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From the Middle Ages until well into the 20th century, windmills, watermills and ship mills shaped the landscapes and riverbanks of Germany. The basic principle of grinding, crushing and separating has not changed, but milling operations have developed into state-of-the-art food companies. Mill operations comprise a wide variety of different businesses that grind, crush or process raw materials such as grain, seeds, oilseeds or animal feed. They play a central role in the food, animal feed and agricultural industries.
From a property insurance perspective, milling operations are among the most exposed industrial facilities, as the processing of grain and other free-flowing goods produces flours and dust which, in combination with ignition sources, create a significant risk of fire and explosion. The conditions for a dust explosion – the so‑called dust explosion triangle – are:
The consequences of such explosions are usually serious. This article provides a brief description of typical mill operation types and a general description of processing methods, followed by a discussion of potential hazards and possible fire and explosion protection measures. Finally, tips for underwriting property insurance are provided.
In general, a mill is defined as a facility in which raw material is ground into a fine or very fine-grained end product. Mills can be classified according to the type of product ground:
or differentiated according to the grinding principle used to crush the material:
There are also other classifications for mills, including those based on drive technology (e.g. water, wind, capstan and machine mills) or size (e.g. hand, industrial and special mills).
The basic process steps in the milling industry vary depending on the type of product, but largely follow a typical sequence. The process is described in broad terms below using the example of a grain mill (e.g. for wheat, rye, corn, rice).
Graphic: Infographic of a modern grain mill, © Verband Deutscher Mühlen 2026, https://www.muehlen.org/fileadmin/Dateien/8_Presse_Service/2_Fotos_Infografiken/Muehlen-Produktionsablauf_englisch_2016_01082016.pdf
Nowadays, all processes – from grain reception to filling – are controlled and monitored in industrial milling plants from a computer-based control centre.
Ancillary and auxiliary operations of a mill include:
Special mills, e.g. oil or feed mills, sometimes require different or more extensive processing steps.
Fires and explosions have often occurred in mills around the world, resulting in considerable damage to insured property and subsequent business interruptions.1
In the U.S., there have been 86 explosions in feed, grain and rice mills, among other places, over the last 10 years. The blog titled “Grain Fires and Explosions: Yearly Trends, Causes, and Prevention” provides a good overview of this.2 Around 44% of all dust explosion incidents worldwide occur in agricultural and food production facilities.3 Statistics from Canada show similar results.4
According to press and media reports on the internet, an average of seven fires / explosions occur in grain mills in Germany each year, with the amount of damage per year varying greatly. A major fire (leading to losses of approximately EUR 50 million) occurred in an oatmeal mill in 2025.5
Existing reliable statistical data on fires and explosions in mills is generally not accessible to the general public.
The greatest hazard is posed by combustible dusts that ignite when stirred up. The finer the dust, the longer the dust-air mixture remains when stirred up, and the greater the maximum explosion pressure and the maximum time-explosion pressure increase. At the same time, the minimum ignition energy required to ignite a combustible dust-air mixture decreases. If finely distributed combustible dust settles on machines, pipes and surfaces, it can be ignited by hot surfaces; sparks (e.g. from foreign objects); or hot bearings or machine parts (e.g. motors); or overloaded or defective electrical systems and devices. If the air concentration is sufficient, a deflagration or an explosion (known as a primary explosion) can occur in silos, filters or mills.
If the ignition and deflagration of a limited flour dust-air mixture causes further dust to be stirred up from surfaces by the pressure wave, this results in a particular hazard: the additional dust that is stirred up can explode, often with devastating consequences (known as a secondary explosion). Filter systems and conveyor lines are particularly important in this regard, as the pressure wave can be transmitted to neighbouring systems and buildings if protective measures are not in place.
Since dust-air mixtures are practically never homogeneous, the corresponding explosion limits for dust do not have the same safety significance as for gas-air mixtures.6
Another danger in milling operations that should not be underestimated is the possible self-heating of materials due to moist grain or flour, which can heat up on their own during prolonged storage due to microbial processes and, in extreme cases, ignite.
The following section describes possible hazards and corresponding protective measures for each individual processing step. It should be noted that, depending on the operating process, further measures may be necessary from an official or insurance perspective.
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Particular attention should be paid to the use of suitable electrical equipment and operating materials. In addition to the relevant regulations for the installation and operation of electrical systems and equipment in fire-prone workplaces, the relevant provisions for installation and operation in potentially explosive workplaces should also be applied, e.g. DIN VDE, DGUV. According to these guidelines, only appropriately tested and suitable explosion-proof systems and equipment may be operated in rooms where explosive dust-air mixtures are likely to occur.
|
|
Definition (simplified) |
Example areas |
|---|---|---|
|
Zone 20 |
Permanent or long-term (≥1,000 hours / year) explosive atmosphere due to dust |
Inside mills, silos, filters, mixers, cyclones |
|
Zone 21 |
Occasionally explosive atmosphere due to dust (≥10 to 1,000 hours / year) |
Dust extraction pipes, area under silos, near bagging stations |
|
Zone 22 |
Only rarely and briefly explosive atmosphere due to dust (≤10 hours / year) |
Storage areas, machine rooms with dust release during malfunctions or cleaning |
Type of Operation |
Typical ATEX Zones |
Reason |
|---|---|---|
|
Grain Mills |
Zones 20/21/22 |
Grinding plants and bagging areas with fine flour dust |
|
Oat Mills / Rice Mills |
Zones 21/22 |
Generally less dust explosive than wheat flour, but significant dust formation |
|
Feed Mills |
Zones 20/21/22 |
High dust exposure during grinding, mixing and conveying; coarse but often combustible dust |
|
Oil Mills (mechanical) |
Zone 22 |
Tendency towards lower dust concentration, but relevant during grinding or press cake processing |
|
Malt Mills (brewing industry) |
Zones 21/22 |
Dry malt dust is combustible, but less fine-grained than flour |
|
Spice Mills |
Zones 20/21 |
Many spice dusts are extremely explosive (e.g. pepper, nutmeg) |
|
Pellet Mills |
Zones 21/22 |
High dust accumulation during the crushing and pressing of dry biomass |
|
Filter and Extraction Systems |
Zone 20 (inside), 21 (outside area) |
High dust concentration inside filters |
|
Silo Systems (storage) |
Zone 21/22 |
Dust release during filling/emptying, especially with dry grain |
Note: The actual classification must be determined by a risk assessment and, if necessary, by a specialist planner. The classification depends on factors such as dust type, concentration, ventilation, operating time and ignition sources. ATEX-compliant equipment (e.g. motors, sensors, lights) must be selected according to the zone determined in each case
In addition, the usual structural, operational, technical and organisational preventive fire protection measures apply to mill operations, e.g. fire-resistant or non-combustible construction; taking into account explosion protection measures for mill buildings and silos; a risk assessment; appointment of a fire safety officer; good order and cleanliness; avoidance or regular cleaning of dust accumulations; smoking ban; welding permit; fire brigade plan with sufficient space for the fire brigade to set up; regular drills on the mill premises with the fire brigade – to name just a few measures.
Due to the type of operation and the variety of technologies used in a mill, it is advisable to have an insurance engineer inspect the operation before accepting an insurance contract in order to obtain the necessary information for a risk assessment and the calculation of an adequate insurance premium. In addition to the typical insurance-related issues (scope of insurance; sums insured; deductibles; maximum compensation), this article addresses in particular the risk factors relevant to the type of operation:
Mills are usually very compact operations with tall buildings. They often represent a contiguous insurance complex, so that the maximum possible fire / explosion loss (PML/MFL) should often be assumed to be 100%. Some parts of mill buildings are made of combustible materials, such as wood. Since wood offers significantly less resistance to explosion pressure than reinforced concrete or steel, it is often used in roof constructions, e.g. to create appropriate pressure relief openings in the event of an explosion by forming a lightweight roof. Due to the different processes involved and the sometimes unavoidable increased risk of fire and explosion, a detailed risk analysis and assessment of the existing fire and explosion protection measures is necessary for an adequate risk assessment of mills in order to be able to provide a tailor-made insurance offer.
When evaluating actuarial visit and inspection reports prepared for the underwriting of mill operations, it is noticeable that, in addition to a detailed description of the process and any fire protection measures in place, explosion risks and existing explosion protection measures are considered rather briefly or not at all, even though the risk of explosion represents a significant exposure in mill operations. Furthermore, the economic impact of fire or explosion damage on the continued operation of the mill is usually dealt with only briefly. However, in addition to fire protection, it is advisable to pay special attention to the explosion risk, the existing explosion protection measures and the economic consequences of a damaging event in order to be able to make a reliable risk assessment and underwriting decision.
In addition, inspections of mill operations should be repeated regularly, e.g. at least every three years, in order to ensure insurability at attractive rates in the future. Inspection reports should contain meaningful information such as:
Information on the organisational measures taken to prevent or minimise the risk of fire or explosion events should also be included:
The following points are also relevant for risk assessment and underwriting:
From a technological perspective, milling is a diverse industry that requires a great deal of specialist knowledge and experience in underwriting in order to identify and adequately assess potential risks. From a property insurance perspective, milling operations are caught between production-related risks and the need for extensive protective measures. The explosion of a dust-air mixture or the outbreak of a fire can not only cause damage that threatens the very existence of the business, but also jeopardise its insurability as a whole. It is particularly striking that, in the event of a claim, in addition to damage to property, there is also significant consequential damage covered by business interruption insurance.
Close cooperation with the insurer, consistent risk prevention and regular reviews are therefore essential for long-term affordable insurance cover.
Mill operations are insurable, but they require careful underwriting and the setting of an insurance premium that is sufficient and adequate in relation to the existing exposure. In addition to appropriate protective measures, the existing exposure of a mill operation can be kept within responsible limits by setting an appropriate deductible and maximum compensation.
NFPA 61 Standard for the Prevention of Fires and Dust Explosions in Agricultural and Food Processing Facilities, https://www.nfpa.org/codes-and-standards/nfpa-61-standard-development/61
NFPA 660 Standard for Combustible Dusts and Particulate Solids, https://www.nfpa.org/codes-and-standards/nfpa-660-standard-development/660
NFPA 61D, Standard for the Prevention of Fire and Dust Explosions in the Milling of Agricultural Commodities for Human Consumption (1989), https://www.nfpa.org/product/nfpa-61d/p0061dcode
NBFU 61C, Regulations of the National Board of Fire Underwriters for the Prevention of Dust Explosions in Flour and Feed Mills (1989), https://www.nfpa.org/product/nfpa-61c/p0061ccode
DGUV Information 213‑106 Explosion Protection Document, Published by: German Social Accident Insurance (DGUV), Glinkastraße 40, 10117 Berlin, June 2021
ATEX 2014/34/EU Guidelines – Guideline on the application of Directive 2014/34/EU of the European Parliament and of the Council of 26 February 2014 on the harmonisation of the laws of Member States relating to equipment and protective systems intended for use in potentially explosive atmospheres, 3rd edition – May 2020, https://www.bgrci.de/fileadmin/BGRCI/Downloads/DL_Praevention/Explosionsschutzportal/Dokumente/ATEX_2014-34-EU-Guidelines_3rd-Edition_neu.pdf
Theodor Bestmann, Fire and explosion hazards in grain mills and feed mills, Schadenprisma 1/1984, https://www.schadenprisma.de/wp-content/uploads/pdf/1984/sp_1984_1_3.pdf
FM Property Loss Prevention Data Sheets 7‑76, Combustible Dusts, October 2024, www.fm.com
Tian, C., Yanga Z., Zhang, L. “A review of grain dust explosions: Prevention and control.” Results in Engineering Volume 26, June 2025, https://www.sciencedirect.com/science/article/pii/S2590123025015531#:~:text=The%20analysis%20further%20reveals%20that,%2C%20storage%2C%20and%20transportation%20systems
Practical guide to creating an explosion protection document for grain processing, grain storage and trading companies, edition 2014, https://www.fsa.de/produkte/veroeffentlichungen/fsa-praxisleitfaeden/
Guideline on explosion protection in the grain and feed industry (as of 16 November 2020) with the collaboration of DVT, BVA drv Raiffeisenverband, VGMS, https://www.raiffeisen.de/sites/default/files/2020-11/2020_11_16_Ware_ExSchutz_Anl-Leitfaden.pdf
All internet links cited in the text of the article were accessed on 24 March 2026.