. Scientific Frontline: Biomass Co-Digestion: Making Dairy Biogas Profitable

Thursday, October 8, 2026

Biomass Co-Digestion: Making Dairy Biogas Profitable

Anaerobic digesters, such as this system at Penn State, can convert manure and other organic materials into biogas. The study evaluated the economics of adding biomass to dairy manure digestion to increase energy production
Photo Credit: Pennsylvania State University
(CC BY-NC-ND 4.0)

Scientific Frontline: Extended "At a Glance" Summary
: Grass-to-Gas Anaerobic Co-Digestion

The Core Concept: Co-digestion is a biological process that combines dairy cow manure with plant biomass within an anaerobic digester to maximize methane yield and generate renewable natural gas or electricity.

Key Distinction/Mechanism: While traditional manure-only anaerobic digestion frequently struggles to achieve economic viability due to high operational costs, supplementing the process with cover crops or agricultural residues—specifically winter rye—significantly increases methane production and drastically reduces the capital support required for a facility to break even.

Major Frameworks/Components:

  • Anaerobic Digestion: The foundational biological process where microorganisms break down biodegradable organic matter in the absence of oxygen.
  • Biomass Selection: The strategic use of switchgrass, winter rye, and corn stover as supplemental feedstocks, with winter rye yielding the highest volume of biogas.
  • Systems-Level Modeling: An integrative framework that combines engineering design, feedstock choice, methane yield, and financial market conditions to assess farm-scale feasibility.
  • End-Use Scaling Dynamics: The principle that larger processing scales improve the economics of renewable natural gas production, whereas they may decrease the financial attractiveness of electricity generation.

Branch of Science: Agricultural Engineering, Bioenergy Research, Environmental Science.

Future Application: The publicly available modeling framework can be adapted by engineers and policymakers to evaluate and optimize bioenergy projects across diverse farm sizes, geographic locations, and feedstock availabilities.

Why It Matters: The dairy industry is a major source of agricultural greenhouse gas emissions; implementing profitable co-digestion systems provides a financially sustainable method to mitigate methane pollution while producing localized renewable energy.

Anaerobic digestion can help dairy farms manage manure while producing renewable energy, but many projects struggle economically. A key question is whether adding crop residues or dedicated biomass to manure can make these systems more financially viable.
Photo Credit: Pennsylvania State University
(CC BY-NC-ND 4.0)

The US dairy industry is a major contributor to agricultural greenhouse gas emissions, with manure storage and handling representing a significant source of methane. Anaerobic digestion—a biological process in which microorganisms break down biodegradable organic matter—of cow manure has been widely studied as a strategy to mitigate manure-related emissions while producing renewable energy. That energy comes in the form of biogas that can be used to generate electricity or make renewable natural gas. But adoption of the strategy has been constrained by costs. Now, a team led by researchers at Penn State may have found a way to make the process profitable.

The researchers, who recently published their findings in Biomass Conversion and Biorefinery, reported that mixing manure with plant biomass can increase methane production—which is necessary for biogas—and improve the economic feasibility of farm-scale anaerobic digestion. They found that winter rye, a tough, cold-hardy cereal grain planted in the fall to protect and enrich the soil over the winter months, is particularly useful for this application.

But anaerobic digester projects remain highly dependent on financial incentives, so they carry substantial investment risk for farmers, noted study senior author Juliana Vasco-Correa, assistant professor of agricultural and biological engineering in Penn State’s College of Agricultural Sciences. The problem, she explained, is that building and operating a digester is expensive, while the revenue from selling electricity or gas may not be high enough.

“Anaerobic digestion can help dairy farms manage manure while producing renewable energy, but many projects struggle economically,” she said. “A key question is whether adding crop residues or dedicated biomass to manure can make these systems more financially viable. The results of our study demonstrate that co-digestion with plant material can enhance the economic performance of manure-based anaerobic digestion.”

Winter rye, also called cereal rye, shown here, is the most widely planted cover crop in Pennsylvania. In the study, winter rye was the most promising crop because it yielded more biogas.
Photo Credit: Pennsylvania State University
(CC BY-NC-ND 4.0)

In the study, the researchers modeled a 1,000-cow dairy farm in the Northeast and compared manure-only anaerobic digestion with co-digestion using switchgrass, winter rye, and corn stover—a strategy called grass-to-gas. They included switchgrass because it is a perennial grass that is good for the soil and can grow on marginal land; winter rye because it can grow in between cash crops, so it does not need additional land; and corn stover because it is an agricultural residue.

The team evaluated both electricity generation, which was the most common use of the biogas for many years, and renewable natural gas, which is the most common new use for biogas, due to its eligibility for federal compliance credits as a transportation fuel. Winter rye was the most promising crop, they found, because it yielded more biogas.

Instead of looking at one “best-case” economic scenario, the researchers combined detailed process modeling with engineering design, performance metrics, and financial realities to evaluate whether the technology could succeed at farm scale. They evaluated how feedstock choice, methane yield, system scale, biomass cost, and market conditions interacted, and found that co-digestion can substantially improve project economics. For example, the capital support—usually from grants or loan guarantees—needed to break even on the building and operating of a digester decreased from about 47% for manure-only digestion to as little as 4% in the best-performing co-digestion scenario.

One of the more interesting systems-level findings, according to study first author Camila Valderrama, who graduated from Penn State with a master's degree in agricultural and biological engineering earlier this year, was that increasing scale did not improve every pathway.

“Larger systems improved the economics of renewable natural gas but could make electricity production less attractive, showing that scale and end use need to be considered together,” she said.

The modeling framework can be adapted to other farm sizes, feedstocks, locations, and market conditions, making it a tool for evaluating agricultural bioenergy projects rather than just a one-time case study, Vasco-Correa pointed out. The models, code, and datasets are publicly available, she added, allowing other researchers and decision-makers to reproduce the work and adapt the framework to new systems.

“The study shows that improving agricultural bioenergy deployment is not simply a matter of maximizing methane production,” she said. “Technical performance, farm scale, biomass supply, energy markets, and policy incentives all have to work together for a project to succeed.”

Additional information: Elmin Rahic, research scientist with the Bioeconomy Institute at Iowa State University, and Hunter Porcano, who graduated from Penn State in 2025 with a bachelor of science degree in biological engineering, contributed to the research.

Funding: This work was supported in part by the Agriculture and Food Research Initiative Sustainable Agricultural Systems program, project award number 2020-68012-31824 from the US Department of Agriculture’s National Institute of Food and Agriculture, through the Consortium for Cultivating Human And Naturally reGenerative Enterprises, or C-CHANGE. 

Disclaimer: This content is solely the responsibility of the authors and does not necessarily reflect the views of the funders.

Published in journal: Biomass Conversion and Biorefinery

Title: Feasibility of Grass-to-Gas on dairy farms: a probabilistic techno-economic comparison of renewable natural gas and electricity production

Authors: Camila Valderrama, Elmin Rahic, Hunter Porcano, and Juliana Vasco-Correa

Source/Credit: Pennsylvania State University | Jeff Mulhollem

Edited by: Scientific Frontline

Reference Number: eng100826_03

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