SBS Refractory Service

Refractory lining for battery storage systems

We line enclosures for stationary battery storage systems with mineral refractory materials — the same ones that withstand sustained high temperatures in our industrial furnaces. As a supplier to system integrators and enclosure manufacturers.

A1
non-combustible, mineral-bonded
1,600 °C
service temperature in furnace construction
35+
years of refractory experience
DACH
in-house installation teams
Expertise

Why refractory know-how counts here

In a fault condition, a battery storage enclosure has to do exactly what a furnace lining does every day in normal operation: withstand heat without burning itself, and protect the structure behind it. The mineral-bonded materials we have been installing in melting furnaces, ladles and incineration plants for more than 35 years are designed for sustained temperatures of 900 to 1,600 °C.

Our role is clearly defined: we provide material selection, the lining and professional installation — with material certificates and an installation record, as in any furnace project. Enclosure design, structural engineering, electrical safety and the certification of the overall system remain with the system manufacturer. We supply the documentation for our own scope of work.

Material expertise

Access to a broad range of mineral castables, lightweight castables and fibre insulation from various manufacturers — selected specifically for each project instead of an off-the-shelf standard solution.

In-house installation teams

Permanently employed specialists who install refractory linings every day. No subcontractors, no losses at the interface between planning and execution.

Documented execution

Material certificates, installation records and acceptance reports are part of our standard scope — the basis for your system certification.

Early coordination

During the concept phase, material and wall construction can still be matched to your design. The earlier we are involved, the closer the fit of the result.

Industries

Industry expertise in dismantling

Experience from a wide range of industrial sectors.

BESS system integrators

Manufacturers of complete storage systems looking for a non-combustible internal lining for their enclosures — supplied as a component of their own product.

Enclosure and container builders

Metalworking and container manufacturers who want to add a mineral protective layer to their enclosures without building up refractory know-how of their own.

Project developers and EPC contractors

Planners of commercial and large-scale storage projects who require a non-combustible design for fire protection concepts at the installation site.

Industrial operators with their own storage requirements

Production sites that want to buffer PV electricity and install the storage system inside existing halls or close to production equipment.

Project workflow

From enquiry to final acceptance

Structured, transparent and on schedule — this is how we work.

1

Clarifying requirements

1–2 weeks

Joint review of the boundary conditions: capacity class, indoor or outdoor installation, available wall thickness, weight limits and the interfaces with racks, cooling and cable routing.

2

Material proposal

2–3 weeks

Selection of suitable castables from our range, compared against your requirements for thermal conductivity, weight and moisture behaviour. You receive data sheets and a substantiated recommendation.

3

Sample part

3–4 weeks

Production of a wall segment or partition element at 1:1 scale, so that you can assess processing, surface finish and installation in practice before series quantities are fixed.

4

Documentation

depending on the project

Provision of the material certification for our scope of work — material certificates, fire classification to DIN EN 13501-1 and the characteristic values required for your system certification.

5

Installation and documentation

depending on the project

Execution by our own installation teams — at your plant or prefabricated at our works. With an installation record and acceptance report, as is customary in furnace construction.

The sequence is a framework, not a fixed scheme. How deeply the individual phases are worked through depends on how far your enclosure design has already been defined.

Guides

Knowledge on dismantling

Guide

Thermal Barriers in Battery Energy Storage: Refractory Materials Against Thermal Runaway

How planners and operators of battery energy storage systems (BESS) limit thermal propagation between cell, module, rack and container — codes and standards, material selection, installation, testing and maintenance from a refractory contractor's perspective.

18 minRead
Guide

Reading a UL 9540A Report Properly: Which Values Matter for Thermal Barrier Design

UL 9540A reports provide the data basis for thermal compartmentation and fire protection design of battery energy storage systems. This guide shows which parameters from cell, module and unit level testing genuinely belong in the design process.

8 min.Read
Guide

NFPA 855 and Separation Distances: What Siting Design Means for Fire Compartments

Separation distances, energy limits per fire compartment and fire resistance: what NFPA 855 specifies for the siting of stationary battery energy storage systems — and how its logic can be transferred to German fire protection concepts.

7 min.Read
Guide

LFP, NMC and Sodium-Ion from a Fire Protection Perspective: What Cell Chemistry Means for the Barrier

Onset temperature, gas quantity, heat release: cell chemistry defines the hazard profile of a battery energy storage system — and thus whether the compartmentation must be designed primarily against heat or against gas.

7 min.Read
Guide

Gas Venting and Deflagration Protection: NFPA 68/69 and the Consequences for the Lining

With battery energy storage systems, the explosion is often more dangerous than the fire. What NFPA 68 and NFPA 69 require for explosion venting and ventilation — and what that means for the lining and compartmentation of the enclosure.

8 min.Read
Guide

Barriers at Cell and Module Level: Fibre Paper, Microporous Laminates and Aerogel Compared

Which barrier material prevents propagation between cells and modules most reliably? A technical comparison of fibre paper, microporous laminates and aerogel composites for stationary battery energy storage systems.

8 min.Read
Guide

Container Lining in Execution: Fixings, Joints, Penetrations

A fire protection container lining is only as good as its workmanship. What really matters with fixings, joint detailing and cable penetrations in battery storage containers.

8 min.Read
Guide

Retrofitting Existing Assets: Thermal Compartmentation of In-Service Storage Containers

Many first-generation battery energy storage systems no longer meet today's safety expectations. How existing containers can be sensibly upgraded with thermal compartmentation, penetration sealing systems and explosion venting.

8 min.Read
Guide

VdS 3103 and Property Insurers' Expectations: The Evidence That Secures Insurance Cover

What the VdS 3103 guidance sheet means for battery energy storage systems, which additional codes property insurers rely on, and which evidence designers and operators should provide so that insurance cover holds in the event of a loss.

8 min.Read
Guide

Maintaining and Inspecting Thermal Barriers in Operation: Intervals, Checkpoints, Documentation

Thermal barriers only protect battery energy storage systems if they remain intact over the years. This guide shows which inspection intervals have proven effective, what to look for during inspection, and how documentation stands up to authorities and insurers.

7 min.Read
Guide

Permitting and Building Law for Battery Storage in Germany: Where Fire Protection Enters the Procedure

In Germany, battery energy storage systems are mostly approved as unregulated special structures. This article puts planning law, building regulations and the outer-area privilege adopted at the end of 2025 into context — and shows at which point in the procedure the fire protection verification is decisive.

8 min.Read
Checklist

Acceptance of the thermal barrier in a battery energy storage system — 12 inspection points

This checklist takes you through the acceptance walkdown in twelve inspection points once the thermal barrier has been installed in a battery energy storage system. You check barrier layers, joints, penetrations, fixings and documentation before the installation is put into service.

6 min.Read
Checklist

Fire protection in a new-build BESS: planning checklist from concept design to tender

This checklist sets out the fire protection decisions for a new battery energy storage system in twelve steps — from site selection and cell chemistry through to a tender-ready performance specification. You can see which document has to be available at which point.

6 min.Read
Checklist

Annual fire protection inspection in a battery energy storage system — 10 inspection points for existing plant

This checklist guides you through the annual inspection of the passive fire protection measures in an existing battery energy storage system. Ten inspection points show what to check on barriers, penetration seals and documentation, and how to record findings so they can be traced.

6 min.Read
Industry knowledge

Battery storage for project developers and EPC contractors: anchor fire protection early instead of retrofitting at a premium

How project developers and EPC companies define the passive fire protection of a large-scale battery storage system as early as the preliminary design stage. From evaluating the UL 9540A report to a thermal barrier that will pass permitting.

7 min.Read
Industry knowledge

Battery storage for operators and asset managers: fire protection in ongoing operation

Passive fire protection does not end at acceptance. How operators and asset managers keep the condition of the thermal barrier demonstrable over the service life and stay in control of third-party interventions.

7 min.Read
Industry knowledge

Battery storage for insurers and expert assessors: what makes a storage system insurable

What property insurers and expert assessors look for in large-scale battery storage systems, and the part the structural thermal barrier plays in limiting the maximum loss. With reference to VdS 3103, UL 9540A and EN 1366-3.

7 min.Read
Industry knowledge

Battery storage in industrial plants: self-consumption, peak shaving and the fire protection consequences in an existing building

A commercial storage system pays for itself through self-consumption and peak shaving. In an existing building, however, it changes the fire protection situation. What has to be settled for siting, thermal barriers and permitting.

7 min.Read
Market analysis

The battery storage market in the DACH region: new-build capacity, drivers and bottlenecks

New-build capacity in stationary battery storage is shifting from home storage to utility-scale storage. This analysis places installation figures, the grid connection pipeline and permitting practice in the DACH region in context, and sets out what follows from this for thermal barriers.

8 min.Read
Market analysis

Regulation in flux: what NFPA 855, UL 9540A and the EU Battery Regulation mean for storage projects

NFPA 855 in its 2026 edition, the sixth edition of UL 9540A and the EU Battery Regulation are shifting the burden of proof from the cell to the installation. This analysis places the deadlines in context and sets out what follows from this for thermal barriers.

8 min.Read
Market analysis

Fire incidents in battery storage: what the loss record shows

The failure rate of utility-scale storage has fallen sharply since 2018, yet root cause analysis shifts attention away from the cell. This analysis evaluates publicly documented databases and incidents and draws the consequences for thermal barriers.

8 min.Read

Talk to us early

During the concept phase, material and wall construction can still be matched to your design.