Sustainable Energy Production and Energy Storage from Brewer’s Spent Grain (BSG): A Review on Technologies and Enhancements for Reducing Environmental Impact and Increasing Efficiency
Abstract
1. Introduction
2. Methods
3. Technologies and Enhancements/Pretreatments for Bioenergy Production from BSG
3.1. Anaerobic Digestion (AD) and Anaerobic Co-Digestion (AcoD) for Biogas (Biomethane) Production from Brewer’s Spent Grain Utilization
3.2. Technologies for Bioethanol Production from Brewer’s Spent Grain Utilization
3.3. Technologies for Biohydrogen (H2) Production from BSG
3.4. Technologies for Biocrude (Liquid Biofuel) and Bio-Oil Production from BSG
3.5. Technologies for Biochar Production from BSG
3.6. Combustion of BSG to Solid Biofuel
3.7. BSG-Derived Activated Biocarbon for Catalytic, Environmental, Dye-Sensitized Solar Cell and Energy Storage Applications
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| AcoD | Anaerobic co-digestion |
| AD | Anaerobic digestion |
| AH | Acid hydrolysis |
| AI | Artificial intelligence |
| AP | Apple pomace |
| BMP | Biochemical methane potential test |
| BSG or CBSG | Brewers’ spent grain or craft brewers’ spent grain |
| BSY | Brewer’s spent yeast |
| CH4/day (or m3 CH4/day, L CH4/day) | Methane production rate per day. |
| Co-HTL | Hydrothermal co-liquefaction |
| CPFD | Computational particle fluid dynamics |
| d.b. | Dry basis |
| DES | Deep eutectic solvents |
| DG | Distiller’s grains waste |
| EG | Ethylene glycol |
| ELP-PP | Electroless pore plating |
| ER ratio | ER = Vg/V0, where Vg is the actual amount of air supplied for the gasification of BSGs of one kilogram (m3), and V0 is the stoichiometric amount of air for complete combustion of BSGs of one kilogram (m3). |
| FPU/g BSG | Filter paper units per gram of Brewer’s spent grain. Filter paper unit is a measure of cellulase enzyme activity. |
| GCV | Gross calorific value |
| GHG | Greenhouse gas emissions |
| GR | Ratio between gasifying agent and biomass (H2Ototal + O2)/biomass] (kg h−1/kg daf h−1) |
| GWP | Global warming potential |
| IRR | Internal rate of return |
| HTC | Hydrothermal carbonization |
| HTcL | Hydrothermal co-liquefaction |
| HTL | Hydrothermal liquefaction |
| LCA | Life cycle assessment |
| L CH4/kg TVS | Liters of methane produced per kilogram of total volatile solids (TVS), 1 mL CH4/g TVS = 1 L CH4/kg TVS. |
| MBCs | Mesoporous carbons |
| ML | Machine learning |
| mL CH4/g TVS | Milliliters of methane produced per gram of total volatile solids (TVS). |
| m3 CH4/t d.m. | Cubic meters of methane produced per tonne of dry matter (d.m.). |
| NPV | Net present value |
| NL CH4/kg COD | Normal liters of methane produced per kilogram of chemical oxygen demand. |
| PHAs | Polyhydroxyalkanoates |
| PH2 | Cumulative H2 production |
| ROI | Return on investment |
| RH2 | H2 production rate |
| SB | Sugar beet molasses |
| S/BSG | Steam-to-BSGs mass ratio |
| SCG | Spent coffee grounds |
| SDGs | Sustainable development goals |
| SMB | Simulated moving bed technology |
| TG-MS | Thermogravimetric mass spectrometry |
| TS | Total solids |
| w.b. | Wet basis |
| WtE | Waste to energy |
| YH2 | H2 yield |
| VFAs | Volatile fatty acids |
| VS | Volatile solids |
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| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| 5 solid samples (A, B, C, D, E) from different breweries, Bagasse (Brazil). | Total solids, fixed solids, and volatile solids were measured, and biochemical methanogenic potential was evaluated by fermentation tests (37.0 ± 2.0 °C). | Electrical 165.1 kWh and thermal energy 424.6 kWh. Biomethane: 82 m3 CH4/t d.m., CO2 recovery: 29 m3 CO2/t d.m. CO2 cost reduction in brewing is ~76%. | [11] |
| BSG (Brazil): drying for 8 h at 105 °C and stored at −18 °C. | AD (agitated tank reactor), batch mode for 40 days, substrate: 25% BSG (d.b.), 45% wet inoculum, 30% water, mesophilic temperature, pH~7.5. | Enhanced CH4 production from 1 ton of BSG: 6.47 L, 0.133 MWh electricity, and more than 598 MJ thermal energy, prevented 0.0335 tCO2eq/ton BSG. | [12] |
| BSG (Spain): distilled gin spent botanicals (DGSB), and blends as co-substrates (80% BSGs-20% DGSBs, 60 BSGs-40 DGSBs, 40% BSGs-60 % DGSBs). | AD practice using box-type digesters (mesophilic mode, 36 to 38 °C). | Only when 100% BSG was used as a substrate were the results acceptable, more than 295 CH4kgVS−1 (80.6% in BMP test). | [13] |
| BSG (Brazil): oven-dried at 80 °C until moisture < 10%. | One (1S-TP) and two-stage (2S-TP) thermal pretreatment for biogas and fermentable sugars from BSG co-production. Two autohydrolysis conditions (C1-1S: 180 °C, 5 mLH2O/g BSG, 30 min, and C2-1S: 180 °C, 5 mLH2O/g BSG, 60 min) were assessed with and without pretreatment (80 °C, 10 min, 10 mLH2O/g BSG), two steps:
| 2S-TP: yields 302.4 NL CH4/kg COD and a 98% enzymatic hydrolysis yield with 50 FPU/g BSG, with the second stage at 180 °C for 60 min. and 5 mL H2O per g BSG. Biogas from AD of hydrolysates in CHP generates 1.71 MJ/kg BSG d.b. thermal energy and 0.392 kWh/kg BSG d.b. electrical energy. | [14] |
| Wet BSG and mesophilic inoculum (sludge of brewery wastewater treatment), Brazil. Drying for 8 h at 105 °C and stored at −18 °C, pH adjustment with NaOH, as well as fed-batch pretreatment. | Fed-batch pretreatment followed by semi-continuous AD (mesophilic and methanogenic conditions, 35 °C, 60% filled with the substrate—610.8 g BSG in d.b., 2124 g mesophilic inoculum, and 1.84 L water-and 40% used for produced biogas), 22 days, fed and removed 180 mL digestate daily. | ~317 MJ/t heat, and about 67 kWh/t electricity, avoiding 20.91 kg CO2eq/t. | [15] |
| Brewery sludge: wastewater (1:1, v/v) and BSG (2.5 to 12.5%, w/v) (Spain and Brazil). Drying for 8 h at 105 °C and stored at −18 °C. | AcoD of brewery by-products, batch reactor 120 mL working volume, 130 mL biogas storage, up-flow anaerobic sludge blanket digesting reactors (mesophilic mode, 35 °C) to produce the mesophilic inoculum (granular sludge) needed for AcoD. | Increased biomethane yield (88 mL CH4/g TVS) achieved using 12.5% BSG could produce 1556 MJ/kg TVS heat and 0.348 kWh/kg TVS electricity and avoid GHG emissions (0.114 kg CO2eq/kg TVS). | [2] |
| BSG and cattle dung (CD), TBL-Mbeya in Tanzania. | Co-digestion of BSG with cattle dung (CD) at BSG:CD ratios of 1:3, 1:2, 1:1, 2:1, and 3:1; BSG and CD control tests; substrate combinations of 4.5 kg in each setup; digestion of two substrates lasted 10 days. To enable AD to progress, substrates are mixed with water in a 1:1 ratio. | Best biogas at BSG:CD ratios of 1:3 and 1:2, with total solids (TS) contents of 9.24% and 8.95%, with methane content 54.7 ± 10.74% CH4/d and 51.9 ± 8.67% CH4/d, respectively. | [3] |
| BSG (Poland): drying at 80 °C and stored at −31 °C, several additives (lime, iron, porous ceramic powder) in several doses 0.2, 0.6, 0.95, 1.34, 1.7, and 2.3 gTS × L−1. | AD process (batch reactor, mesophilic, 30 days). | The addition of lime, iron, and ceramic powder revealed −6.7% to −3.3%, 0.8% to 9.8%, and −2.6% to 4.6% methane yield change, respectively. Iron powder (0.6 g × L−1), or ceramic powder (1.34 g × L−1) can be used to enhance CH4 production by 9.8 and 4.6%, respectively. | [4] |
| BSG (Brazil): Drying for 8 h at 105 °C and stored at −18 °C, and ultrasonic pretreatment. | AD at mesophilic mode (35 ± 2 °C), 65% of the reactor volume: feed initially (1.23 L BSG, 1.7 L inoculum, and 1.45 L water), leaving 35% headspace for biogas, pH 7–8 kept with NaOH. | Ultrasonic pretreatment quadrupled CH4 yield (107 CH4 kg−1 TVS yield that can produce 0.23 MWh t−1 BSG of electricity and 1.2 × 103 MJ t−1 BSG heat) compared to AD without pretreatment (26.72 L CH4 kg−1 TVS, 0.15 MWh t−1 BSG electricity, and 0.79 × 103 MJ t−1 BSG heat), which reduced environmental impact (with pretreatment: avoid 0.083 tCO2eq t−1 BSG). Energy for pretreatment: 0.29 MWh/ton, ultrasonic pretreatment increased energy surplus by 50%. | [5] |
| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| BSG rinsed with hot (70 °C) water to 0.2 ± 0.1% (w/w), dried (60 °C) until BSG d.b. reached 92.7 ± 0.1%, ground, and stored at 25 °C. Microwave-assisted pretreatment with various aqueous solutions of DES. Mars 5 microwave generator (60 min, 600 W) was used for microwave-assisted pretreatment. | Integrated use of microwave radiation and selected aqueous solutions of deep eutectic solvents (DES), Cellic CTec2 (pH 5.5, 50 °C) for enzymatic hydrolysis. | Integrated bioethanol production approach using microwave-treated BSG. BSG is utilized as a substrate in microbiological synthesis after the microwave-assisted pretreatment of BSG with aq-DES. DES pretreatment improved cellulose hydrolysis efficiency (94.9%, 838 mg/g). This resulted in a 77% lignin reduction in BSG. | [6] |
| BSG (Ireland): frozen at −20 °C and defrosted at 15 °C overnight before use. | Optimizing BSG pre-treatment improves enzymatic hydrolysis with whole slurry and resuspended pellets. Conditions: C1: 0.49% HCl, 87.7 °C, 92 min (highest protein). C2: 0.80% HCl, 121.0 °C, 142 min (max liquid recovery). C3: 0.10% HCl, 104.0 °C, 70 min (lowest acid, solids). C4: 0.20% HCl, 121.0 °C, 20 min (minimal water retention). Hydrochloric acid outperformed sulfuric acid. Tests varied in time, temperature, and concentration using a Box–Behnken design. | Conditions C1 and C4 enable direct enzymatic hydrolysis post-diluted acid thermal pretreatment without liquid fraction removal or pellet washing. These conditions demonstrate promising outcomes for biorefinery. Hydrochloric acid outperformed sulfuric acid in this process. | [21] |
| BSG, using brewer’s spent yeast (BSY) as inoculum. | Enzymatic-ultrasonic pretreatment, hydrolysis duration (6, 8 h), cellulase enzyme (0.3, 0.5% w/v), and ultrasonic intensity (15, 20%) were carried out. Alcoholic fermentation with BSY was performed at several inoculum concentrations (0.5, 0.8, 1.0% v/v). | Results compared to Saccharomyces cerevisiae S-04. 0.5% cellulase produced 7.71% bioethanol with 1% BSY (~8.7 g bioethanol per 100 g raw materials). | [22] |
| BSG (Greece): dried 105 °C, 14 h. | Bioethanol production with acid pretreatment (0.7 N H2SO4, 50 °C, 16 h) and enzymatic hydrolysis with 600 μL CellicCTec2/g cellulose at 50 °C were performed. | Ethanol yield of 45.56% from defatted BSG. | [23] |
| BSG (Budapest, Hungary): dried at 40 °C. | Innovate fractionation of BSG for bioethanol, oligosaccharides, and sugars production using two-step acidic hydrolysis and an enzymatic hydrolysis step. | 72% ethanol yield by commercial baker’s yeast and 6274 and 6827 MJ/dry tonnes of bioethanol and biogas were produced, respectively | [7] |
| BSG (Zagreb, Croatia). | Bioethanol production from xylose and glucose using BSG in a two-stage fermentation. Yeasts Kluyveromyces marxianus and Candida krusei were employed. | K. marxianus yielded bioethanol 4.546 g/L at 50 g/L glucose, while C. krusei reached 3.936 g/L. BSG hydrolysates showed high bioethanol potential when pretreated with a weak acid and detoxified. | [24] |
| BSG (Serbia): microwave-assisted alkaline hydrogen peroxide pretreatment (optimal microwave power and irradiation time: 282.25 W and 7.27 min, respectively). | Exploitation of BSG for extracellular enzyme production by novel Basidiomycetes, evaluation of isolated white-rot fungal strains’ enzymatic potential for bioethanol generation. | Under non-optimized conditions, 0.94 g/L of bioethanol resulted. | [25] |
| Dried BSG (Brazil): (60 ± 2 °C), particle size < 595 μm, AHP pretreatment: alkaline H2O2 solutions (1–8%), pH adjusted to 11.5, combining them with BSG (2–8% solids), and treating the suspensions for 0–12 h. at 20 °C in a shaking incubator at 40 rpm. | Chemical composition, BSG structure using optical microscope, particle crystallinity using X-ray diffraction, functional groups using FTIR, and Rheology of BSG particle suspensions using a rotational rheometer. | There was a minor drop in yield at high BSG. AHP improved cellulose–hemicellulose and increased the removal of protein and lignin. FTIR confirmed structural changes (crystallinity, cell wall weakening). Higher AHP/solids/time increased flow resistance and reduced flow index; temperature decreases viscosity up to 50 °C but raises it at 60 °C (starch gelatinization). | [26] |
| BSG blends with sugarcane molasses. Microwave-assisted alkaline hydrogen peroxide pretreatment of BSG (Gondar, Amhara, Ethiopia). | Response surface methodology optimized diluted phosphoric acid hydrolysis considering molasses mixing proportion, hydrolysis duration, and acid concentration. | Bioethanol yield: 0.28 g/gram of dry BSG, an effective method to transform waste to bioenergy. | [27] |
| Alkaline pretreatment of SCG and diluted acid pretreatment of BSG. Neutralization of the solutions by mixing them, dried at 105 °C, 14 h. (Greece). | Enzymatic saccharification and ethanolic fermentation were carried out. The optimum conditions were studied using cost as an optimization parameter. | BSG co-treatment with SCG enhances bioethanol yield and reduces costs for bioethanol production, which is revealed in scenario 4 [SCG/BSG blends, chemical pretreatment (5 h, 0.5 N), enzymatic hydrolysis (16 h, 400 µL/g cellulose)] and scenario 5 [SCG/BSG blends, chemical pretreatment (5 h, 0.5 N), enzymatic hydrolysis (5 h, 800 µL/g cellulose)]. | [28] |
| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| 2 BSG samples, dried at 105 °C until constant weight (Spain). | Gasification and membrane separation. Two Pd membranes were created via electroless pore plating. Syngas composition was achieved by gasification in optimized conditions (5 bar, 800 °C, GR: 0.75, air-steam mixture ratio: 25–75 vol%) for an increased H2 yield. | Green H2 production, 175 to 550 mol/m2·h, using ideal gas feed composition conditions, increased membrane performance for continuous operation. | [8] |
| BSG (Qingdao Brewery, China). | Air-steam bubbling fluidized bed gasifier via CPFD modeling to study gasification characteristics, such as temperature effect (T), steam-to-BSGs mass ratio (S/BSG), equivalence ER ratio, and fluidization velocity ug on the gasification properties. | Significance to H2 concentration: T > S/B > ER > ug. Raising T (from 700 to 900 °C) increased CO (from 9.80 to 16%), H2 (from 3.95 to 14.21%), and GCV (3.36 to 4.35 MJ/Nm3). When S/BSG climbed from 0.3 to 0.7, raising H2 (from 6.54 to 11.76%), it decreased CO (from 13.59 to 11.37%) and CH4 (from 3.97 to 3.84%) [increase in H2/CO ratio by 114.58%]. When ER was raised (from 0.2 to 0.4), the GCV of gas and H2 fell while the carbon conversion fraction rose (from 78.8 to 85%). As the ug rose, the molar fraction of H2 and CO increased (H2: from 8.11 to 11.63%, and CO: from 9.61 to 17.01%). | [29] |
| BSG dried (60 °C), milled to 500 μm (±0.02) (Brazil). | BSG hydrolysate using dark fermentation at several temperatures (35–45 °C), the inoculum ratio (10–30%), and pH (5.5–7.5). | The highest H2 yield, H2 production rate, and cumulative H2 production were 5154 mL/g glucose cons, 760 mL/L.h, and 4160 mL/L of working volume, respectively. | [30] |
| BSG, distiller’s grains (DG) waste, and sugar beet molasses (SB) (Kazakhstan), raw (alone) and in blends. Acid hydrolysis with sulfuric acid was used as pretreatment in BSG, DG, or SB, with pH 7.5, with KOH for BSG and DG, but K2HPO4 was used for SB. | H2 by Escherichia coli anaerobic utilization of various carbon sources. | A twofold diluted mixture of 4% BSG, 10% DG, and 10% SB is effective for increased H2 generation in comparison with raw wastes. With mixed waste, cumulative H2 generation in numerous mutants was ~2.7 times higher (215 mL, 11 mL H2/g mixed waste) than in the wild type (80 mL, 3.9 mL H2/g mixed waste). | [31] |
| BSG (dried at 50 °C/48 h and 105 °C, ground), H2SO4 (Spain). | Biotechnological production of hydrogen with Escherichia coli by BSG, a 2k complete factorial design method. Optimal hydrolysis conditions were found by the steepest ascent and central composite design statistical methods. | Acid concentration and temperature influence protein extraction and sugar reduction. Hydrolyzed BSG A17 (117 °C, 20 min, and 0.1 M H2SO4) yielded 48 mmol/L H2, optimizing BSG pre-treatment for biotechnological applications. | [32] |
| Brewery by-products (blends of BSG, sludge, and brewery wastewater), 105 °C, 8 h, (Ambev brewery, Jaguariúna, SP, Brazil). | Anaerobic co-fermentation of brewery waste materials in an acidogenic (pH 5) and thermophilic (55 °C) mode to produce H2. | The highest H2 yield (25.11 mL H2 g−1 TVS) was with the wastewater reactor, and the addition of BSG decreases the yield to 9.55 mL H2 g−1 TVS. The addition of BSG suppresses hydrogen production due to ammonia inhibition. | [33] |
| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| FeOx/C, NiOx/C, and Na2CO3 catalyzed tests were carried out using a catalyst:draff mass ratio of 1:20. | A 300 mL high-pressure Parr reactor at 300 °C, 320 °C, and 340 °C for HTL. With an active metal loading of 7.5 wt.%, the activated carbon-supported Ni and Fe oxide catalysts (abbreviated as NiOx/C and FeOx/C) were made using a straightforward wetness impregnation technique. | FeOx/C catalyst increased bio-oil yield by 19.7% compared to the non-catalyst reaction (320 °C, HTL BSG). Carbon recovery to bio-oil and GCV revealed 82% and 37.7 MJ/kg. FeOx/C catalyst: affordable (catalytic activity up to five reaction cycles), high-performance HTL catalyst, and capable of scaling up for commercial applications after magnetic retrieval separation. | [34] |
| BSG (Korea): washed with deionised water, dried overnight in an oven at 105 °C, ground to <100 μm. | Conversional setup pyrolysis (100 to 700 °C, 10 °C/min, and the second furnace—heating zone—was identical to the first) and catalyzed setup pyrolysis (the second furnace was set to be isothermal at 500, 600, or 700 °C, Ni/Al2O3 catalyst). Tubular reactor: a high-purity quartz tube, two vacuum fittings, 80 vol% CO2, and 20 vol% N2 were used for CO2 pyrolysis. Thermogravimetric analysis: 50 to 700 °C, 10 °C/min under N2 and CO2 atmospheres. Purge gases N2 and CO2: maintained at 80 mL/min. Protective gas N2: 20 mL/min. |
| [35] |
| BSG (Krakow, Poland): −18 °C, dried 60 °C for 24 h to a constant mass. Acid hydrolysis (AH) pretreatment (150 °C, 180 min, pH 2, 10 wt.%). | HTL of BSG combined with acid hydrolysis (AH) was the pretreatment for biocrude production. | Acid pretreatment altered BSG structure (95 wt.% hemicellulose degradation and 54 wt.% less protein content) and reduced 10% O and N content by 33%. HTL of pretreated BSG yields 9 wt.% more and increases the biocrude heating value by 5%. A 29% reduction in heterocyclic compounds is advantageous for additional improvements. Biocrude: 53 wt.%, saccharides: 49 wt.%. and proteins: 31 wt.%. | [9] |
| BSG, food wastes (Ithaca, NY, USA). | HTC of waste (BSG, whey, food waste) at ~250 °C for hydrocar production. Separation of hydrocarbons into primary (solid) and secondary (oily) fractions via extraction with six solvents. | Feedstock composition influences distribution: lipids lead to more secondary char; carbohydrates/proteins lead to less secondary char, and lignocellulosic leads to mainly primary char. Solvent impacts separation: ethanol extracts ~50 wt.% secondary char (fuel precursors), while acetone and dichloromethane maximize primary char and reduce combustion problems. | [36] |
| BSG and apple pomace (AP), Belgium: −18 °C, dried 60 °C, HTcL of BSG and AP in several blends (BSG:AP 3:1, 1:1, 1:3) under optimal modes. | Explore synergies (experimental and stimulation) in the low-temperature HTcL of BSG and AP for biocrude production. Employed the Box–Behnken design for optimal conditions (ranges 15–120 min, 120–280 °C, 5–20 wt.%), and to maximize the biocrude yield, we used an ASPEN Plus simulation for the large-scale process. | Optimal conditions for BSG: 201.9 °C, 15 min, 5 wt.% solid concentration (23.08 wt.% biocrude yield), AP at 217 °C, 15 min, and 5 wt.% (13.58 wt.% biocrude yield). BSG: AP blends: 31.2 MJ/kg biocrude and 25.74 MJ/kg biochar. Stable emissions: 0.38 kg CO2eq/kg (from 250 to 1000 kg/h), decrease (0.27 kg CO2eq/kg) at 1500 kg/h. The HTcL route can lead to several economic and environmental advantages and increased efficiency. | [37] |
| Raw BSG, sugarcane bagasse, and paper mill sludge, and BSG mixed with microalgae (Chlorella vulgaris), sugarcane bagasse, and paper mill sludge. (Brazil) Drying for moisture content < 5%, ground < 1.7 mm. | HTcL evaluates the biocrude yield, the high-temperature high-pressure stirred autoclave reactor (2000 mL), and the chemical composition of biocrude using GC–MS, regression, ANOVA analysis, and energy analysis. | Highest biocrude yield: 51.7% from raw microalgae, which is only important if >50%. BSG and paper mill sludge: 29% biocrude yield due to synergistic effect. The energy return on investment (ERoI) > 1 with 50% microalgae, 25.8% BSG, and 24.2% paper mill sludge demonstrates net energy gained exceeds the input. | [38] |
| Dried BSG (Minas Gerais, Brazil). | An optimization study was done to increase the quality and the bio-oil yield by using the catalytic microwave-assisted pyrolysis of BSG for bio-oil production to work out the impact of the catalyst (CaO) and moisture content. | A high liquid yield was the result (71.8%), with BSG moisture at 14%, but the quality of the hydrocarbon yield was 21.6%. The liquid composition in optimum conditions (570 °C and 12.17% catalyst/biomass ratio) is promising due to the presence of aromatic and organic compounds. | [39] |
| Dried BSG (80 °C, 24 h) to achieve 10% moisture, ground to 2.42 mm (Uberlândia, Minas Gerais State, Brazil). | The catalytic (CaO) and non-catalytic pyrolysis of BSG in a spouted bed reactor to bio-oil evaluated the effect of BSG rate, temperature, and catalyst concentration on yield and hydrocarbon composition. | Non-catalytic pyrolysis yields 41% oil, 15% hydrocarbon at 550 °C, 960 g/h, and catalytic pyrolysis in ideal conditions yields 43% oil, 33% hydrocarbon, and reduced water content. Enhanced GCV of produced oil 25.7 MJ/kg vs. 19.8 MJ/kg dried BSG. CaO catalyst boosts GCV to 28.2 MJ/kg. | [40] |
| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| Dried BSG (Argentina), 6% moisture. | Cylindrical reactor, under an inert atmosphere (N2), at 673 K, 773 K, 873 K, residence time 2 h. | BSG biochar C: >62%, N < 10.52%, and HHV > 23 MJ/kg. BSG biochar showed a higher HHV than raw BSG. Optimum performance: biochar obtained at 673 K. | [41] |
| BSG by-products of lager beer (mixture of malts: barley malt and wheat malt), washed with distilled water and then dried in an oven at 60 and 100 °C (Calvados, Normandy, France). | Pyrolysis method: P10 KOH Free, N2 flow rate = 1 L/min, 500 °C, res. time = 1 h, ramp = 20 °C/min, cooling time = 1 h, XPS, XRD, FESEM, EDX, Raman analysis, and TGA. | FESEM pictures: five distinct morphologies created from BSG under the same pyrolysis circumstances. XRD: indicated physical treatments influenced biochar crystallinity. Raman: showed that mechanical pressure altered the biomass’s internal structure and increased the graphitization of biochar. DSC: showed exothermic reactions during the thermochemical transformation of the five BSG samples. | [42] |
| BSG (Brazil): oven dried at 105 °C and sieved through 60–80 mesh. | Pyrolysis (300, 500, and 700 °C) in an alumina recrystallized tube (inner diameter 4 cm) in an electrically heated furnace (4 kW) with a water-cooled vessel and gasification (1000 °C at atmospheres O2/N2, O2/CO2/N2, and O2/H2O/N2) in a tube reactor (DTR) at 12 kW, followed by TGA, SEM, and decision analysis. | Biochar: increased HHV (83.11%), decision analysis results: 700 > 300 > 500 °C. Syngas based on CO2 steam enhanced gasification: energetic and energetic improvements against O2/N2, 32.97% LHVsyngas. Combustion index: great potential of BSG as a solid biofuel for small-scale uses. | [43] |
| Dried BSG. | Pilot-scale brewery (~1 hL) for BSG torrefaction (300 °C, 60 min), yielding mass and energy. Synergistic effect of solid production and beer coloring agent from BSG by torrefaction (20–60 min, 180–300 °C). | Calorific value of torrefied BSG reached 25 MJ/kg at 300 °C for 60 min. Higher temperature improves fuel quality. In these conditions, modest enhancements were observed in solid fuel properties. | [10] |
| Brewery by Products/Pretreatment Method | Technology | Results | Refs |
|---|---|---|---|
| BSG of pure Carafa, Crystal, Pale Ale, Aroma, Trigo, and Pilsener malt varieties (Spain) | Pelletized BSGs combustion in a pilot spouted bed reactor. Energy content analysis, proximate analysis, ultimate analysis (900 °C, pure oxygen), TGA (25 to 800 °C in oxidative atmosphere with a flux of 50 mL/min of pure oxygen), and kinetic analysis of thermal decomposition were conducted during thermo-oxidative combustion. | Pelletized BSGs serve as a renewable energy source in incineration above 500 °C. Process effectiveness remains unchanged across malt type or combination. There is a high calorific value (18 MJ/kg) and a low ash content (1.7–5.4%). The activation energy (Ea) for the two main stages, Stage I (190–200 °C) and Stage II (212 to 495 °C), was 100–150 kJ/mol. Stage I: follows a random nucleation kinetic model (Fn) and involves the volatilization of hemicellulose and cellulose, along with partial lignin decomposition. Stage II: follows a 3D diffusion kinetic model (D4) and completes the lignin and char decomposition. | [44] |
| BSG (Greece): Air-dried, dried in oven (80 °C, 24 h), ground < 1 mm, and 100% BSG. Blends: 70% BSG-30% lignite, 50% BSG-50% lignite, and 30% BSG-70% lignite | BSG combustion and BSG co-combustion with lignite, calorific value analysis, proximate analysis, ultimate analysis, ion chromatography, TG/DTG, SEM-EDS, kinetic and thermodynamic analysis. The maximum emission factors (CO2, SO2, and NO), environmental footprint regarding secondary solid wastes (ash/MJ), and case studies regarding energy production using BSG were observed in Greece and Europe. | High calorific value (19.05 MJ/kg), low ash content (5 wt.%), low maximum temperature with a high rate of weight loss (307 °C/5.46%/min), high Gibbs free energy value (195.6 kJ/mol), and a much lower environmental footprint index (0.0025 kg/MJ) than lignite (0.0307 kg/MJ). Cl and S levels of BSG were similar to lignite (0.03 and less than 1 wt.%, respectively). BSG: 91 gCO2/MJ, 1.0 gSO2/MJ (lignite: 103 gCO2/MJ, 1.6 gSO2/MJ), NO 4.8 gNO/MJ (lignite 1.5 gNO/MJ), ash ‘Type C’: low slagging and fouling problems in the boiler. | [1] |
| B1: 100% BSG; B2: 80% BSG and 20% wood chips; B3: 60% BSG and 40% wood chips; and B5: 20% BSG and 80% wood chips, with two different dehydration conditions | BSG combustion and BSG co-combustion with wood chips. | Lower heating value: 17.84 MJ/kg, ash: 0.52%, and density: 113 kg/m3. 80% BSG blends improve fuel characteristics and reduce costs. BSG co-combustion with wood chips reduces alkali metals in ash, and high aluminosilicate concentration decreases fouling and slagging in boilers. | [45] |
| 3 BSG (Poland) samples: BM: 100% barley malt, BM+B: 100% barley malt with up to 45% hulled barley (unmalted), and BM+WM: 100% barley malt with at least 50% wheat malt | Energy properties evaluated included calorific value, ash, moisture, and organic matter. |
| [47] |
| Pellets BSG (Sweden), milled to 1 mm, sieved 90–200 μm size fraction | Lab-scale drop tube furnace at 1200 and 1450 °C, SEM-EDS, XRD, IC, ICP-AES, TECs. |
| [48] |
| Technology | Results/Products | Advantages | Limitations/Challenges |
|---|---|---|---|
| AD | Biogas, biomethane, CO2 recovery | Renewable energy production, a mature biological route, and CO2 is reused by brewing. | Sensitive to temperature, inhibitors, pH, C/N ratio, and substrate composition. Feedstock variability, pretreatment energy consumption, and process optimization. |
| AcoD | Biogas, biomethane | Enhanced methane yield and process stability. | Requires ideal substrate ratios, and feedstock combinations affect performance. |
| AcoD with ultrasonic pretreatment | Enhanced biomethane | Up to four times increase in biomethane, and a reduced environmental impact. | Additional energy consumption and capital cost. |
| Bioethanol production | Second-generation bioethanol | Transforms waste into liquid fuel, synergistic effect with spent coffee grounds and sugarcane molasses. | Strong dependency on enzyme prices and pretreatment effectiveness. Enzyme optimization. |
| Bioethanol production with microwave and deep eutectic solvent (DES) pretreatment | Enhanced bioethanol yield | Enhanced hydrolysis. | Pretreatment and recovery costs of DES. Economic feasibility. |
| Gasification with Pd membrane separation | Green hydrogen | Enhanced H2 yield and efficiency, and industrial scale potential. | High operating temperatures and an expensive membrane system. Capital cost, membrane durability, process integration. |
| Dark fermentation | Green hydrogen | Can use mixed wastes and is a sustainable practice. | Reduced H2 production (biological route) compared to gasification (thermochemical route). Enhancement of yield and process stability. |
| HTL | Biocrude oil | Processes wet BSG without drying and high liquid yields. | High N and O percentage in biocrude. Fuel upgrading and catalyst cost. |
| Catalytic HTL (FeOx/C) | High-quality biocrude | High liquid yield (about 82%) and enhances fuel characteristics. | Catalyst cost, stability, and economic feasibility. |
| HTcL | Biocrude oil | Enhance efficiency, synergistic effect with other biomass residues. | Process optimization and complicated feedstock management. |
| Catalytic pyrolysis (CaO) | Bio oil, H2-rich gas | Enhanced calorific value. | Dry feedstock is required, and catalyst regeneration. |
| Catalytic pyrolysis (microwave-assisted) | Syngas, biogas | High liquid yield (72%) and enhances fuel quality. | Energy consumption, energy cost, and catalyst cost. |
| Biochar production (pyrolysis) | Biochar | Potential for carbon capture, fuel, and adsorbent applications. | Process conditions have a significant impact on product quality. |
| Biochar production (gasification) | Syngas, biogas | Simultaneous gaseous and solid biofuel generation. | Complex reactor, ash management, and operational optimization. |
| Combustion | Heat and electricity | Easy to use, well-established, commercially accessible, and a high calorific value. | Ash-related issues and NOx emissions may require a deNOx system. |
| Co-combustion | Heat and electricity | Enhances fuel quality properties, synergistic effect, reduces slagging problems, and reduces environmental footprint. | Requires ideal mixing ratios, consistency of feedstock, and optimization of combustion. |
| BSG-derived carbon materials for batteries and advanced energy storage applications | Battery electrodes and supercapacitor materials | Sustainable alternative to graphite with a promising electrochemical performance. | Mostly in lab-scale, activation costs, and still at the research stage. |
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Vasileiadou, A.; Spiliotis, X.; Evagelopoulos, V.; Tsioptsias, C. Sustainable Energy Production and Energy Storage from Brewer’s Spent Grain (BSG): A Review on Technologies and Enhancements for Reducing Environmental Impact and Increasing Efficiency. Appl. Sci. 2026, 16, 6223. https://doi.org/10.3390/app16126223
Vasileiadou A, Spiliotis X, Evagelopoulos V, Tsioptsias C. Sustainable Energy Production and Energy Storage from Brewer’s Spent Grain (BSG): A Review on Technologies and Enhancements for Reducing Environmental Impact and Increasing Efficiency. Applied Sciences. 2026; 16(12):6223. https://doi.org/10.3390/app16126223
Chicago/Turabian StyleVasileiadou, Agapi, Xenophon Spiliotis, Vasilios Evagelopoulos, and Costas Tsioptsias. 2026. "Sustainable Energy Production and Energy Storage from Brewer’s Spent Grain (BSG): A Review on Technologies and Enhancements for Reducing Environmental Impact and Increasing Efficiency" Applied Sciences 16, no. 12: 6223. https://doi.org/10.3390/app16126223
APA StyleVasileiadou, A., Spiliotis, X., Evagelopoulos, V., & Tsioptsias, C. (2026). Sustainable Energy Production and Energy Storage from Brewer’s Spent Grain (BSG): A Review on Technologies and Enhancements for Reducing Environmental Impact and Increasing Efficiency. Applied Sciences, 16(12), 6223. https://doi.org/10.3390/app16126223
