| Literature DB >> 35529634 |
Sampath Gunukula1, Ivan C Lee1, Dat T Tran1.
Abstract
It is necessary to advance the development of compact energy systems for making energy from biomass like wood or switchgrass, as an alternative to the construction of highly capital-intensive large scale biorefineries. Compact energy systems consist of four individual components: a biomass preparation unit, a biomass converter, a fuel processor, and a powered engine. The individual unit processes within each component and the possible types of compact energy systems with different biomass converter technologies like fermentation, pyrolysis, and gasification are presented. The size, weight, and energy efficiency of upgrading biomass to energy using a compact energy system with various gasification technologies has been estimated. A compact energy system with a hydrogen fuel cell as a powered-engine component, processing 10 kg of dry biomass per day, generates a net energy (kW h) of -7.5, -30, 18.7, 13.1, and 11.7 with the super-critical, microwave assisted, catalytic, steam, and conventional gasification technologies as biomass converter technologies, respectively. The low yields of super-critical gasification and low efficacy of converting electric energy to heat via electromagnetic waves with microwave assisted gasification result in negative net energy with the respective compact energy system. Finally, the challenges and opportunities with the development of low weight, small size, and highly energy efficient compact energy systems built around gasification are discussed. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35529634 PMCID: PMC9071080 DOI: 10.1039/c9ra06039a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Conceptual framework of the compact energy system.
Different types of compact energy systems built around pyrolysis
| Feedstock | Biomass prep. | Biomass converter | Fuel processor | Powered-engine |
|---|---|---|---|---|
| Lignocellulose/organic waste | Dryer and grinder | Fast, auto, catalytic, or microwave assisted pyrolysis | Steam refining and char separations | Compressed tank and fuel cell |
| Lignocellulose/organic waste | Dryer and grinder | Fast, auto, catalytic, or microwave assisted pyrolysis | Steam refining and char separations | Gas engine or Stirling engine |
| Lignocellulose/organic waste | Dryer and grinder | Slow pyrolysis | Combustion | Gas engine or Stirling engine |
| Lignocellulose/organic waste | Dryer and grinder | Slow pyrolysis | Direct carbon fuel cell | |
| Lignocellulose/organic waste | Dryer and grinder | Fast, auto, catalytic, or microwave assisted pyrolysis | Blue whirl combustion and separations | Gas engine or Stirling engine |
| Lignocellulose/organic waste | Dryer and grinder | Fast, auto, catalytic, or microwave assisted pyrolysis | Solid oxide fuel cell |
Different types of compact energy systems built around gasification
| Feedstock | Biomass preparation component | Biomass converter | Fuel processor | Powered-engine |
|---|---|---|---|---|
| Lignocellulose | Dryer and grinder | Conventional gasification | Steam refining and separations | Compressed tank and fuel cell |
| Lignocellulose | Grinder | Steam gasification | Steam refining and separations | Compressed tank and fuel cell |
| Organic (food) waste | Grinder | Supercritical water gasification | Steam refining and separations | Compressed tank and fuel cell |
| Lignocellulose | Dryer and grinder | Catalytic gasification | Steam refining and separations | Compressed tank and fuel cell |
| Lignocellulose | Dryer and grinder | Microwave assisted catalytic gasification | Steam refining and separations | Compressed tank and fuel cell |
| Lignocellulose and/or food waste | Dryer and/or grinder | Gasification | Gas engine or Stirling engine |
Gasification can be conventional, steam, catalytic, supercritical, and microwave assisted.
Different types of compact energy systems built around fermentation
| Feedstocks | Biomass prep. | Biomass converter | Fuel processor | Powered-engine |
|---|---|---|---|---|
| Lignocellulose and/or food waste | Grinder | Enzymatic hydrolysis and fermentation to make biofuel | Steam refiner and separations | Compressed tank and fuel cell |
| Lignocellulose and/or food waste | Grinder | Enzymatic hydrolysis and fermentation to make ethanol | Ethanol or solid oxide fuel cell | |
| Lignocellulose and/or food waste | Grinder | Enzymatic hydrolysis and fermentation to make biofuel | Blue whirl combustion and separations | Gas engine or Stirling engine |
Fig. 2General schematic of compact energy system built around biomass gasification.
Different types of compact energy systems built around various gasification technologies
| Biomass converter technology | Conventional gasification | Catalytic gasification | Steam gasification | Supercritical gasification | Microwave assisted gasification | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Powered-engine | G | S | F | G | S | F | G | S | F | G | S | F | G | S | F |
| Food waste | X | X | X | ||||||||||||
| Lignocellulose | X | X | X | X | X | X | X | X | X | X | X | X | |||
| Grinder | X | X | X | X | X | X | X | X | X | X | X | X | X | X | X |
| Dryer | X | X | X | X | X | X | X | X | X | X | X | X | |||
| Air compressor | X | X | X | X | X | X | X | X | X | X | X | X | |||
| PSA for air purification | X | X | X | X | X | X | X | X | X | ||||||
| Gasifier | X | X | X | X | X | X | X | X | X | X | X | X | X | X | X |
| Steam reformer | X | X | X | X | X | X | X | X | X | X | X | X | |||
| Heat exchanger | X | X | X | X | X | X | X | X | X | X | X | X | X | X | X |
| Coarse filter | X | X | X | X | X | X | X | X | X | X | X | X | X | X | X |
| PSA for syngas purification | X | X | X | X | |||||||||||
| Pd-membrane | X | X | X | X | X | ||||||||||
| Compact energy system type | T1 | T2 | T3 | T4 | T5 | T6 | T7 | T8 | T9 | T10 | T11 | T12 | T13 | T14 | T15 |
Weight, volume, and net energy of different types of compact energy systems
| Compact energy system type | Wet biomass processed (kg d−1) | Dry biomass processed (kg d−1) | Hydrogen (H)/producer (P) gas produced (kg d−1) | Net total energy (kW h) | Net power | Weight (kg) | Volume (L) |
|---|---|---|---|---|---|---|---|
| T1 | 14 | 10 | 16.5 (P) | 9.9 | 0.41 | 8.2 | 45 |
| T2 | 14 | 10 | 16.5 (P) | 10.7 | 0.45 | 15 | 37 |
| T3 | 14 | 10 | 1 (H) | 13.3 | 0.56 | 8 | 5 |
| T4 | 19 | 10 | 23 (P) | 9.2 | 0.38 | 6.3 | 39 |
| T5 | 19 | 10 | 23 (P) | 9.9 | 0.41 | 13 | 43 |
| T6 | 19 | 10 | 1.4 (H) | 18.7 | 0.78 | 14.5 | 4 |
| T7 | 24 | 10 | 23.5 (P) | 6.9 | 0.29 | 7 | 33 |
| T8 | 24 | 10 | 23.5 (P) | 7.4 | 0.31 | 14 | 32 |
| T9 | 24 | 10 | 1.2 (H) | 11.7 | 0.49 | 7.35 | 5 |
| T10 | 70 | 10 | 60 (P) | −15.5 | −0.65 | 14 | 59 |
| T11 | 70 | 10 | 60 (P) | −14 | −0.58 | 24 | 44 |
| T12 | 70 | 10 | 0.3 (H) | −7.5 | −0.31 | 12 | 11 |
| T13 | 14 | 10 | 16.5 (P) | −63 | −2.62 | 9.8 | 48 |
| T14 | 14 | 10 | 16.5 (P) | −65 | −2.7 | 16.6 | 40 |
| T15 | 14 | 10 | 1 (H) | −30 | −1.25 | 9.1 | 8 |
Net power is calculated assuming operational time of 24 hours.
Fig. 3The comparison of volumetric power density and specific power of different compact energy system types.
Fig. 4The weight (kg) of compact energy system built around gasification for the target power (kW) and operational time (h).