flexibility for fast frequency response, ramping, black start, and renewable-energy balancing. These services occur on different time scales, so a single storage technology need not perform every function. This paper proposes a hybrid architecture in which high-power electrical storage is coupled to a large fly- ash thermal store.

    Sodium-ion batteries are increasingly relevant to stationary storage because sodium is abundant and hard carbon is widely regarded as the leading practical anode family for sodium-ion cells [1]. Recent work also emphasizes the importance of hard- carbon microstructure, density, porosity, initial Coulombic efficiency, and rate behavior [1]. Commercial sodium-ion deployment is advancing, although it remains less mature than lithium-ion at global scale [2].

    The proposed design focuses on economical deployment in an existing Indian thermal plant. Fly-ash-to-silicon processing is excluded. Municipal waste is instead used as the carbon precursor, while fly ash is reserved primarily for TES. This reduces process complexity and concentrates the material innovation on waste-derived hard carbon.

  2. SYSTEM ARCHITECTURE

    Layer

    Rating

    Time scale

    Primary duty

    The reference plant is a 500 MW subcritical coal-fired unit. The proposed flexibility system comprises a 250 MW/1,000 MWh-class fly-ash TES, a 30 MW fast-response electrical layer, and the existing generator and steam cycle.

    Supercapacitor

    5 MW;

    ~0.51

    MWh

    mss

    Instantaneous response

    Na-ion BESS

    25 MW;

    2550

    MWh

    smin

    Fast ramp,

    black start,

    frequency response

    Fly-ash TES

    250 MW;

    1,000

    MWhth basis

    minh

    Sustained thermal flexibility

    Coal unit

    500 MW

    hdays

    Long-duration generation

  3. PROPOSED SODIUM-ION BESS

    The baseline cell uses municipal-waste-derived hard carbon as the anode and a sodiumironmanganese cathode family selected to minimize nickel and cobalt dependence. Commercially qualified electrolyte and separator systems should initially be used. The research risk is therefore concentrated on the waste-derived carbon.

    Municipal solid waste should not be fed directly into electrode production. The proposed chain is segregation of a carbon-rich fraction, removal of metals, glass and mineral contamination, thermal conversion, purification, particle-size control, and electrochemical qualification. The hard carbon should be characterized for ash content, surface area, pore structure, tap density, first-cycle efficiency, reversible capacity and high-rate performance.

    Secondary aluminium is proposed for suitable current- collector applications after qualification. Scrap must be sorted, refined/remelted and processed to controlled composition and surface quality. A dedicated aluminium recycling plant is not assumed; qualified recycled foil should preferably be procured from established suppliers.

    SiC and fly-ash-derived silicon are excluded from the economic baseline. They may remain future research options, but they are not required for the intended fast-ramp function.

  4. FLY-ASH TES: PRINCIPAL INVENTION AND THERMAL-FLEET FLEXIBILITY

    The principal TES innovation is the utilization of plant- generated Class-F coal fly ash as the dominant solid phase in an engineered alkali-activated geopolymer storage matrix. The reference feasibility design uses approximately 8,000 t of fly ash in an approximately 8,500 t storage core, with about 5 wt% expanded graphite as a thermal-conductivity-enhancing additive. The concept uses six parallel storage vaults and thin storage plates to shorten internal conduction distances and increase heat-transfer area. These quantities remain preliminary and require validation using the actual plant ash.

    Unlike a conventional battery retrofit, the TES is designed to decouple the boiler/steam-generation process from the timing of electrical dispatch. During charging, a controlled steam extraction or diversion is passed through pressure reduction/desuperheating and a heat exchanger to a closed high-temperature air circuit. The air loop charges the fly-ash geopolymer storage core toward the design temperature. During discharge, hot air passes through a secondary heat- recovery steam generator (HRSG), producing conditioned

    steam for an appropriate turbine-side admission point. The final steam conditions, pressure balance, moisture limits and turbine integration must be established by plant-specific engineering.

    The preliminary design basis is 250 MW thermal discharge for four hours, corresponding to 1,000 MWh of nominal thermal storage. A conceptual temperature swing of 650 °C to 250 °C gives an air-flow requirement of approximately 579 kg/s using Cp = 1.08 kJ kg1 K1. This very large flow is a major feasibility driver and should be treated as a critical design issue, not a finalized equipment specification. Six vaults imply roughly 96100 kg/s per vault at the nominal point before distribution margins.

    The storage core is envisaged as approximately 1 m × 1 m

    × 35 mm plates with 57 mm inter-plate air gaps. The reference concept contains approximately 110,000 plates. Actual plate thickness, graphite fraction, porosity, compressive strength, thermal diffusivity, thermal-cycle stability, manufacturing tolerances and air-side pressure drop must be established experimentally. The enclosure concept uses a high- alumina/fireclay refractory hot face, aluminosilicate ceramic- fibre insulation and a reinforced structural enclosure.

    The fleet-flexibility function is central to the invention. Instead of forcing the boiler to follow rapid grid-load changes, the TES can absorb or release thermal energy while the boiler is maintained in a more stable operating region. Potential operating modes include: renewable-energy absorption during periods of surplus generation; peak-period power augmentation; rapid ramp support; reduction of boiler cycling; reduced startup/shutdown stress; minimum-load support; and coordinated dispatch of multiple thermal units. This creates a thermal-fleet flexibility layer rather than a storage device operating independently of the plant.

    For a fleet of multiple thermal units, a centralized energy- management system can allocate TES charging and discharging among units according to unit loading, ramp capability, heat rate, maintenance condition and grid requirements. The TES can therefore function as a shared flexibility asset, allowing the fleet to preserve thermal stability while the grid sees a faster effective electrical response. This is potentially more valuable than treating TES only as an arbitrage reservoir.

    The prior-art distinction is important. NREL has demonstrated and modeled low-cost solid-particle TES using sand and other solid media at high temperature. NREL work reports particle operation above 800 °C and identifies low-cost particles as a path to long-duration storage. Polar Night Energy has commercialized sand-based thermal storage for heat applications and is developing power-to-heat-to-power capability. The present concept differs by making plant- generated fly ash the principal storage feedstock and by coupling the TES directly to a coal-fired thermal fleet for operational flexibility. The invention claim should therefore focus on this integrated waste-utilization and fleet-flexibility architecture, rather than claiming the generic concept of solid- particle thermal storage.

    Fly ash versus sand: raw fly ash should not be claimed to have intrinsically higher specific heat than quartz sand. The stronger technical case is system-level: fly ash is already

    available at the host plant, avoids virgin-material procurement and transport, can be engineered into a structural geopolymer matrix, and directly addresses ash utilization. The actual storage capacity must be demonstrated from measured density, temperature-dependent specific heat, usable temperature range, thermal conductivity and heat loss. Thus, the proposed superiority is primarily in integrated system economics, waste utilization and plant compatibility-not an assumed superior kJ kg1 K1 value.

    IV. FLY-ASH THERMAL ENERGY STORAGE

    The TES layer uses Class-F fly ash as the principal storage- material feedstock in an alkali-activated geopolymer system with expanded graphite for thermal conductivity. The preliminary source design uses approximately 8,000 t of fly ash in an approximately 8,500 t storage core, six parallel vaults, refractory protection, insulation, and an air-based high- temperature heat-transfer loop.

    The TES is deliberately retained as the bulk energy-storage technology. This avoids purchasing hundreds of megawatt- hours of electrochemical cells solely to provide several hours of sustained output. The TES therefore complements rather than competes with the BESS.

  5. BLACK-START AND FAST-RAMP OPERATION

    Following a grid disturbance, the grid-forming power- conversion system establishes the electrical reference. The supercapacitor supplies the first high-power transient, followed by the sodium-ion BESS. Essential plant auxiliaries are energized according to the plant-specific black-start sequence. As the thermal system becomes available, the TES supplies sustained therma input through the heat-recovery system.

    The control hierarchy is therefore: supercapacitor response

    sodium-ion BESS response TES thermal response conventional coal-unit generation. Motor-starting sequence, auxiliary load, minimum BESS energy requirement, turbine rolling requirements, and protection settings require plant- specific dynamic studies.

    The separate TES feasibility report estimates a preliminary retrofit-block CAPEX of approximately 56.478.7 crore, including approximately 8,000 t of fly ash assumed at zero internal transfer cost, approximately 500 t of alkali activators and expanded graphite, refractory, ceramic-fibre insulation, blowers, piping/PRDS/steam interconnections and a secondary HRSG. These figures are planning estimates only and exclude or may exclude contingency, electrical systems, instrumentation, civil works, water treatment, cooling, transformers, switchgear, fire protection, engineering, commissioning, taxes and owner’s costs. They must not be presented as bankable CAPEX without vendor quotations and FEED-level design.

    Potential value streams include peak/off-peak energy shifting, renewable-energy absorption, capacity and flexibility services where permitted, reduced thermal cycling, reduced startup/shutdown fuel and auxiliary consumption, and ancillary or ramping services. A previous preliminary calculation of 146 crore/year gross arbitrage based on a

    4/kWh spread assumes 1,000 MWh of usable energy, 365 cycles/year and 100% availability; it is therefore an illustrative

    Long-

    duration role

    Excelle nt

    Good

    Excelle nt

    TES

    handles it

    Critical- material

    dependenc e

    Modera te

    Lower

    Modera te

    Potentially low

    Waste- material use

    Low

    Low moderate

    Low

    High

    Localizati on potential

    Modera te

    High

    Modera te

    Very high potential

    Bankabilit y today

    Very high

    Increasing

    High

    Low

    Innovatio n

    Low

    Moderate high

    Modera te

    High

    upper-bound calculation rather than a bankable revenue forecast.

  6. ECONOMIC OPTIMIZATION

    The principal cost strategy is to size the sodium-ion BESS for power services rather than bulk energy. A preliminary 25 MW/2550 MWh battery corresponds to approximately 12 h nominal duration, while the TES carries longer-duration energy. This reduces cell quantity and associated thermal- management and fire-protection requirements.

    Commercial PCS, BMS, EMS, transformers, switchgear, protection, and other balance-of-system equipment should be used. Existing plant switchyard, auxiliary systems, control- room infrastructure, fly-ash handling, and other brownfield assets should be reused wherever technically permissible.

    The lowest-risk commercialization route is to demonstrate the plant system initially with qualified commercial sodium- ion cells while developing municipal-waste-derived hard carbon in parallel. Once the waste-derived material meets cell- level performance and life requirements, it can progressively replace purchased hard carbon.

    Subsystem

    Indicative TRL

    Main gap

    Commercial sodium-ion cells

    89

    Vendor-specific field data

    Hard-carbon Na- ion cells

    89

    Chemistry/formulation dependent

    MSW-derived hard carbon

    46

    Feedstock consistency and qualification

    Secondary Al current collector

    89

    Battery-grade qualification

    5 MW

    supercapacitor

    9

    Plant integration

    25 MW Na-ion BESS

    architecture

    78

    Project-specific integration

    Integrated 30

    MW BES

    45

    Full-scale demonstration

    250 MW fly-ash TES

    35

    Pilot validation and integration

    Complete hybrid system

    ~45

    System-level demonstration

  7. TECHNOLOGY READINESS

    The proposed system should not be presented as a present- day replacement for LFP on every metric. Its principal advantage is system-level economics and material circularity: a relatively small high-power BESS is combined with a large low-cost thermal store. Commercial sodium-ion is the appropriate high-TRL benchmark for the cell platform, while LFP remains a benchmark for bankability and mature supply chains.

    The complete system should not inherit the TRL of its most mature component. The overall concept remains approximately TRL 45 because the integrated architecture, waste-derived hard-carbon pathway, and plant-scale TES/BESS interaction require demonstration.

  8. COMPARISON WITH HIGH-TRL ALTERNATIVES

  9. DEVELOPMENT ROADMAP

    1. Characterize the selected municipal-waste carbon fraction and establish a repeatable hard-carbon process.

    2. Build laboratory cells and quantify capacity, initial Coulombic efficiency, rate capability, impedance growth, and cycle life.

    3. Qualify NaFeMn cathode formulations and commercial electrolyte/separator combinations.

    4. Qualify secondary aluminium current collectors.

    5. Demonstrate a pilot sodium-ion module and grid-forming PCS.

    6. Validate fly-ash TES through thermal cycling, mechanical testing, and air-side pressure-drop testing.

    7. Integrate BESS, supercapacitor and TES controls using digital or hardware-in-the-loop simulation.

    8. Conduct a staged plant demonstration before committing to 25 MW BESS and 250 MW TES scale.

    9. Obtain vendor guarantees, EPC quotations, safety studies and a lifecycle-cost model.

    10. Progress to commercial deployment after performance, safety, durability and economic targets are demonstrated.

    Parameter

    Target

    Combined fast-response electrical layer

    30 MW

    Supercapacitor

    5 MW

    Sodium-ion BESS

    25 MW

    Sodium-ion energy capacity

    2550 MWh

    Nominal BESS duration

    12 h

    Round-trip efficiency

    80% target

    Cycle life

    5,000 equivalent full

  10. PRELIMINARY PERFORMANCE TARGETS

    Criterion

    LFP

    Commercial Na-ion

    VRFB

    Proposed

    Commerci al

    maturity

    Very high

    High/increasi ng

    Very high

    Developme nt

    Fast response

    Excelle nt

    Excellent

    Good

    Excellent target

    cycles target

    Primary services

    Black start, fast ramp, frequency response

    /td>

    Long-duration TES

    250 MW / 1,000 MWhth

    basis

    The central contribution should be presented as a flexible thermal-fleet architecture enabled by fly-ash utilization. The fly ash is not merely a low-cost storage medium; it is the enabling waste stream that makes a large, plant-integrated thermal store conceptually attractive. By decoupling boiler heat production from the timing of electrical output, the system can allow existing thermal units to operate with less severe load-following stress while a coordinated storage layer provides rapid and sustained flexibility.

  11. CONCLUSIONS

A cost-optimized hybrid storage architecture is proposed for a 500 MW coal-fired power plant. The design combines a 5 MW supercapacitor, a 25 MW/2550 MWh sodium-ion BESS and a 250 MW/1,000 MWh-class fly-ash TES. The sodium- ion BESS uses municipal-waste-derived hard carbon, a Na FeMn cathode family and qualified secondary aluminium current collectors. Fly-ash-derived silicon is excluded from the baseline because it adds processing complexity without being necessary for the required fast-ramp function.

The principal economic advantage is not an assumption that waste-derived cells will immediately be cheaper than commercial LFP. Instead, the architecture minimizes the electrochemical energy inventory and assigns long-duration energy storage to the fly-ash TES. Mature balance-of-system equipment and existing plant infrastructure are retained to reduce risk.

The complete system is approximately TRL 45, while individual components range from mature commercial technologies to laboratory-scale waste-derived materials. A staged program can raise system TRL without making the first demonstration entirely dependent on an unvalidated waste- derived cell manufacturing chain.

REFERENCES

  1. G. Liu, G. Xu, and Z. Chen, Sodium Storage Mechanism and Performance Optimization of Hard Carbon Anodes for Sodium-Ion Batteries: A Review and Perspectives, Energy & Fuels, vol. 40, no. 1,

    pp. 77104, 2026, doi: 10.1021/acs.energyfuels.5c04212.

  2. International Energy Agency, Sodium-ion battery momentum grows, but challenges remain, IEA, 2026.

  3. IEEE, Publishing Information for IEEE Conference Authors: Conference Paper Templates, IEEE Conference Publications, 2026.

  4. IEEE, Resources, Forms, & Templates, IEEE Conference Publications, 2026.

  5. U.S. Department of Energy, 2022 Grid Energy Storage Technology Cost and Performance Assessment, DOE, 2022.

  6. Z. Ma, G. Glatzmaier, and M. Mehos, Development of Solid Particle Thermal Energy Storage for Concentrating Solar Power Plants that Use Fluidized Bed Technology, National Renewable Energy Laboratory.

  7. Z. Ma, R. Zhang, and F. Sawaged, Design of Particle-Based Thermal Energy Storage for a Concentrating Solar Power System, National Renewable Energy Laboratory/Colorado School of Mines.

  8. Polar Night Energy, Sand Battery, product information, 2026.

  9. Polar Night Energy, Can Sand Battery Produce Electricity?, 2024; and Seeking a Site for the New Sand Battery Pilot, 2025.

  10. P. Choktaweekarn, W. Saengsoy, and S. Tangtermsirikul, A Model for Predicting the Specific Heat Capacity of Fly-Ash Concrete, ScienceAsia, vol. 35, pp. 178182, 2009.

  11. S. Verma et al., Designing for Effective Heat Transfer in a Solid Thermal Energy Storage System, 2024.

  12. N. Tran et al., High-temperature stability of ambient-cured one-part alkali-activated materials incorporating graphene for thermal energy storage, 2024.

  13. Z. Ma, R. Zhang, and F. Sawaged, Design of Particle-Based Thermal Energy Storage for a Concentrating Solar Power System, National Renewable Energy Laboratory/Colorado School of Mines, Proc. ASME Energy Sustainability, 2017, doi: 10.1115/ES2017-3099.

  14. Z. Ma, G. Glatzmaier, and M. Mehos, Development of Solid Particle Thermal Energy Storage for Concentrating Solar Power Plants that Use Fluidized Bed Technology, National Renewable Energy Laboratory, 2014, NREL/CP-5500-60400.

  15. Z. Ma, J. Gifford, X. Wang, and J. Martinek, Electric-Thermal Energy Storage Using Solid Particles as Storage Media, Joule, vol. 7, no. 5, 2023, doi: 10.1016/j.joule.2023.03.016.

  16. P. Davenport et al., Characterization of Solid Particle Candidates for Application in Thermal Energy Storage and Concentrating Solar Power Systems, Solar Energy, vol. 262, 2023, Art. no. 111908, doi: 10.1016/j.solener.2023.111908.

  17. Polar Night Energy, Sand Battery, product information, 2026.

  18. Polar Night Energy, Sand to Power Pilot, 20252027 project information.