Knowing
and understanding the potential hazards that can be present in a confined space
is the critical part.
A worker is about to enter a confined space. Prior to entry,
he reaches down to his belt and pulls out his gas monitoring device. He points
the device into the confined space and initiates a scan of the entire area.
Beams of light emit out of the instrument in all directions and cover the
entire interior of the confined space. When the instrument has completed the
scan of the space, it starts to analyze exactly what is present. When the
analysis of the entire space is complete, the hand-held unit displays a list of
all known gases and airborne particulates, along with their concentrations. The
instrument then informs the user that it is either safe to enter the confined
space or there are high levels of a particular substance.
What Do You Monitor For?
The first step in assessing a confined space is to know and understand the confined space. This includes identifying the confined spaces that may be entered and knowing what potential hazards to monitor for in that area.
The number one cause of deaths in confined space accidents has been asphyxiation due to lack of oxygen. OSHA requires that the oxygen content is monitored prior to and continuously during entry in a confined space. The typical oxygen content is around 20.9 percent by volume; If levels are depleted below 19.5 percent by volume, the instrument alerts the worker. Continuing to work in oxygen levels below 19.5 percent can cause increased/labored breathing, lightheadedness, or if low enough, death. If the oxygen content enriches to levels higher than 22.5 percent by volume, the excess levels of oxygen can enhance combustion, and so OSHA has made 22.5 percent the upper limit for acceptable levels of oxygen.
Besides oxygen, combustible gas monitoring is also extremely
important for confined space entry. If a combustible gas were present and were
to ignite, the explosion could cause immediate danger to the entrant. And
depending on the severity of the explosion, damage could be caused to
surrounding structures and individuals in the area. For an explosion to occur,
100 percent of the Lower Explosive Limit (LEL) must be present. This is why
OSHA has set the action limit for combustible gases at 10 percent LEL.
Currently, there is no clear "yes" or "no" answer on whether a PID should be used for confined space entry. The one benefit of a PID sensor is that it can detect some potentially explosive gases in the ppm range instead of % LEL. With the OSHA standards for combustible gases being set to 10 percent LEL, it is really not necessary to use a PID to detect these combustible hazards.
Because a PID sensor displays an output that is directly proportional to the amount of ions present on the electrodes, the instrument itself is not specific to any one compound. The PID will respond to any compound that has an ionization potential less than the ionization potential of the lamp; these compounds could be anything from solvents, to air pollution, to even a worker's cologne or deodorant. As a result of the PID's limitations of specificity, using a PID to assess a confined space could cause a great deal of end user/entrant confusion when the sensor responds to a compound. The non-specificity of the sensor does not inform the end user what is present and causing the PID sensor to respond, just that there is a VOC present.
Knowing and understanding the potential hazards that can be present in a confined space is the critical part in determining whether a PID sensor is necessary for confined space entry. The non-specificity of the sensor can cause confusion if the potential hazards are not known or identified. A PID cannot assess the area to determine which compounds or gases are present in the area; it can tell you only that some volatile organic compound has been ionized by the PID and that the amount of ions produced has caused a reading. This is the major limitation of PIDs for confined space entry.
Today's available sensing technologies still limit the amount of information and specificity of the gas monitoring instrument. As sensing technologies continue to advance and improve over time, detection and identification of the "unknown" may be a reality someday.
沒有留言:
張貼留言