
Previous studies have employed collected MAWL (maximal acceptable weight of lift) data as criteria for designing manual handling tasks because MAWL relates to one's limitation of muscle strength. However, whether the Chinese MAWL can still be used for job design is questionable because the Chinese are relatively weaker than Western subjects in their upper extremities. To clarify this, in the present study 24 male Chinese subjects psychophysically determined their MAWL and MAWLo (maximal acceptable weight of lower) under task conditions of three lifting frequencies and two lifting ranges. The results indicated that subjects' MAWLo were significantly lower than their MAWL, especially when infrequent tasks were performed (including tasks of one time maximum and one lift (lower)/min, all p<.05). This could be attributed to a relatively disadvantageous position in the upper extremities at the beginning stage of these lowering tasks. This finding strongly implies that it is not enough to consider only Chinese MAWL when designing manual handling tasks; MAWLo data should not be ignored.
In this study the influences of microorganism species, relative humidity, and ozone dosage on ozone surface disinfection were evaluated. Bacterial and fungal cultures were spread on agar plates and exposed to ozone. The selected microorganisms included Escherichia coli, Bacillus subtilis, Candida famata, and Penicillium citrinum. Results showed that microorganism survival fraction and ozone dosage (ozone concentration times exposure time) have an exponential relationship. Results also indicated that E. coli was the most sensitive organism to ozone exposure. E. coli required only very low ozone doses of 2-2.5 and 3.5-4 mg to obtain 50 and 80% inactivation, respectively. In addition, P. citrinum was more resistant than E. coli and required ozone doses of 40-60 and 60-120 mg to obtain 50 and 80% inactivation. In addition, spores of B. subtilis were observed to be the most resistant organism, requiring ozone doses of 40-75 and 145-150 mg to obtain 50 and 80% inactivation. Yeast was less resistant than P. citrinum and B. subtilis, requiring ozone doses of 10 and 15-19 mg to obtain 50 and 80% inactivation. It was clearly indicated that the ozone dose differences for 80% microorganism inactivation could be as high as 40 times between B. subtilis and E. coli. Ozone surface germicidal efficiency increased as relative humidity increased, which could be related to more radicals generated from ozone reaction with more water vapor at higher relative humidity. It was concluded that ozone should be highly effective and provide a reliable safety factor in treating contaminated surface. In addition, workers might need to wear suitable respiratory protection at high ozone level operation.
The effect of building frame and moisture damage on microbial indoor air quality was characterized in 17 wooden and 15 concrete or brick school buildings. Technical investigations to detect visible moisture and mold damage were performed according to a standardized protocol. Viable airborne microbes were determined by using a six-stage impactor (Andersen 10-800). Mean concentrations of viable airborne fungi were significantly higher in wooden schools than in concrete schools, showing that the frame material was a determinant of concentrations of airborne fungi. Moisture damage of the building did not alter the fungal concentrations in wooden school buildings. In contrast, in concrete schools the effect of moisture damage was clearly seen as higher concentrations compared with the reference schools. Aspergillus versicolor, Stachybotrys, and Acremonium were detected only in samples from moisture damaged buildings, and can be considered marker fungi of such damage in school buildings. In addition, the presence of Oidiodendron as well as elevated concentrations of Cladosporium and actinobacteria were associated with moisture damage in concrete schools.
Dr. Peterson has written many articles, papers, and a textbook, Industrial Health. He is past president of the Yuma-Pacific Southwest Section of AIHA and past president of AAIH. Dr. Peterson is Visiting Professor in Environmental and Occupational Health Sciences at the University of Illinois and Clinical Professor of Preventive Medicine at the Medical College of Wisconsin. His consulting practice deals primarily with litigation.
Particle emissions from manual shielded metal arc welding of carbon steel were sampled in a typical industrial maintenance and metal fabrication workplace environment. Particle number measurements over the size range from 14 nm to 10 microm using a scanning mobility particle sizer and an optical particle counter showed that welding produced an approximately lognormal particle mode with a 120 nm count median and a geometric standard deviation of 2.07. This study produced welding particle number concentrations on the order of 2 x 10(5)/cm(3) in the building air 8.5 m away from the welding. Workplace exposure samples were below the current 8-hour American Conference of Governmental Industrial Hygienists mass concentration threshold limit value of 5 mg/m(3). Submicron particles comprised 80% of the total aerosol mass collected by a cascade impactor during welding. The concentration of larger particles was indistinguishable from indoor background. Microscopy showed that the welding emissions are dominated by clusters formed from <0.1 microm primary spheres. These data on the particles resulting from aerosol transformation by natural dilution inside an industrial building can be compared with laboratory-scale studies of welding particulate. The particle number characteristics observed in this study are significant because toxicological hypotheses suggest that number or surface area may be a better metric than mass when evaluating the health effects of fine particles.
Cooling lubricants are used in the metal industry during drilling or turning. Vapors and aerosols of these lubricants are suspected to induce airway hyperresponsiveness (AHR) in exposed workers. In a previous study the authors demonstrated that water-soluble lubricants induce AHR after acute exposure of rabbits to concentrations near the German MAK value (10 mg/m(3)). In the present investigation the influence of a fatty alcohol as special non-water-soluble cooling lubricant was examined to determine its influence on airway responsiveness (AR). The effects of an aerosolized non-water-soluble lubricant (40, 90, and 220 mg/m(3)) on AR to acetylcholine in a rabbit model were studied. Lubricant atmosphere analysis was performed with infrared spectroscopy. Before exposure, after 2 and 4 hours of application, AR to aerosols from 0.2 and 2% acetylcholine was tested. Basal airway and cardiovascular parameters as well as blood gases did not change during exposure. Lubricant aerosol concentration of 40 and 220 mg/m(3) for 4 hours did not significantly alter AR. Inhalation of 90 mg/m(3) lubricant increased contractile response to ACH significantly. In contrast to formerly investigated water-soluble cooling lubricants, the examined non-water-soluble lubricant did not increase AR in concentrations near the MAK; however, in higher concentrations a significant (p<.05) increase was obtained.
Traditionally, measurements of specific polycyclic aromatic compounds (PACs) have been attempted as an estimate of asphalt fume exposure. However, asphalt fumes contain numerous alkyl substituted PACs, including PACs containing heteroatoms of nitrogen, oxygen, and sulfur. Many of these compounds coelute precluding the resolution of the individual compounds resulting in ambiguous data. Moreover, many researchers believe that some observed health hazards are associated with PACs overall and not just a few select PACs. Therefore, NIOSH method 5800 was developed to evaluate total PACs as a chemical class in asphalt fumes. Asphalt fume samples were collected on a poly(tetrafluoroethylene) filter backed by an XAD-2 sorbent tube. The samples were extracted with hexane; then, a cyano-solid-phase-extraction column was used to remove the polar compounds while the aliphatic and aromatic compounds were eluted with hexane. An equal volume of dimethyl sulfoxide (DMSO) was added to the hexane extract, causing the aromatic compounds to partition into the DMSO, thus isolating the PACs. The PACs were then analyzed for fluorescence using a flow-injection method with two fluorescence detectors. Wavelength settings for the first detector (254-nm excitation, 370-nm emission) emphasized the 2- to 4-ring PACs that may cause eye and respiratory tract irritation. Wavelength settings of the second detector (254-nm excitation, 400-nm emission) emphasized the 4- and higher-ring PACs that are often mutagenic and possibly carcinogenic.
Airborne levels of microorganisms traditionally have been measured by culture-based methods. Culture-based methods are suitable for the detection of infectious agents, but their suitability for the detection of microorganisms with toxic and allergic effects is less clear, because these effects do not depend on viability of the organisms. During the last 15 years several noncultural methods have been developed for the quantification of airborne microorganisms, including microscopic methods. Microscopy may be expected to provide more valid exposure estimates of microorganisms than culture-based methods, because live and dead microorganisms can be detected. However, their validity may also depend on the ability to differentiate between species. The literature was searched for epidemiological studies in which exposure-response analyses were carried out using culture-based methods and/or microscopy. The influence of several factors on exposure-response associations were considered: design; population size; analytical method; sampling method; exposure levels; outcome; and confounder adjustment. Thirteen studies were found, including a total of 49 exposure-response analyses, and 45% of the analyses showed associations. It was found that the potential of microscopic methods to uncover exposure-response associations was only marginally better than that of culture-based methods (47 and 44%, respectively). Exposure-response associations were more often found with fungi (70%) than with gram-negative bacteria (50%) or total bacteria (22%), perhaps because fungal exposure is more strongly associated to respiratory outcomes than exposure to bacteria. But the shortcomings of the measurement methods may also be important. Further development of measurement methods for bacteria is therefore needed. The complex composition of bioaerosols in many work environments necessitate the assessment of exposure to multiple agents and multivariate statistical analysis of exposure-response associations.
Enzymes in flour improver, in particular fungal alpha-amylase, are known to be a significant cause of respiratory allergy in the baking industry. This study measured total inhalable dust and fungal alpha-amylase exposures in U.K. bakeries, mills, and a flour improver production and packing facility and determined whether assignment of job description could identify individuals with the highest exposures to fungal alpha-amylase and inhalable dust. A total of 117 personal samples were taken for workers in 19 bakeries, 2 mills, and a flour improver production and packing facility and were analyzed using a monoclonal based immunoassay. Occupational hygiene surveys were undertaken for each site to assign job description and identify individuals who worked directly with flour improvers. Analysis of exposure data identified that mixers and weighers from large bakeries had the highest exposures to both inhalable dust and fungal alpha-amylase among the different categories of bakery workers (p<.01). Currently, the maximum exposure limit for flour dust in the United Kingdom is 10 mg/m(3) (8-hour time-weighted average reference period). In this study 25% of the total dust results for bakers exceeded 10 mg/m(3), and interestingly, 63% of the individuals with exposure levels exceeding 10 mg/m(3) were weighers and mixers. Individuals who worked directly with flour improvers were exposed to higher levels of both inhalable dust and fungal alpha-amylase (p<.01) than those who were not directly handling these products. Before sensitive immunoassays were utilized for the detection of specific inhalable allergens, gravimetric analysis was often used as a surrogate. There was a weak relationship between inhalable dust and fungal alpha-amylase exposures; however, inhalable dust levels could not be used to predict amylase exposures, which highlights the importance of measuring both inhalable dust and fungal alpha-amylase exposures.
This study provided standard reference materials for fiber-counting by phase-contrast microscopy (PCM). PCM is subject to many sources of variation, including those dependent on the microscopist, so reference standards cannot be produced that are traceable to national or international standard units. Consensus standards using a "true value" agreed on by a number of laboratories may be acceptable. Reference slides for fiber-counting can be prepared using a proprietary process of grid overlay in which the fields of view defined by the grids are identifiable and relocatable. Multiple microscopists then can examine exactly the same areas of samples, reducing one source of potential variation. Twelve slides prepared from proficiency test samples of the American Industrial Hygiene Association (AIHA) Industrial Hygiene Laboratory Quality Program were used in this study, four each of chrysotile asbestos, amosite asbestos, and man-made mineral fibers. Five microscopists from AIHA-accredited laboratories, plus the inventor of the grid process, examined the slides in a blind study. This group represented commercial analytical companies, in-house corporate laboratories, research institutions, and universities. The six microscopists met to obtain consensus agreement on the fibers in each designated field classified as countable under National Institute for Occupational Safety and Health Method 7400. Slides and documentation were forwarded to AIHA for training or other purposes. Examination of the results by statistical methods showed that some microscopists' results were significantly different from others, even though all analysts would have been considered proficient with respect to the final consensus values. Although the reasons for the outliers are complex, this procedure may have value in selecting reference laboratories in proficiency test schemes, possibly leading to more defensible "true" values and tighter limits of variation.
It is essential to establish normative values of handgrip force in relation to factors influencing the force. This study developed a predictive equation that expresses the maximum force of the handgrip in relation to upper limb posture and gender. To create the equation, data from published studies on experimental results of maximum handgrip force in different upper limb postures were used. Selected were only those studies that describe upper limb posture during experiments clearly enough so that it could be transferred according to the Seven Degrees of Freedom Model, which unambiguously defines upper limb posture with values of seven angles. A predictive equation for male maximum handgrip force in relation to angles of wrist flexion/extension, wrist adduction/abduction, forearm pronation/supination, elbow flexion, shoulder flexion/extension, shoulder horizontal adduction/abduction, and arm medial/lateral rotation along the long axis was developed. Also developed was a mathematical formula that expresses maximum handgrip force for men in relation to maximum handgrip force for women. The equation is general and can be used for calculating norm values. It can also be applied to a specific population by performing an experimental study for one upper limb posture and assessing maximum force on the basis of the predictive equation for others.
A pilot installation was designed that simulates a surface treatment tank fitted with a push-pull ventilation system. The installation contained elements for measuring and controlling the operational variables (flow rate and tank temperature) and smoke generating equipment for injecting smoke through the holes of the push unit and from the tank surface. Visual observation and video recording of the flows involved meant it was possible to follow the qualitative behavior of the push flow rate along the tank surface and to identify any emissions not captured by the exhaust system. It was possible to differentiate the initial semifree push curtain, its impact with the tank surface, the wall jet that moved toward the exhaust, and its entrance into the exhaust. The methodology proposed is complemented by a quantitative technique for measuring the efficiency, using sulfur hexafluoride as tracer, which permits the causes and location of losses in the ventilation system to be determined.
The mass size distribution of beryllium aerosols generated in the various operational areas of a typical extraction and processing plant was studied using an eight-stage impactor sampler. The total concentration of beryllium in the plant was found to be well below the threshold limit value. The mean value of mass median aerodynamic diameter of beryllium particles observed for various operations ranged from 5.0-9.5 microm. The alveolar deposition for various operational areas was estimated to be 3-5% for nasal breathing and 9-13% for oral breathing based on the International Commission on Radiological Protection (ICRP) human respiratory tract model. Deposition during oral breathing was higher than during nasal breathing by approximately a factor of two to three. This study on exposure characterization was useful for reducing the respirable fraction of beryllium aerosol by optimizing the capture velocity and improving the quality of other control measures.
Aircraft engines emit an aerosol plume during startup in extremely cold weather that can drift into areas occupied by flightline ground crews. This study tested a personal sampler used to assess exposure to particles in the plume under challenging field conditions. Area and personal samples were taken at two U.S. Air Force (USAF) flightlines during the winter months. Small tube-and-wire electrostatic precipitators (ESPs) were mounted on a stationary stand positioned behind the engines to sample the exhaust. Other ESPs were worn by ground crews to sample breathing zone concentrations. In addition, an aerodynamic particle sizer 3320 (APS) was used to determine the size distribution of the particles. Samples collected with the ESP were solvent extracted and analyzed with gas chromatography-mass spectrometry. Results indicated that the plume consisted of up to 75 mg/m(3) of unburned jet fuel particles. The APS showed that nearly the entire particle mass was respirable, because the plumes had mass median diameters less than 2 micro m. These tests demonstrated that the ESP could be used at cold USAF flightlines to perform exposure assessments to the cold start particles.
An exposure system that allows large-scale exposure of animals to 1,6-hexamethylene diisocyanate (HDI)-based polyisocyanates at a stable concentration and aerosol size distribution was developed. The HDI polyisocyanate aerosol is generated by nebulizing a solution of a commercial polyisocyanate product dissolved in acetone. The aerosol is delivered with a constant airflow into a horizontal flow chamber. Complete mixing of aerosol in the chamber is ensured by a circulating fan. This method has been used to generate atmospheres containing HDI polyisocyanates at a concentration of 10.46+/-0.23 mg/m(3) over a 5-hour period. The overall mass median aerodynamic equivalent diameter was found to be 1.42 microm with a geometric standard deviation of 1.26. The HDI monomer concentration was 0.15+/-0.04 mg/m(3). The average chamber acetone concentration was determined to be 2481+/-222 ppm (mean+/-standard deviation). Different HDI polyisocyanate concentrations in the chamber can be achieved by altering the concentration of the commercial polyisocyanate product in acetone and the chamber flow rate. The described exposure system will be useful for performing toxicological studies involving HDI polyisocyanates.
A commercially available direct-reading instrument designed for personal monitoring of vapor phase hydrogen peroxide (VHP) was evaluated in the laboratory and the workplace. Monitoring VHP has gained increasing importance in the pharmaceutical industry because sterilization using VHP has proven to be a good alternative to previously used sterilizing methods. The current Occupational Safety and Health Administration impinger method for VHP measurements, based on bubbling air through an acid solution with subsequent laboratory analysis, is not practical for monitoring personal exposures. By employing an electrochemical sensor, the instrument evaluated provides real-time exposure data with auxiliary functions such as displaying concentrations in parts per million, data logging, and alarms. A double-dilution technique using a syringe pump was used to generate dynamic test atmospheres ranging from 0.2 to 10 ppm in an exposure chamber. Time-weighted average concentration data from the direct-reading instrument was compared with concentration data from the impingers. The overall accuracy was less than the +/-25%, National Institute for Occupational Safety and Health criterion. No significant differences in accuracy were observed at three humidity levels (i.e., 15, 50, and 80%). The instrument was similarly evaluated in a workplace under typical conditions. The results agreed within +/-0.2 ppm. Selected performance characteristics of the instrument also were investigated, including reproducibility, response and recovery times, calibration frequency, and suitability of the calibration adapter. Results of the investigation suggest that the instrument provides a means for simple and accurate monitoring of personal exposures to VHP in workplace environments.
Straight metalworking fluids (MWFs) were used to evaluate the potential for the loss of MWF mass from filters. Two methods were used to study the stability of MWF mass on filter media. The first was to spike known amounts of MWF onto polyvinyl chloride (PVC) filters, store the filters over silica gel desiccant, and take repeated gravimetric measurements of the filters at intervals of 1, 2, and 3 days. An MWF aerosol mist was generated in a test chamber and collected on PVC filters for the second experimental method. Additional clean air was drawn through a subset of filters (range 0.02-0.48 m(3)), which were then stored over silica gel prior to weighing. Losses due to desiccation were found in filters that had not been exposed to airflow, as well as for filters after aspiration. The losses occurring in spiked filters (range of mean 2.6-15.2%) were higher than those in collected filters (range 0.7-8.1%). The MWF aerosol mass collected on PVC filters decreased with the increasing volume of clean air passing through the filter. In a multiple regression model, to predict the loss of collected MWF due to desiccation, loading mass, fresh MWF, and air passing time of 10 min were significant predictors (p=.0001, R-2=.374). In particular, only air passage of 10 min was significantly higher (2.13%) than the reference air passage (p=.0054). The investigators concluded that MWF aerosol collected on PVC filters may be lost to evaporation under conditions typical of shipment, storage, and desiccation of sample filters, and with airflow through the filter.
The performances of eight sampling devices were tested with mineral dusts in the laboratory and in a talc production plant. The IOM sampler was chosen as the reference method for inhalable dust, and the IOM samplers provided with the porous plastic foam media were used as the reference methods for both the thoracic and respirable aerosols. The other size-selective instruments tested included the Respicon virtual impactor, the optical GRIMM aerosol monitor, and a two-stage cascade impactor with cut points of 10 and 4 microm. The 37-mm cassettes were also included both as open- and closed-face versions. The study confirmed the usability of the IOM samplers for mineral dust, not only in its original version for the inhalable fraction but also its modified versions for the thoracic and respirable fractions. A high correlation with the two-stage impactor results is an indication of good reproducibility. The results increased the evidence that the 37-mm cassette is a poor indicator of inhalable aerosol. The concentrations obtained with both cassette methods were not only systematically too low but also showed large collection efficiency variability. Therefore, the results cannot be corrected by using correction factors. The concentrations of inhalable aerosol measured with the Respicon were generally low, but its performances for the thoracic and respirable fractions were closer to those for the reference samplers. The results also indicate that the GRIMM monitor is well-suited for such mineral dust determinations when very good accuracy is not required, but the immediate availability of the result is more important.