Energy Recovery from Garden and Park Waste by Hydrothermal Carbonization with Process Water Recycling

Восстановление энергии из садовых и парковых отходов гидротермальным карбонизацией с рециркуляцией технологической воды
Juan J. Rodrı́guez, M.A. de la Rubia, R.P. Ipiales, Diana Carolina Pimentel Betancurt, Elena Díaz, A.F. Mohedano
2024-03-21

anaerobic digestion of process watergarden and park wastehydrochar energy recoveryhydrothermal carbonizationprocess water recycling
High Resolution Image Download MS PowerPoint Slide This study aims to obtain a carbonaceous material with suitable properties to be used as a solid biofuel by recycling process water from hydrothermal carbonization (HTC) of garden and park waste (GPW). The research is focused on maximizing mass yield and energy recovery as well as facilitating the treatment of the liquid fraction throughout reusing cycles of the liquid fraction. Process water recycling moderately improved the mass performance of the hydrochar, resulting in a higher energy recovery of almost 20 percentage points compared with that achieved (less than 79%) with conventional HTC (GPW + freshwater feed). An improvement in char fuel quality was observed, showing more suitable morphological, physical, and chemical characteristics, higher reactivity and combustion temperature, and lower probability of ash sintering. Successive process water reuse cycles allowed some increase in energy yield but, at the same time, degraded the quality of hydrochar as a biofuel. Process water composition showed an increase in chemical oxygen demand and total organic carbon, which almost doubled after three successive reuse cycles. The concentration of volatile fatty acids increased around 5-fold (up to 20 g L –1 ), with acetic acid accounting for 85% of the total. Subsequent anaerobic digestion of the process water removed up to 75% of the COD and yielded a biogas with high methane content (225–302 N mL CH 4 g –1 COD added ). Recycling of the process water significantly improved the total energy recovery (hydrochar + methane) to 90% after a single recycling, compared to 84% achieved with conventional HTC and subsequent anaerobic treatment of the resulting process water.
1
Hydrochar produced with recycled process water exhibited improved fuel quality: better morphological, physical, and chemical characteristics, higher reactivity and combustion temperature, and lower ash sintering probability.
2
Process water composition worsened with reuse: COD and total organic carbon nearly doubled after three reuse cycles, and volatile fatty acids increased about 5-fold to ~20 g L–1, with acetic acid ≈85% of the total.
3
Recycling process water improved total energy recovery (hydrochar + methane) to 90% after a single recycling, versus 84% for conventional HTC followed by anaerobic treatment.
4
Recycling process water in HTC of garden and park waste moderately improved hydrochar mass yield and raised energy recovery by almost 20 percentage points versus conventional HTC with freshwater feed.
5
Subsequent anaerobic digestion of process water removed up to 75% of COD and produced high-methane-content biogas (225–302 N mL CH4 g–1 CODadded).
6
Successive reuse cycles of process water increased energy yield further but progressively degraded hydrochar quality as a biofuel.

Hydrothermal carbonization of garden and park waste with process water recycling

Effect of process water recycling on hydrochar mass yield, energy recovery (hydrochar + methane), hydrochar fuel quality (morphological, physical, chemical, reactivity, combustion temperature, ash sintering propensity), and process water composition and treatability (COD, TOC, VFA, anaerobic digestion biogas yield)

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2024-03-21
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Authors
Juan J. Rodrı́guez
M.A. de la Rubia
R.P. Ipiales
Diana Carolina Pimentel Betancurt
Elena Díaz
A.F. Mohedano
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