PubMed Health⌕ Search

PubMed · 16451846

Elemental mercury spills.

Abstract

Sources of elemental mercury (Hg0) include old natural gas regulators, manometers, sphygmomanometers, thermometers, and thermostats. Causes of Hg0 spills include improper storage, container breakage, children playing with Hg0, the breakage of devices containing Hg0, and ritualistic use of Hg0. Inhalation is the primary exposure route for Hg0. Mercury released into the environment can enter lakes and streams, where bacteria convert it into methylmercury, which bioaccumulates in fish. Chronic exposure to Hg0 vapors can damage the kidneys and neurologic system. Short-term exposure to high levels of Hg0 vapors may cause lung damage, nausea, vomiting, diarrhea, increases in blood pressure or heart rate, skin rashes, and eye irritation, among other effects. Minimizing Hg0 dispersal is important after an Hg0 spill. Tracking by shoes or apparel or vacuuming can spread Hg0, increasing airborne concentrations and cleanup costs. The Illinois Department of Public Health's response to an Hg0 spill depends on the size of the spill. Airborne concentrations after large spills are mapped with a mercury vapor analyzer (MVA). The cleanup begins with the spill site and any hot spots that were identified with the MVA. Hard surfaces can usually be cleaned, but contaminated porous items must be discarded. Leaving marginally contaminated items outdoors for a month or more during warm weather may dissipate the Hg0. After a cleanup, clearance sampling is conducted to determine if further cleanup is needed. The best way to prevent Hg0 spills is reduce its use. Key words: cleanup, elemental mercury, health effects, mercury, prevention, remediation, spill, spill management.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Thomas A Baughman. 2006. Elemental mercury spills.. https://doi.org/10.1289/ehp.7048

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Vocational rehabilitation of locomotive engineers with ischaemic heart disease.

BACKGROUND: There is resistance among railway companies and their occupational health services to rehabilitating locomotive engineers with ischaemic heart disease to their former driving work. AIM: To study the outcome of vocational rehabilitation for locomotive engineers with ischaemic heart disease. METHODS: In seven European countries, selected locomotive engineers with ischaemic heart disease were compared to a matched group of healthy engineers. At the end of each calendar year between 1990 and 1999, questionnaires were completed by local occupational health physicians to provide information on accidents, incidents (professional mistakes), sick leave, (recurrent) cardiac events, death and early retirement. We used the life table method with five follow-up years to calculate the risk of accidents, incidents and recurrent cardiac events. RESULTS: The accident rate for the cardiac group was 3.8 accidents per 100 person-years, as compared to a rate of 6.0 in the reference group. The rates for incidents were 0.9 and 2.0, respectively. Neither of these differences were statistically significant. The duration of sick leave was significantly longer among the cardiac group than it was among the reference group, but only in the first follow-up year. Thirteen recurrent cardiac events occurred in the cardiac group, as compared to a single cardiac event in the reference group. There was no difference in the proportion of retirement cases. One engineer in each of the two groups died of cardiac disease. CONCLUSIONS: Locomotive engineers can safely resume driving duties following onset of cardiac disease.

Accidents↗

Contribution of initial heart rate to the prediction of posttraumatic stress symptom level in accident victims.

Earlier findings of a positive correlation between heart rate (HR) and posttraumatic symptom level have recently been brought into question. Therefore, we investigated the relationship between resting HR and symptom scores of posttraumatic stress disorder (PTSD) in physically injured accident survivors, controlling for well established predictors for (PTSD and factors influencing HR. A representative sample of 255 accident victims was assessed measuring PRIME-MD, PDEQ, trauma-related cognitions and CAPS. Initial interviews were conducted five days post trauma; follow-up assessments took place six months later. Heart rate measurements were obtained from surgical files. We found positive bivariate correlations between HR at hospital admission (HRA) and PTSD symptom levels. However, in multiple regression analysis HRA contributed marginally to the prediction of PTSD symptom levels. We conclude that the initial heart rate is a weak and not independent predictor for PTSD symptom level following accidental injuries.

Accidents↗

[Oxygen therapy in diving accidents].

Diving accidents represent a departure from the routine practice of emergency physicians. The incidence of non-fatal diving accidents is reported as 1-2 per 10,000 dives. Apart from adequate intravenous hydration, oxygen is the only medication with a proven effect in the treatment of diving accidents. After a typical diving accident, administration of oxygen at an inspired concentration (F(I)O(2) 1.0) as high as possible is recommended. Many divers bring along their own oxygen administration systems to the diving sites and these are often better suited for the treatment of diving accidents than the oxygen systems of many emergency responders. Pressure regulators supplying low constant flow oxygen, nasal prongs and inhalation masks are inappropriate. When using artificial ventilation bags with face masks, an oxygen flow of at least 15 l/min should be used. Demand regulators are simple to use and able to deliver a F(I)O2 of 1.0. Their ease of use has earned them high marks in the emergency management of diving accidents and their similarity to standard diving equipment has also aided relatively widespread acceptance. Circulation breathing systems are more technologically complex oxygen delivery systems which permit CO2 absorption and re-breathing at low oxygen flow. In contrast to the demand modules, the likelihood of mistakes during their usage is higher. In diving accidents, the administration of normobaric oxygen, already begun in the field, is the most important therapy and should not be interrupted. Presented with an inadequate supplemental oxygen supply, the inspired oxygen concentration should not be decreased, rather the duration of the oxygen administration should be reduced. Hyperbaric oxygen therapy should be the mainstay of further treatment.

Accidents↗