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He Dr. Mamlouk is a fellow of the American Society of Civil Engineers and a member of several other professional societies. John P. In addition to materials, Dr. Zaniewski teaches graduate and undergraduate courses in pavement materials, design and management, and construction engineering and management. Zaniewski has been the principal investigator on numerous research projects for state, federal, and international sponsors. He is a member of several professional societies and has been a registered engineer in three states.
He is the director of the WV Local Technology Assistance Program and has been actively involved in adult education related to highways. Customer Reviews, including Product Star Ratings help customers to learn more about the product and decide whether it is the right product for them. Instead, our system considers things like how recent a review is and if the reviewer bought the item on Amazon. It also analyzed reviews to verify trustworthiness.
Civil and Construction Engineering Materials: Properties, Uses, and Evaluations Materials for Civil and Construction Engineers helps readers understand and select the materials involved in supporting the infrastructure needs of society--from buildings, to water and treatment distribution systems, to dams, highways, and airport pavements. Best Crafting Books. See her picks. Frequently bought together. Total price:. To see our price, add these items to your cart.
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Russell Hibbeler. Braja M. Aslam Kassimali. Design of Reinforced Concrete. Jack C. Principles of Foundation Engineering. Next page. About the Author Michael S. Tell the Publisher! I'd like to read this book on Kindle Don't have a Kindle? Customer reviews. How customer reviews and ratings work Customer Reviews, including Product Star Ratings help customers to learn more about the product and decide whether it is the right product for them.
Learn more how customers reviews work on Amazon. Top reviews Most recent Top reviews. Top reviews from the United States. There was a problem filtering reviews right now. The sediment microbial fuel cell SMFC generates electrical power by oxidizing organic matter in marine sediments using oxygen in the water.
SMFCs exploit the naturally occurring transition from oxic water to anaerobic sediment in marine environments. In wastewater treatment plants WWTPs there is a similar environment, which opens up the possibility for power generation. As much as 50 percent of energy consumed by WWTPs is for the aeration of wastewater to oxidize organic matter. This modeling project uses data from the Vegetative Environmental Buffers experiments to modify a gaussian plume model to predict the concentration distribution of particulate matter, volatile organic compounds, and ammonia released from the fan of a poultry house.
This model will be used to compare simulated conditions when there is no vegetative buffers and measured conditions when there is vegetative buffer. This work will be used to support assumptions that vegetative buffers can decrease the concentration of pollutants released from by the fan. The project focuses on the fate of organic pollutants throughout the wastewater treatment process; more specifically, how various treatment processes, such as activated sludge, nitrification, and anaerobic digestion, influence contaminant concentrations and formation of degradation products.
Several highly persistent organic pollutants have been extensively used by industry and agriculture. While many of them have been banned, many sites still contain levels that pose ecological risks. Here, we are investigating if adding organic amendments will reduce the bioavailability of POPs, such as DDT, in soil. We use a combination of field and laboratory studies. If proven efficient, it will be a much more environmentally friendly form of remediation than methods currently used.
We are also working on the development of a chemical methodology to determine POPs bioavailability and thus, potential risk. During , DCWater installed a new process that produces Class A biosolids product, which can be safely used as a fertilizer in homes and urban areas. The process is a combined thermal hydrolysis and anaerobic digestion and the impact of this new process in the concentration of persistent organic pollutants is widely unknown.
This research project aims to identify the impact of this new process in PBDE concentration in the new Class A biosolids compared to the previous process which produced Class B material. Though Class A material produced always meets regulations set by EPA, organic pollutant presence or absence may be useful information in the use of this product for certain applications.
Moreover, once the impact of this new process is known, it may be easier to predict the concentrations and impact on similar chemicals. Application of biosolids to agricultural fields provides a ready source of nutrients instead of using commercial fertilizers. However, there are concerns regarding odors caused by specific volatile organic compounds, which can lead to public opposition and failure of biosolid application programs.
The goal of this research is to increase the understanding of odor related compound formation and release from biosolids at an advanced wastewater treatment plant, and on the use of on-line odor monitoring technology E-nose. The results of this research will support decision-making tools for reducing odors in the final biosolids material.
Poultry producers and scientists are working together to use vegetative emission buffers VEBs and scrubbers to capture ammonia, volatile organic compounds, and particulate matter. Many poultry producers plant VEBs e. This project tests the ability of VEBs and scrubbers to manage airborne poultry emissions. The goal of this project is to help poultry producers adopt effective and economical strategies to improve their environmental performance and meet requirements of air and water quality.
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