Showing posts with label decontamination. Show all posts
Showing posts with label decontamination. Show all posts

Tuesday, May 15, 2012

Defending from Within - Potassium Iodide


Radiation permeates the spaces in which we live and work.  It bounces off our skin, enters our bodies in food and drink, and even collects in our bones. Usually these ambient radiation levels are low enough to make little difference to our overall health. But in extreme cases of high radiation levels in the environment, steps must be taken to stop radiation from getting inside us. Interestingly enough, there some things we can take into our bodies that can protect ourselves from radiation.  
Potassium Iodide (KI) is a salt that has been used as a tool for radiation protection since the FDA approved it in 1982. The iodine in KI is stable (or nonradioactive) and is an important chemical needed by our bodies to produce hormones. Most of the iodine in our bodies collects in the thyroid, the site of specific hormone production. The danger with this concentration is that radioactive iodine (such as I-131) can be absorbed in place of stable iodine, leading to heightened concentrations of radiation and risk of thyroid cancer. Radioactive iodine is a common isotope given off during nuclear reactions.  Last year’s Japanese nuclear crisis released large amounts of I-131 into the environment. This prompted record-setting sales of KI that suppliers could not keep up with.
65 mg Potassium Iodide Tablets. source
Last month KI came into the international spotlight again when the US Defense Logistics Agency ordered 1,050,000 doses of the pill to bulk up its stockpile1. The reason for the order is probably due in part to increased nuclear threats from North Korea and Iran. In any case, the solicitation prompted massive orders for potassium iodide from spooked civilians. 
Although KI is a useful tool for dealing with exposure emergencies, it isn’t a complete remedy. The compound only lessens health hazards from radioactive iodine, not other radioactive isotopes. Correct dosage is very important as well, as young children need far less KI than adults in emergency situations. For other details, the Centers for Disease Control and Prevention (CDC) has a great page on potassium iodide here.
Perhaps the biggest misunderstanding with potassium iodide is that it doesn’t keep radiation from entering the body, it only reduces the possibility of radioactive iodine being absorbed. That’s why other measures need to be in place to issue advance warnings about radiation threats. Radiation detectors such as the MiniRad-D and Rad-ID as currently used by military, public safety, and homeland security personnel to find and identify radioactive threats. 
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D-tect Systems is a supplier of advanced radiation and chemical detection equipment sold around the world. www.dtectsystems.com.

Friday, March 30, 2012

Fukushima: Long Term Impact

The gripping drama that unfolded during this month last year filled headlines and news hours all across the world.  On March 11th last year, a huge earthquake and tsunami left more than 20,000 people dead or missing in eastern Japan.  Amidst widespread destruction, the tsunami slammed into the Fukushima Daiichi Nuclear Power Station, disabling cooling systems and leading to fuel meltdowns in three of the six nuclear units.  As invariably occurs, after a few months the media coverage moved on, even though countless problems remain unresolved.  
So why hasn’t the radiation washed away or faded into neutrality?  This same query has plagued eastern Europeans for over 25 years as they continue to deal with heightened radiation levels stemming from the Chernobyl disaster. The answer is that radioactive materials released into the environment in both of these catastrophes are extremely finely dispersed and will last for decades.  In fact, just controlling the spread of radiation has become higher priority than cleaning up the mess in many cases.
In a nutshell, radioactive elements are unstable atoms. They seek stability by giving off particles and energy—ionizing radiation—until the radioisotope becomes stable. This process occurs within the nucleus of the radioisotope, and the shedding of these particles and energy is commonly referred to as ‘‘nuclear disintegration.’’  During their disintegration, most radioactive elements morph into yet other radioactive elements on their journey to becoming lighter, stable atoms. Some of the morphed-into elements are much more dangerous than the original radioisotope, and the decay chain can take a very long time1. This is the reason that radioactive contamination has a variable lifespan, depending on the composition of the radioactive material. For more information on this topic, see this post on radioactive lifespans.

The most common contamination radionuclides in the Japanese crisis are cesium-134 (with a half-life of 2 years) and cesium-137 (with a half-life of 30 years).  Radiological risk assessment expert John Till, president of the U.S.-based Risk Assessment Corporation, says the fallout will probably be gone from the surface of plants within a few years, but attach strongly, through ion exchange, to soil — in particular to the clay soils common throughout Fukushima2. From there, the rate and risk level at which cesium will move into plants is still unclear.  And the oceans are a different matter: sediment levels and changing currents make radioactive duration almost impossible to estimate.

Japanese soldiers collect contaminated leaves near the Fukushima nuclear power plant in December. source
 
All of this information adds up to the need for sustained radiation observation.  In particular, on-going dose rate measurements are essential to avoid overexposure to people, animals, and crops.  Since much of the radiation is mobile, weather changes can cause radiation levels to rapidly fluctuate.  This is a common occurrence in Japan, where after a rain storm brings down radioactive particles, the sun and wind can produce radioactive dust clouds that travel in unpredictable ways.  The mobility of these radioactive particles requires constant monitoring to warn people and keep them indoors on increased risk days.

Not only do these detectors need to consistently and accurately make measurements, they also need to efficiently relay information to analysis locations.  A self-healing mesh network is ideal for this kind of seamless measurement and communication.  This kind of network routes around disabled detectors and can incorporate new detectors at any location in the network.  The Rad-DX, D-tect’s newest addition, operates on the D-tect SensorNet – a mesh network with these capabilities.  To learn more about the SensorNet, visit this page. 

Although the cleanup in Japan may take decades, conditions are steadily improving.  With careful and constant radiation monitoring and improvements to safety standards, future risks may be mitigated.

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D-tect Systems is a supplier of advanced radiation and chemical detection equipment sold around the world. www.dtectsystems.com.