5 quarrying scenarios where respirable dust is generated

Crushing + screening

Breaking down all types and sizes of rocks in quarrying, through crushing and screening processes generate high levels of respirable dust. When the rocks are crushed and then screened, large volumes of both visible and invisible dust becomes airborne and travels across the entire quarry site, presenting a risk for all workers. 

Drilling + blasting

As in mining, quarrying also involves a large amount of drilling, blasting and other methods to break down rocks and spaces for processing and extracting. These processes lead to rocks, clay and other natural materials becoming very small and making them airborne and easily inhaled, leading to severe health risks for workers. 

Storage of minerals + natural materials

Once all materials have been extracted and processedthey’re stored in designated areas after collection. Herenatural materials are stored in stockpiles, where they grind against other materials and minerals, creating more and more respirable dust. When these minerals are used, the settled dust becomes disturbed and airborne. 

Maintenance + handling processes

Maintenance of all types of machinery, vehicles and minerals, such as rock and sand in quarrying can generate respirable dust. If dust from screening, drilling and even in stockpiles isn’t correctly maintained it becomes dormant. Poor maintenance and handling processes like dry sweeping can spread dust, presenting health issues. 

Transport of goods

Heavy-duty vehicles used in quarrying such as haul trucks and conveyors often involve moving large volumes of natural minerals which have been processed and are fine and small in size. This can present risk of airborne dust across all areas of the site, as well as other dust which may be trapped in wheels and cabs of the vehicle. 

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    10 hazardous dusts in the workplace

    • Respirable Crystalline Silica is one of the most hazardous types of dust workers can be exposed to. RCS forms many types of natural materials such as stone, sand and rock, and is generated when these materials are cut, ground or made fine through various different workplace processes. 
    • Common industries exposed to RCS: Construction, mining + stone working 
    • Asbestos dust is generated through the damaging of asbestos-containing materials such as cements, tiles and other products in manufacturing environments. When airborne, asbestos dust is easily inhaled due to its small size and scars deep into the lungs, causing lung diseases. 
    • Common industries exposed to asbestos dust: Construction, demolition + manufacturing
    • Substances and ingredients which are used to make pharmaceutical products can often create high levels of hazardous dust during processes such as milling, pressing, blending and grinding. API dusts can include organic compounds, metal powders and combustible properties. 
    • Common industries exposed to API: Chemical Manufacturing + Pharmaceutical 
    • Coal dust is generated in various underground environments when coal is being mined for, in rocks and other natural structures and materials. Cutting, grinding and blasting rocks makes coal dust easily inhalable, especially in environments with limited ventilation or space, such as underground. 
    • Common industries exposed to coal dust: Mining, quarrying, gold (open-pit) mining + tunnelling 
    • Construction dust can be generated from any kind of construction activity, whether cutting, drilling, mixing materials, building infrastructure, or other processes. Materials like stone, cement, sand and brick generate fine, respirable materials which create high levels of construction dust. 
    • Common industries exposed to construction dust: Construction + quarrying 
    • Grain dust is created when using barley, wheat and other natural materials from farming and harvesting. These processes in agriculture, as well as the manufacturing of grains in food production lead to grain dust exposure, generated from handling, transferring, milling and mixing grain. 
    • Common industries exposed to grain dust: Agriculture + food production
    • Flour dust is generated through mixing, cutting and handling flour, whether from initial farming and harvesting of crops, to processing it in food production. Exposure to flour dust can be dangerous, as its easily inhaled due to its small size and common use and worker exposure in food processing
    • Common industries exposed to flour dust: Agriculture + food production 
    • Textile dust is generated during apparel and clothing manufacturing due to processes such as drawing, carding, spinning, handling materials, and others, particularly due to the properties of wool, cotton and fibres. Occupational asthma and respiratory irritation is common for workers exposed to textile dust.  
    • Common industries exposed to textile dust: Textile + apparel manufacturing 
    • Fine metal particles generated through welding can lead to various occupational illnesses. Welding at high temperatures, above certain materials boiling point generates high levels of metal dust, particles and fumes which need to be effectively controlled during welding processes. 
    • Common industries exposed to welding dust: Manufacturing + welding 
    • Sawing, cutting and drilling into wood products often generates high levels of dust. This can be either hardwood dust, generated from oak or beech trees, or softwood dust, such as pine or fir trees. Exposure to hardwood dust can cause serious cancers, whilst softwood dust can cause respiratory irritation. 
    • Common industries exposed to wood dust: Construction, forestry + woodwork 

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      5 effective ways to control dust in the workplace

      The dust problem

      Where its not possible or reasonably practical to completely prevent exposure to hazardous dust in your workplace, implementing control methodduring dusty processes can help reduce your exposure to dust in the workplaceThis short guide will look at effective control methods as well as the Hierarchy of Controls, with 5 effective ways to control dust in your workplace.

      By segregating processes which produce large volumes of dust, you can control the amount of dust your workers are exposed toIn some cases, it may even be possible to make the process entirely automated, meaning no workers are exposed to dust. Introducing a remote operation, e.g. a separate room or section within a facility meaning workers completing the dusty process never directly come into contact with the excess dust created. This process means that if workers have to complete a task which is likely to create excess hazardous dust, they spend as little, or if possible, no time exposed to the dust. 

      In cases where segregation isnt possible, extraction is an option to control excess dust. Local Exhaust Ventilation (LEV) systems can be built into machines or processes which create excess dust. LEV and extraction systems collect contaminants like dust and filter out the contaminants before they’re released into the air. This process can be used for multiple processes within the workplace such as storage bins, grinding mills, conveyors, mixing machines and many more, ensuring that when excess dust is created it does not come into direct contact with workers during these processes. 

      Using less-toxic materials, where applicable, is another suitable method for controlling dust exposure in your workplace. For example, the use of pellets rather than powders, or replacing sand with garnet as abrasive blasting agent can allow workers to produce a similar end product during workplace processes whilst minimising risk of dust exposure. By substituting out materials for less toxic alternativesworkers can continue their processes throughout the day, at less, or almost no risk to their respiratory health.

      The use of wet methods can provide almost no airborne dust during workplace methods. Damping down materials such as stone and concrete, which are used for many workplace processes and usually create high levels of dust when disturbed, can mean potential airborne dust is limited due to the particles binding together when wet. Similarly, methods of cleaning such as dry sweeping dust or compressed air lines can spread and disturb hazardous dust across the workplace, making it airborne and posing a threat to workers healthcontrolling excess dust and reduce the risk to workers. 

      Excess dust is a consist problem in workplaces where highly dusty processes occur, especially if it is not possible to completely eliminate the risk of dust. By maintaining cleanliness, encouraging workers to work with care and instructing them how to control the dust produced in their work processes by following the methods mentioned, control of dust can become a regular process in the workplace. 

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        5 industries where real-time silica monitoring is effective

        Each year thousands of construction workers contract or die from respiratory diseases from exposure to dust, including silica dust. This can be due to direct exposure on site or simply by just working nearby the construction site, e.g. in a nearby office or cabin.  

        Obviously, activities such as drilling, cutting and building generates dust, as raw materials such as brick and stone are disturbed and ground down, making fine dust become airborne, but dust also becomes a risk to workers nearby in other ways. 

        Respirable Crystalline Silica (RCS) is less than 10µm in size, meaning that it’s not only easily inhalable, but is also fine and small enough to travel far distances effecting individuals not directly located near construction activities. 

        Real-time silica monitoring with AIR XS provides transportable monitoring of respirable silica dust, with a measurement capacity of 1µm to 10µm to monitor across entire construction sites, in nearby offices and further a-field to protect everyone. 

        With the ability to monitor in real-time, workers can gauge which activities are causing certain RCS levels at specific times in the day, e.g. if cutting stone causes higher levels of RCS, to then introduce effective control measures to limit RCS generation. 

        In the UK alone, there are approximately 2.6 million manufacturing workers, working with various different materials. Approximately 20% of workers in the UK are affected by dust from stone, cement, brick or concrete across workplace processes. 

        Manufacturing processes can involve anything from welding and joinery to grinding, cutting and polishing. It can entail all different types of raw materials such as metals and plastics, as well as clay, glass and sand which can all generate dangerous RCS. 

        In manufacturing as a whole, which uses various different raw materials and often has multiple processes occurring at once, it’s important to be able to distinguish RCS from other dusts, in total dust loads and mixes, in real-time, both accurately and reliably. 

        Real-time silica monitoring with AIR XS provides detailed information by examining multiple detection parameters for RCS in real time, including size, symmetry, and a series of optical markers unique to RCS particles, in total dust loads. 

         

        An estimated 49.5 million miners worldwide are exposed to high concentrations of RCS during their work. Due to specific work processes, enclosed spaces and limited air quality, exposure to silica dust can have a big impact on mining and its workers. 

        Processes such as drilling and blasting of materials, even more so during demolition of entire structures, generates high levels of dust, such as silica, due to brittle underground materials such as sand and rock being regularly disturbed. 

        As well as this, due to the lack of ventilation and air quality underground, as well as the enclosed spaces which workers find themselves in, RCS can become easily inhaled, sometimes causing life-threatening respirable diseases. 

        Real-time silica monitoring with AIR XS offers workers the ability to know exactly how much silica dust they’re exposed to, live and in real-time, no matter the environment they’re in, even including in noisy, high-volume workspaces with limited visibility. 

        Real-time readings on device as well as live and historical data through BreatheXS software allows workplaces to subsequently introduce the correct and effective control measures to prevent further overexposure. 

        Exposure to silica dust in quarries is not uncommon. Highly dusty processes, with heavy-duty machinery and large-scale vehicles not only generate dust from materials but also disturb settled dust on the ground, increasing the risk.  

        Crushing, drilling and blasting of raw materials such as sand and stone can generate high levels of RCS. This dust in incredibly fine and invisible to the human eye, making it easily inhalable and airborne. 

        With the wide-open spaces of quarrying, and various different activities and processes being undertaken, this fine dust can easily spread from one area to another, increasing the risk of exposure to it and subsequent associated health risks. 

        Real-time silica monitoring with AIR XS ensures that all RCS is accurately monitored for, particularly of vast open areas of the quarry, to account for all workers who may be exposed to hazardous silica dust. 

        Thanks to the transportable capabilities of AIR XS, multiple areas, all activities and processes in a quarrying environment can be regularly monitored, allowing for effective control measures to be introduced for excess silica dust. 

        Silica is a naturally occurring mineral found in many types of rocks and stones. When working in stonemasonry, natural minerals are regularly cut into, generating high levels of RCS, exposing workers to potential lung and respirable illnesses. 

        Shaping, cutting and crafting natural and engineered stone involves chiselling, grinding and polishing of stone, which can contain up to 90% silica content. Once disturbed it often becomes airborne further increasing the risk of illness. 

        Without effective and regular control measures, suitable for the material on the job, such as wet methods and dust extraction workers may put themselves and other workers at risk. Real-time silica monitoring can help to support this. 

        Real-time silica monitoring with AIR XS provides a valuable insight to the entire workplace, which can be used for introducing the correct control measures to ensure that workers aren’t overexposed to high silica content. 

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          AIR QUALITY CONSULTING BENEFITS FROM PERSONAL DUST MONITORING

          Customer / End User

          AirMatters

          Application

          Air Quality testing

          Industry

          Occupational Hygiene

          Country

          New Zealand

          Product(s) used

          TX8061 XD1+

          Challenge

          AirMatters, specialists in occupational hygiene and respiratory protection, used the XD1+ Personal Dust Monitor to support workplace health assessments involving noise, vibration and air quality. The aim was to provide accurate, reliable data, helping them evaluate the effectiveness of existing respiratory protection processes and gain deeper insight into workplace air quality performance. 

          Outcome

          Using XD1+ and BreatheMOBILEAirMatters improved understanding of workplace dust exposure and strengthened decision-making around respiratory protection. Real-time monitoring helped assess existing PPE across different environments, while identifying where additional controls were needed to better protect staff and manage occupational health and air quality risks. 

          Company & Application 

          Specialising in occupational hygiene and air quality consulting across New Zealand, AirMatters are committed to ensuring safe and healthy environments for organisations across the nation. 

          Working in industrial and hazardous environments, AirMatters supply services such as Occupational Hygiene and Health Risk Assessments to provide peace of mind and valuable information on health risks to workplaces.  

          The Challenge 

          Concerned with putting people at the heart of healthy workplaces, AirMatters specialise in occupational hygiene assessments for noise, vibration and, importantly to us, respiratory protection, requiring bespoke, accurate and reliable monitoring equipment. 

          So, the opportunity to use XD1+ Personal Dust Monitor alongside their processes and methods was vital for AirMatters, not only to support the work they do but also to gain a better understanding around how effective processes are in relation respiratory and air quality. 

          The XD1+ Plan 

          The air quality consultants at AirMatters recently deployed XD1+ units across the team’s processes to gain a better understanding of the dust levels they were exposed to when working on occupational hygiene and air quality consultations, as well as for better data support for their consultations. 

          We’ve been using the XD1+ from Trolex for the last year in a range of projects. It provides significant supplementary information that we could not gather with traditional time-weighted average samples. It has become a vital piece of equipment, and we are confident it will continue to enhance our evaluation of exposure in the workplace.

          Personal protective equipment (PPE) is at the bottom of the Hierarchy of Controls; however, there are circumstances where PPE might be the only alternative to other higher-level exposure controls. 

          We’re using XD1+ again and again and we’re getting good feedback. It’s such a handy tool, easy to operate, easy to connect with digitally.” 

          AirMatters employee

          Air Quality Consultant, AirMatters

          The XD1+ Solution 

          Thanks to deploying XD1+, AirMatters’ staff have enhanced their knowledge and understanding of dust levels in various workplaces. It’s beneficial for knowing what they’re exposed to and further protecting themselves and other workers, and it’s helped them to improve and implement effective decision making, such as deploying PPE. 

          By gaining access to real-time data through XD1+ and supporting BreatheMOBILE, it’s allowed AirMatters to determine if the PPE they were originally using was correct for the various situations their staff were in, whether the PPE as necessary and further, more effective controls are required.  

          For a company exposed to different scenarios relating to occupational health and air quality, it’s important correct PPE was deployed depending on the hazard or risk. 

          What this means moving forward 

          AirMatters continue to see the benefit of real-time personal dust monitoring alongside occupational hygiene and air quality consulting. 

          Find out how you can enhance your workplace safety by incorporating real-time personal dust monitoring with XD1+  today. 

          AIR X PARTICULATE MONITORING

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            THE NEED FOR REAL-TIME PARTICULATE MONITORING

            Why real-time dust and silica monitoring technology?

            "REAL TIME" MONITORING IN THE WORKPLACE

            When it comes to health and safety in the workplace, real-time monitoring and real-time data is vital to managing control measures for exposure to hazardous particulates. Incorporating real-time monitoring technology allows you to see spikes in exposure, particularly at what point and exactly what processes generate more dusts, so you can do something about it.

            “Real-time monitoring is instant, in the moment, meaning you can do something about a problem and implement control measures.” – said Joe Marais, Occupational Hygienist and Product Development Manager. “It allows you to try a new control measure and have a very quick indication of whether that has been successful or not in reducing the hazard.” 

            Adrian Eccles and Joe Marais discuss real-time particulate monitoring

            REAL TIME FOR REAL RISK CONTROL

            When it comes to workplace health and safety, effective measures must be taken to protect workers, and real-time monitoring is the most effective way to provide this. “Real-time monitoring is a tool you can use in combination with the Hierarchy of Controls. Unfortunately, in certain circumstances like with crystalline silica, which is naturally occurring in so many materials, you can’t necessarily just eliminate it, and it can be quite difficult to substitute it.” 

            “So, for the most part, you will need to introduce engineering controls and that’s where real-time monitoring comes in,” When carrying out an action that generates extremely large volumes of dust, or you know for a fact you’re being exposed to dust, you can introduce water suppression or other extraction methods to the activity to reduce your exposure and have an instant indication of whether the control measures have been effective. 

            THE HIERARCHY OF CONTROLS

            “If you’re able to incorporate real-time monitoring when applying the Hierarchy of Controls, you’ll quickly see whether what you’re doing to mitigate the risks of dust exposure is effective or not.” 

            “You’re able to see the exposure concentration in real-time before the control measure is introduced, then once you introduce the control measure, you can immediately see if there is a drop in the exposure concentration.”  

            Whilst real-time monitoring can support the decision making, implementation and surveillance of engineering controls, the effect this can have on entire workforces is also valuable. Part of the problem when it comes to introducing effective control measures is having the entire workforce understand the full extent of why it’s important to implement such measures and continue to follow the protocol surrounding it.  

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              REAL-TIME RCS MONITORING

              Trolex inspires new AAPG perspective on respiratory health.

              IMPROVING SILICOSIS OUTCOMES IN THE UK

              In 2020, the All-Party Parliamentary Group for Respiratory Health (APPG) issued the report “Silica, the next asbestos?”, which examined the disproportionate effect of silica dust to construction workers’ lives.

              Since the publication of that report, the APPG were contacted by a number of experts on the subject matter, including ourselves, who highlighted the advances in risk reduction and the particularly promising rise of real-time dust and silica monitoring technology.  

              The new, revised report, titled “Improving Silicosis Outcomes in the UK” also explored these new silicosis prevention strategies, including some input from Trolex on the subject matter. From this, the APPG raised several clinical and regulatory recommendations to protect workers from the dangers of occupational silicosis going forward. 

               

              Trolex believe that the most obvious and immediate benefit of real-time monitoring is in improving safety for those potentially exposed to silica in the workplace…We recommend that the Health and Safety Executive (HSE) assess and determine the data and technology needed to allow the UK to reduce the WEL for work with silica to 0.05mg/m³.” 

              Jim Shannon, MP

              Chair APPG, All-Party Parliamentary Group for Respiratory Health

              REAL-TIME DATA FOR EFFECTIVE CONTROLS

              The recommendations from the APPG’s report indicate numerous changes need to be made to improve safety across all UK industries which use silica. These recommendations focus on both ways to prevent exposure to dangerous respirable crystalline silica (RCS) in the workplace, including improvements in education, real-time monitoring and reducing exposure limits, as well as improving health and support for those who currently suffer with silicosis. 

              By working with the authors of the APPG to share the features, benefits and thinking behind the development of real-time silica monitoring technology, together we’re able to provide new evidence for this report the report with fitting advice and supporting of reducing exposure to respirable crystalline silica in the workplace. 

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