| Literature DB >> 31871914 |
Feng Cheng1, Travis Le Doux1, Brian Treftz1, Scott Woolf1, Jiuling Yu1, Juanita Miller1, Umakanta Jena1, Catherine E Brewer1.
Abstract
A pilot-scale continuous flow reactor (CFR) was modified for hydrothermal liquefaction (HTL) of algae slurry under subcritical conditions to investigate the feasibility of scaling up from batch to continuous processing. Modifications included a novel dual filter system that can remove solids at system pressure and temperature, and undergo in-situ cleaning. Commissioning was carried out to address potential particle settling and clogging problems, and to estimate reactor transport characteristics. CFR performance was evaluated by running 31.4 L algae slurry with solids loadings of 3-5 wt.% under 325-350 °C and 18 MPa for 7 h. C and N elemental yields in HTL aqueous phase reached 39.0 wt.% and 61.8 wt.%, respectively. Future improvements to the CFR system will focus on higher solids loading and addition of in-line HTL liquid upgrading capabilities following the filtration system. •A high-temperature, high-pressure filtration system was designed to remove solids from HTL liquid/gaseous products at near reaction conditions to keep heavy oils in the liquid phase.•Uninterrupted reactor operation was achieved by cycling between the dual filter systems and performing in-situ filter cleaning.•Measured reactor residence time distributions were narrow and close to the calculated theoretical mean time.Entities:
Keywords: Continuous flow reactor; High-pressure filtration; Hydrothermal liquefaction; Microalgae; Pilot-Scale Continuous Flow Hydrothermal Liquefaction of Biomass
Year: 2019 PMID: 31871914 PMCID: PMC6909004 DOI: 10.1016/j.mex.2019.11.019
Source DB: PubMed Journal: MethodsX ISSN: 2215-0161
Fig. 1The pilot-scale CFR system before (a) and after (b) modification.
Fig. 2Filtration and in-situ cleaning processes of the dual filter system.
Fig. 3Temperature (blue curve) and pressure (red curve) profiles of water flow in the CFR system under a reaction temperature of 300 °C.
Fig. 4Pressure profile of water (blue curve) compared to the theoretical saturated steam pressure in the CFR system (low pressure limit, red curve) at 300 °C.
Fig. 5Pressure profiles within the CFR system and a filter vessel during filter cleaning at 300 °C and 10.34 MPa.
Fig. 6Impacts of back flushing frequency and flow rate on real solids loading of algal slurries with theoretical solids loadings of a) 2.8 wt.% and b) 4.2 wt.%.
Fig. 7RTD curves of phenol in the CFR system at room temperature and 350 °C. RTD: Residence Time Distribution.
Previous experimental data associated with the RTD of flow.
| Ref. | Reactor size | Flow rate | Time variance | Mean | Expected time | Discrepancy | |
|---|---|---|---|---|---|---|---|
| Kruse et al. [ | 6 m × | 27.75 | 12679 | 40.6 | 33.3 | 22 | N.A. |
| 21.82 | 58536 | 54.1 | 42.4 | 28 | N.A. | ||
| 10.62 | 110 | 93.6 | 87 | 8 | N.A. | ||
| Mørup et al. [ | 1.2 m × | 6–24 | 311364 | 33.4 (min) | 24.2 (min) | 38 | 28.0 |
| This study, 25 °C | 1.83 m × | 150 | 86 | 25.5 (min) | 25.7 (min) | 0.5 | 18.4 |
| This study, 350 °C | 1.83 m × | 150 | 185 | 31.4 (min) | 25.7 (min) | 22 | 13.8 |
Fig. 8Distributions of C and N yields, and N/C ratio in the HTL aqueous phase from HTL of 5 wt.% WWGS at 325 °C and 350 °C.
| Subject Area: | Chemical Engineering |
| More specific subject area: | Hydrothermal Conversion of Wet Biomass into Biofuel |
| Method name: | Pilot-Scale Continuous Flow Hydrothermal Liquefaction of Biomass |
| Name and reference of original method: | Mørup, Anders Juul, et al. "Construction and commissioning of a continuous reactor for hydrothermal liquefaction." Industrial & Engineering Chemistry Research 54.22 (2015): 5935–5947. |
| Resource availability: |