Abstract
Introduction & Background Modern wastewater treatment facilities are increasingly transitioning from simple disposal models to sophisticated resource recovery hubs in response to rising operational costs and stringent environmental mandates. Key drivers for this shift include the escalating expense of biosolids hauling and disposal, the necessity of achieving net-zero greenhouse gas (GHG) emissions, and the need to mitigate emerging contaminants such as per- and polyfluoroalkyl substances (PFAS). Central to this evolution is the Thermal Hydrolysis Process (THP), a pre-treatment technology that enhances anaerobic digestion (AD) by improving sludge biodegradability, increasing volatile solids destruction, and maximizing biogas yields. Beyond energy benefits, THP has emerged as a critical process for reducing the biosolids hauling and transport costs by enhancing the dewaterability of biosolids. This study evaluates the technical performance, strategic selection, and operational integration of THP system based on global portfolio of case studies from large-scale regional hubs in Scotland and Australia to comprehensive facility plans in North America and the United Kingdom. THP has emerged as a critical pre-treatment to conventional mesophilic anaerobic digestion (AD), enabling wastewater utilities to transition towards carbon neutrality, enhance resource recovery (biogas, biomethane, and CO2), and ensure the production of high-quality Class A biosolids. Objectives The following technical objectives would be the key focus of this paper 1. Analyze Strategic Selection Criteria and Decision Modelling for THP 2. Evaluate Technical Performance and Energy Neutrality of Integrated THP system 3. Assess Environmental Sustainability and Decarbonization Pathways 4. Investigate Operational Resilience and Debottlenecking Methodology The objectives of this paper will be covered through global project case studies at different scales covering facility planning, solids treatment alternatives assessment, design considerations and lessons learned. Results Case Study 1 - Sand Island Wastewater Treatment Plant, United States - The Sand Island Wastewater Treatment Plant (SIWWTP) in O'ahu, Hawaii is currently undergoing a phased upgrade to achieve full secondary treatment standards by 2035. The project involves processing a unique blend of primary sludge (PS), Membrane Bioreactor (MBR) waste activated sludge (WAS), and Aerobic Granular Sludge (AGS) WAS. Given limited space and disposal options on the island, a comprehensive solids alternatives analysis (Figure 1) was conducted based on financial (capital and O&M costs) and non-financial criteria (O&M complexity, technology maturity, product application, and footprint). The alternative with THP followed by conventional AD without the dryer was ultimately selected for the Phase 2 plant expansion [1]. This decision was based on financial and non-financial considerations, as it eliminates the costs associated with the dryer, loadout, and storage facilities, while enabling the use of excess biogas for on-site power generation via a CHP system or off-site fuel use. Case Study 2 - City of Gold Coast, Australia - This project examines how the City of Gold Coast can transform its biosolids management to lower operational costs and achieve net zero greenhouse gas emissions by 2050 through a regional biosolids facility. By comparing four distinct treatment pathways (Figure 2), the study evaluates the trade-offs between conventional methods and advanced technologies like thermal hydrolysis and pyrolysis. The findings highlight that while thermal treatment is essential for destroying emerging contaminants like PFAS, its environmental success depends heavily on maintaining a positive energy balance and leveraging carbon sequestration through biochar. Ultimately, integrating advanced digestion with thermal processes offers the most sustainable solution, significantly reducing both waste volume and the overall carbon footprint of sewage treatment. The assessment found that Centralized THP system was the only alternative producing a daily net electrical energy surplus higher than business-as-usual (BAU), yielding a net excess of 1,300 kWe in comparison to conventional approach [2]. Case Study 3 - Strongford Regional Facility, United Kingdom - This project evaluates the operational shortcomings and contractual compliance of the Strongford THP during its initial phases. This case study highlights and identifies critical infrastructure bottlenecks, such as undersized feed pumps, inefficient steam recovery, and unreliable boiler performance, which have prevented the facility from reaching its target processing capacity. Key themes include a lack of redundancy and maintenance access across the pre-THP and dewatering systems, alongside a failure to meet specific contractual design requirements regarding sludge storage and heat recovery. Ultimately, the document serves as a roadmap for identifying technical solutions and performance improvements necessary to ensure the site's long-term resilience and throughput efficiency. Case Study 4 - Daldowie Advanced Anaerobic Digestion Facility, Scotland - This project details a major infrastructure transition for Scottish Water, as it prepares to take over and modernize several waste treatment facilities from private operators. The project planning progression timeline is shown in Figure 3. Daldowie serves as a massive regional hub, processing approximately 60% of all sewage-derived biosolids in Scotland (85,000 tDS/year). By consolidating operations into a high-capacity facility, the initiative aims to maximize energy recovery through biogas and significantly lower the carbon footprint of waste management. The site utilizes four Cambi B6-4 THP trains followed by digestion in series to achieve greater solids destruction. The overall simplified plant process flow diagram is shown in Figure 4. The facility aims for 90,000 MWhr/yr of electricity export or 2 million cu. ft/day of biomethane export and includes CO2 recovery at a flow rate of ~2,200 lb/hr for pure liquid CO2 production leading to 30,000 tCO2e/yr of GHG reduction. Conclusions The comprehensive evaluation of global case studies confirms that Thermal Hydrolysis is a pivotal technology for transitioning wastewater utilities into sustainable resource recovery hubs. While not always the lowest capital cost solution, the holistic benefits associated with THP include significant sludge volume reduction, increased digester capacity, energy recovery, and reliable Class A biosolids product quality makes it an increasingly compelling choice for long-term biosolids management. Furthermore, THP combined with AD facilitates advanced energy and resource recovery, supports the circular economy, and enhances regulatory resilience required for future proofing assets. In addition, THP serves as an efficient preparatory step for downstream integration with high-temperature thermal treatment technologies such as pyrolysis and gasification. This combined approach mitigates the risks posed by emerging contaminants like PFAS in the resulting biosolids product.
This paper was presented at the WEF Residuals, Biosolids, and Treatment Technology Conference in Kansas City, MO, May 11-14, 2026.
Author(s)Sivaprasad, Shyam, Borkowski, Vanessa, Le Roux, Andre, Starrenburg, Daniel, Regmi, Pusker, Arabi, Sara
Author(s)S. Sivaprasad1, V. Borkowski1, A. Le Roux, D. Starrenburg, P. Regmi1, S. Arabi1
SourceProceedings of the Water Environment Federation
Document typeConference Paper
Print publication date May 2026
DOI10.2175/193864718825160237
Volume / Issue
Content sourceResiduals, Biosolids and Treatment Technology Conference
Copyright2026
Word count17