• 제목/요약/키워드: Exposure to airborne fiber

검색결과 23건 처리시간 0.019초

중소도시, 대도시 및 산업지역에서 채취한 미세분진 ($PM_{2.5}$)과 입자상 다환방향족탄화수소의 계절적인 분포 특성 (Characteristics of Seasonal Distributions of Fine Particles ($PM_{2.5}$) and Particle-Associated Polycyclic Aromatic Hydrocarbons in Urban, Metropolitan and Industrial Complex Sites)

  • 김희갑;정경미;김태식
    • Environmental Analysis Health and Toxicology
    • /
    • 제21권1호
    • /
    • pp.45-56
    • /
    • 2006
  • This study was conducted to investigate seasonal distributions of fine particles ($PM_{2.5}$) and associated polycyclic aromatic hydrocarbons (PAHs) at three cities. $PM_{2.5}$ samples were collected on glass fiber filters at urban (Chuncheon), metropolitan (Seoul), and industrial complex sites (Ulsan) from September, 2002 to February, 2004 using the Andersen FH 95 Particulate Sampler. About five 24-hour samples were collected from each site per season. The filters were analyzed for mass and six selected PAHs concentrations. $PM_{2.5}$ concentrations were the highest either in winter or spring, which could be attributed to the increase of fossil fuel combustion in winter or the transport of yellow sand to the Korean peninsula from China in spring, respectively. Regional $PM_{2.5}$ concentrations were higher in the order of Seoul>Chuncheon>Ulsan without statistical difference among cities. The filters were extracted using dichloromethane in an ultrasonicator and analyzed for six PAHs (anthracene, fluoranthene, pyrene, benzo[a]anthracene, chrysene, and benzo[a]pyrene) with HPLC. Total PAHs concentrations were statistically different among seasons in each site, and the highest concentrations were observed in winter at each sampling site. For total samples collected, the median total PAHs concentrations in Chuncheon ($4.6ng/m^3$) and Seoul ($4.4ng/m^3$) were approximately two times higher than that in Ulsan ($2.1ng/m^3$). Chrysene was a component found in the highest proportion among total PAHs at each site. Carcinogenic risks calculated based on the BaP toxic equivalency factors (TEFs) over the whole sampling period were higher in the order of Chuncheon>Seoul>Ulsan. This study suggests that the atmosphere of Chuncheon is contaminated with particulate matter and PAHs at the levels equivalent to those of Seoul and that an appropriate measure needs to be taken to mitigate human health risks from inhalation exposure to airborne fine particles.

충북지역 폐석면광산 인근주민의 석면노출과 건강위해도 평가 (Asbestos Exposure and Health Risk Assessment for the Residents Near the Abandoned Mining Area in Chungbuk, Korea)

  • 신진호;오석률;황순용;정숙녀;김지희;남은정;이진효;최희진;엄석원;채영주;박철휘
    • 대한환경공학회지
    • /
    • 제34권5호
    • /
    • pp.345-350
    • /
    • 2012
  • 충북의 D-석면광산 인근지역에서 석면이 포함된 토양으로 부터 대기 중으로 비산되는 석면조사와 주민들의 일상생활이나 토양을 경작하는 농업활동 등의 석면노출이 가능한 주요활동에 대한 인체 위해도를 평가하여, 지역주민의 건강 위해성을 미연에 방지하는 대책을 수립하고자 본 연구를 수행하여 다음과 같은 결론을 얻었다. 첫째, 대기 중 석면 모니터링을 위해 바람의 방향을 고려하여 지역주민의 거주지 근처에 시료채취지점을 선정하였다. 이를 위상차현미경으로 분석한 결과, 20개 지점 중에서 12개 지점은 검출한계 이하이고, 8개 지점도 0.0025~0.0029 f/cc 범위로 석면안전관리법의 공기질 관리기준 0.01 f/cc 보다 매우 낮은 수준이었다. 또한 투과전자현미경으로 이 섬유상 물질을 분석한 결과도 석면이 아니거나 검출한계 이하로 나타났다. 일반 대기 중 석면의 악영향은 거의 없는 것으로 추정된다. 둘째, 현장조사와 지역주민의 설문조사를 토대로 활동근 거시료채취 시나리오를 현지 실정에 맞게 설정하였으며, 그 중에서 예초기 작업과 흙파기, 마당쓸기 시나리오의 경우에 위해도의 95% 신뢰상한치가 석면에 대한 활동별 초과생애발암위해도의 허용치 $1{\times}10^{-4}$을 초과하는 것으로 나타났다. 토양 교란활동이 수반되는 농경활동에는 토양에 함유된 석면섬유상 물질이 많이 비산되는 것으로 판단되며, 지역주민의 세심한 주의가 요구된다. 따라서 이에 대한 결과를 바탕으로 환경성 노출원을 가능하다면 원천적으로 차단하여 석면노출을 최소화하고, 지역주민들에게 석면노출 가능성이 있는 환경에 대해 널리 알림으로써 토양을 교란하여 석면이 비산되는 행위를 제한하는 등의 석면으로 인한 건강피해를 줄이는 체계적인 관리대책이 강구되어야 할 것이다.

Progress of Composite Fabrication Technologies with the Use of Machinery

  • Choi, Byung-Keun;Kim, Yun-Hae;Ha, Jin-Cheol;Lee, Jin-Woo;Park, Jun-Mu;Park, Soo-Jeong;Moon, Kyung-Man;Chung, Won-Jee;Kim, Man-Soo
    • International Journal of Ocean System Engineering
    • /
    • 제2권3호
    • /
    • pp.185-194
    • /
    • 2012
  • A Macroscopic combination of two or more distinct materials is commonly referred to as a "Composite Material", having been designed mechanically and chemically superior in function and characteristic than its individual constituent materials. Composite materials are used not only for aerospace and military, but also heavily used in boat/ship building and general composite industries which we are seeing increasingly more. Regardless of the various applications for composite materials, the industry is still limited and requires better fabrication technology and methodology in order to expand and grow. An example of this is that the majority of fabrication facilities nearby still use an antiquated wet lay-up process where fabrication still requires manual hand labor in a 3D environment impeding productivity of composite product design advancement. As an expert in the advanced composites field, I have developed fabrication skills with the use of machinery based on my past composite experience. In autumn 2011, the Korea government confirmed to fund my project. It is the development of a composite sanding machine. I began development of this semi-robotic prototype beginning in 2009. It has possibilities of replacing or augmenting the exhaustive and difficult jobs performed by human hands, such as sanding, grinding, blasting, and polishing in most often, very awkward conditions, and is also will boost productivity, improve surface quality, cut abrasive costs, eliminate vibration injuries, and protect workers from exposure to dust and airborne contamination. Ease of control and operation of the equipment in or outside of the sanding room is a key benefit to end-users. It will prove to be much more economical than normal robotics and minimize errors that commonly occur in factories. The key components and their technologies are a 360 degree rotational shoulder and a wrist that is controlled under PLC controller and joystick manual mode. Development on both of the key modules is complete and are now operational. The Korean government fund boosted my development and I expect to complete full scale development no later than 3rd quarter 2012. Even with the advantages of composite materials, there is still the need to repair or to maintain composite products with a higher level of technology. I have learned many composite repair skills on composite airframe since many composite fabrication skills including repair, requires training for non aerospace applications. The wind energy market is now requiring much larger blades in order to generate more electrical energy for wind farms. One single blade is commonly 50 meters or longer now. When a wind blade becomes damaged from external forces, on-site repair is required on the columns even under strong wind and freezing temperature conditions. In order to correctly obtain polymerization, the repair must be performed on the damaged area within a very limited time. The use of pre-impregnated glass fabric and heating silicone pad and a hot bonder acting precise heating control are surely required.