Carbon Monoxide in Malaysian Workplaces: The Hazard Most People Don’t Know They Have

Carbon monoxide is described as the “silent killer” for good reason: it has no colour, no smell, and no taste. You cannot detect its presence with your senses. By the time symptoms appear, such as headache, dizziness, and nausea, the exposure may already have reached a level that impairs judgement and slows the response that would allow you to remove yourself from the hazard. At higher concentrations, it incapacitates and kills without warning.

CO is not an exotic industrial chemical. It is produced by the incomplete combustion of any carbon-containing fuel, including petrol, diesel, LPG, natural gas, kerosene, and charcoal. That means it is produced by generators, forklifts, internal combustion engine vehicles, gas cooking equipment, boilers, and any other combustion process that is not burning cleanly or is operating in a confined space without adequate ventilation. These are all extremely common in Malaysian workplaces.

The reason CO exposure remains underrecognised in Malaysian workplaces is simple: it is invisible and its symptoms are easily mistaken for other conditions. Headache and dizziness at the end of a shift are attributed to fatigue, dehydration, or the heat. The connection to a generator running in the adjacent room or a forklift operating in a poorly ventilated warehouse is not made until someone loses consciousness. Sometimes, the connection is still not recognised.

Where CO is produced in Malaysian workplaces

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Diesel and petrol generators
One of the most significant CO sources in Malaysian workplaces. Generators running in semi-enclosed areas, including machine rooms with inadequate ventilation, loading bays, and locations near office spaces, can produce CO concentrations that can reach dangerous levels within 30–60 minutes. TNB supply interruptions increase generator use; peak CO exposure risk often occurs during outages.
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LPG and diesel forklifts
Internal combustion engine forklifts operating in enclosed or partially enclosed warehouses, cold storage facilities, and loading areas produce significant CO. Cold engines and poorly maintained engines produce higher CO concentrations. Multiple forklifts in a poorly ventilated space compound the risk rapidly. Electric forklifts do not produce CO. This is one of their often overlooked safety advantages.
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Gas cooking and catering equipment
Commercial kitchen gas equipment operating with burner flame issues, such as incorrect gas pressure, dirty burners, or inadequate combustion air, can produce elevated CO. Canteen and kitchen staff who spend eight hours in a poorly ventilated kitchen with sub-optimal burner combustion accumulate CO exposure across the shift. Symptoms at shift end are often not connected to the kitchen environment.
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Process boilers and heating equipment
Gas and diesel-fired boilers produce CO when combustion is incomplete. This may be caused by an incorrect fuel-to-air ratio, dirty heat exchangers, or inadequate flue draught. Boiler rooms with inadequate make-up air supply are at risk. Process heating equipment in food processing, rubber processing, and other manufacturing facilities can produce CO if combustion air supply is restricted.

Why CO is different from other gas hazards

Most workplace gas hazards that Malaysian businesses are aware of, including LPG leaks, natural gas leaks, and H2S in oil and gas environments, produce either a distinctive smell or have defined explosive risk characteristics that make them obvious hazards once a leak occurs. CO is different in three important ways.

First, it is odourless. There is no sensory warning of exposure. Second, it does not present an explosion risk at the concentrations typically found in workplace exposure events. This means it does not trigger the same kind of immediate alarm response as a gas that has an obvious flammable hazard. Third, its symptoms, such as headache, nausea, and dizziness, are non-specific and are routinely attributed to unrelated causes. The cumulative effect is that CO exposure incidents in workplaces are frequently either not recognised at all, or recognised only when a worker collapses.

What CO exposure does to the body

35–70 ppm
Mild exposure: Headache after 2–3 hours of continuous exposure. Easily attributed to fatigue, hunger, or dehydration. Workers rarely connect symptoms at this level to CO exposure, especially if there is no obvious combustion source visible.
150–200 ppm
Moderate exposure: Headache, dizziness, disorientation within 2–3 hours. Affected workers may be unable to make clear decisions about leaving the area. Impaired judgement is a characteristic effect of CO. The hazard compromises the victim’s ability to recognise and respond to the hazard.
400 ppm
Dangerous: Life-threatening within 3 hours. Severe headache, vomiting, loss of coordination. At this concentration in an enclosed space with a generator or multiple forklifts, a worker who does not exit the area within an hour faces serious risk of incapacitation.
1,200 ppm+
Immediately dangerous: Loss of consciousness within 1 hour. Fatality possible within 2–3 hours of continuous exposure. A generator running at full load in a room approximately 20m² with minimal ventilation can reach these concentrations within 30–45 minutes.

The specific danger of CO is that it impairs the victim’s ability to recognise that they are in danger. A person developing CO poisoning does not feel fine until they suddenly feel very unwell. They feel gradually more tired, more confused, more headachy in ways that do not produce the alarm signal that “I am being poisoned.” This is why CO detection must rely on a technical sensor that sounds an alarm rather than relying on affected workers to self-identify their exposure and remove themselves.

What Malaysian workplaces should have in place

For any workplace where combustion equipment operates, such as generators, gas kitchens, forklift operations, and boiler rooms, CO detection is appropriate and, in many cases, the only reliable means of identifying hazardous concentrations before workers are affected. CO detectors designed for industrial use alarm at 35 ppm (the ACGIH TLV-TWA for CO) and at a higher alarm level, typically 100–200 ppm, for immediate evacuation. They are modest in cost and straightforward to install.

Generator rooms and semi-enclosed generator locations need CO detection and ventilation interlocks. These may include automatic fans that start when CO is detected and alarms that alert personnel before concentrations reach hazardous levels. Forklift operating areas with enclosed or semi-enclosed structures need ventilation design that prevents CO accumulation during peak operational periods. Gas kitchens need CO detection in addition to natural gas or LPG leak detection because the two hazards are different and require different sensors.

Equally important is that staff understand CO as a hazard, including what produces it, why it cannot be detected by smell, and what to do if a CO alarm activates: leave the area immediately, call for help, and do not re-enter until the area has been ventilated and confirmed safe by CO measurement. The instruction sounds simple. But it requires that the CO alarm means something to the workers who hear it. This requires training, not just a detector on the wall.

Does Your Workplace Have CO Detection Where It Needs It?

Torr Energy supplies and installs carbon monoxide detection systems for generator rooms, warehouses, kitchens, and other combustion environments across Malaysia. Contact us to discuss detection requirements for your facility.

Talk to Torr Energy →
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