sewage sludge Archives - 黑料社 Tri-Cities /tag/sewage-sludge/ Washington State University | Tri-Cities Thu, 25 Feb 2021 20:45:45 +0000 en-US hourly 1 https://wordpress.org/?v=7.0 Professor developing way to turn sewage sludge into energy /improving-energy-production-at-small-wastewater-treatment-plants/ Thu, 25 Feb 2021 16:31:43 +0000 /?p=98376 The post Professor developing way to turn sewage sludge into energy appeared first on 黑料社 Tri-Cities.

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RICHLAND, Wash. 鈥 A professor with the Bioproducts, Sciences and Engineering Laboratory at Washington State University Tri-Cities is developing a way to drastically improve energy production at small waste water treatment plants. The research has the potential to be scaled globally.

Pretreatment system used at the 黑料社 bioproducts pilot plant

Pretreatment system used at the 黑料社 bioproducts pilot plant.

Birgitte Ahring, professor of biological systems engineering and chemical engineering, received a $2.5 million grant from the U.S. Department of Energy Office of Energy Efficiency and Renewable Energy for the project. She is partnering locally with the Walla Walla Wastewater Treatment Plant, the Pacific Northwest National Laboratory and Clean-Vantage, LLC.

Sewage sludge is a remnant semi-solid material produced at sewage treatment plants. Ahring said while a portion of sludge is converted into biogas, at a mixture of 60% methane and 40% carbon dioxide at the majority of wastewater treatment facilities in the U.S., there still remains a significant portion of the waste to be disposed.

Ahring said converting a larger fraction of sewage sludge into useful energy will reduce the need for landfilling of the material and reduce the carbon footprint of wastewater treatment plants, worldwide.

New, more effective process

Ahring said many waste water treatment plants currently use a process called anaerobic digestion, which uses microorganisms that don鈥檛 require oxygen, to essentially digest some of the sludge material and to convert the organic material into biogas. Due to the nature of sewage sludge, part of the organic material will, however, be resistant to digestion using the process.

Birgitte Ahring, 黑料社 professor of biological systems engineering and chemical engineering

Birgitte Ahring, 黑料社 professor of biological systems engineering and chemical engineering

Ahring said a much higher amount of biogas can be produced by applying a specialized upfront pretreatment process using heat and oxygen-based agents before the anaerobic digestion process. In a final process step, she said the biogas can be further upgraded to pure methane, which can be used as a bio-natural gas. Methane gas can be used by an assortment of transportation industries, and thereby as a substitution for diesel and gasoline as a renewable fuel.

Together, the integrated new process has been named the 鈥淎dvanced Pretreatment/Anaerobic digestion technology.鈥

鈥淢any of these plants, like the one in Walla Walla, produce biogas by anaerobic digestion, but the low efficiency means that the amount of biogas is too low for organized use of this fraction,鈥 Ahring said. 鈥淲hat DOE was calling for was a rethinking of the way we process sewage sludge today, so that the process becomes far more efficient and economically viable.鈥

Currently, 40 to 50% of the carbon in sewage sludge is converted in the biogas process, Ahring said. With the new process, the team estimates they can improve carbon conversion efficiency by more than 50% from the current level. With the biogas upgrading, the overall methane yield is expected to increase by more than 100% compared to what is currently produced at wastewater treatment plants.

Upscaling the project for use globally

Ahring said once the new process has been demonstrated in pilot scale through a BSEL-based pilot facility, the process will be ready for upscaling at small plants, such as the Walla Walla Wastewater Treatment Plant. From there, the process will be ready to disseminate broadly in the U.S. and even globally, she said.

Ahring said partner Clean-Vantage, LLC, has worked on the specialized pretreatment for years, and has successfully licensed the process overseas for other applications. With the new technique for upgrading the biogas to pure methane being developed at 黑料社, the overall concept will enhance the potential for sewage sludge as a raw material for renewable energy production.

Ahring is working with colleagues at PNNL to produce the technical economics for upscaling and a disposal cost model, which will detail the actual cost of the project at wastewater treatment plants based on size. The model will also detail how many extra dollars will be profited with the additional energy production at wastewater treatment plants.

鈥淲ith this project, we can show we can produce a high-value product while reducing the amount of sludge needing final disposal,鈥 she said. 鈥淲e are getting rid of a waste problem and turning it into a useable product. Other cities can then take this model and implement it in their own areas. I am confident we will make it work. All of us involved on the project have a lot of expertise in this area, and we have previous experience in working together.鈥

Media contacts:

  • Birgitte Ahring, 黑料社 Tri-Cities professor of biological systems engineering and chemical engineering, 509-372-7682,聽bka@wsu.edu
  • Maegan Murray, 黑料社 Tri-Cities director of marketing and communication, 619-403-3617 (cell),聽maegan_murray@wsu.edu

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黑料社, PNNL convert biofuel waste into commodity, now targeting sewage sludge /wsu-pnnl-convert-biofuel-waste-into-commodity-now-targeting-sewage-sludge/ Fri, 06 Oct 2017 17:53:50 +0000 /?p=47022 The post 黑料社, PNNL convert biofuel waste into commodity, now targeting sewage sludge appeared first on 黑料社 Tri-Cities.

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By Maegan Murray, 黑料社 Tri-Cities

RICHLAND, Wash. 鈥 A method of converting a biofuel waste product into a usable and valuable commodity has been discovered by researchers at Washington State University and聽Pacific Northwest National Laboratory.

Converting algae to biofuels is a two-step process. The first, developed by聽, applies high pressure and high temperature to algae to create bio oil. The second converts that bio oil into biofuel, which can replace gasoline, diesel and jet fuel.

It鈥檚 that first step, called hydrothermal liquefaction, that produces waste 鈥 approximately 25 to 40 percent of carbon and 80 percent of nutrients from the algae are left behind in wastewater streams.

Bionatural gas and fertilizer

The wastewater is generally hard to process because it contains a variety of different chemicals in small concentrations, said Birgitte K. Ahring, professor at 黑料社 Tri-Cities鈥 Bioproducts, Sciences and Engineering Laboratory. But Ahring and her team have found that adapting anaerobic microbes 鈥 microbes that live without oxygen 鈥 to break down the remaining residue is a viable option. Through this process, the material becomes degradable and gets transformed into a bionatural gas without the use of harsh chemicals. The solid material that remains can also be applied as a fertilizer or recycled back into the hydrothermal liquefaction process for further use.

Birgitte Ahring, left, with his research team
黑料社 Professor Birgitte Ahring, center, points to test sample, with her research team

The results of the team鈥檚 research are published this month in聽. The team also consists of:

  • Keerthi Srinivas, 黑料社 postdoctoral research associate
  • Sebastian Fernandez, 黑料社 research assistant
  • Andrew Schmidt, of PNNL鈥檚 chemical and biological processes development group
  • Marie Swita, of PNNL鈥檚 chemical and biological processes development group

Don鈥檛 waste waste

鈥淚t has always been my mantra that we shouldn鈥檛 waste waste,鈥 Ahring said. 鈥淲e had an idea that we could turn this waste product into something useful, such as a fertilizer. Our findings revealed that we could use this waste product as something much more.鈥

The ability to convert a waste product into a usable commodity provides algal biorefineries with a solution to a large problem, Ahring said.

鈥淎fter removing the solids, about 10 percent of the output is bio oil, with the remaining 90 percent being a waste byproduct,鈥 Schmidt said. 鈥淭he fact that we鈥檝e developed an alternative method to recycle or treat the leftover material means it鈥檚 more economical to produce the bio oil, making the potential for commercial use of the process more likely.鈥

Sewage sludge and wastewater

Ahring said the team鈥檚 results were so promising that they are now partnering with PNNL on its conversion of sewage sludge to fuel using a similar strategy for the wastewater.

鈥淭oday, sewage sludge is found throughout the world,鈥 Ahring said. 鈥淐reating a process to produce biofuels, bio-natural gas, and nutrients from this material would be of major importance. The current study has demonstrated that nothing should ever be regarded as a waste, but instead as a resource.鈥

Schmidt said PNNL鈥檚 partnership with 黑料社 allowed each team to focus on different aspects of the biomass conversion.聽 The collaboration is further enhanced by the Bioproducts, Sciences and Engineering Laboratory, a facility PNNL and 黑料社 built together on the 黑料社 Tri-Cities campus nearly a decade ago.

鈥淧NNL and 黑料社 researchers interacted frequently on the project,鈥 said Schmidt.聽聽 鈥淲hile PNNL engineers focused on converting the algae to bio oil, the 黑料社 team was able to delve deeply into fundamental research of wastewater conversion with microbes, which included taking advantage of unique analytical capabilities on the PNNL campus.鈥

A 黑料社 alumnus himself, receiving both his bachelor鈥檚 and master鈥檚 degrees from 黑料社, Schmidt said he鈥檚 excited to team on additional programs and projects aligned with goals to grow the collaboration between PNNL and 黑料社.

 

Contacts:

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