| Literature DB >> 26404327 |
Yann Nicolas Barbot1, Laurenz Thomsen2, Roland Benz3.
Abstract
Eutrophication is a phenomenon which can rapidly generate masses of marine macroalgae, particularly in areas with high nutrient pollution. Washed ashore, this biomassEntities:
Keywords: Baltic Sea; Rügen; algae; beach management; biogas; bioremediation; eutrophication; pretreatment; waste treatment
Mesh:
Substances:
Year: 2015 PMID: 26404327 PMCID: PMC4584348 DOI: 10.3390/md13095681
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Elementary analysis of RM biomass and literature values of elemental composition of maize.
| Category | Element | Rügen-Mix | Maize [ | Unit |
|---|---|---|---|---|
| Heavy metals (BioAbfV) | Lead (Pb) | 8.6 | 2 | mg·kg−1 TS |
| Cadmium (Cd) | 3.2 | 0.7 | ||
| Chromium (Cr) | 13 | 0.5 | ||
| Copper (Cu) | 20 | 4.5–5 | ||
| Nickel (Ni) | 15 | 5 | ||
| Mercury (Hg) | 0.05 | |||
| Zinc (Zn) | 141 | 35–56 | ||
| Macronutrients | Phosphorous (P) | 1900 | 2200 | |
| Potassium (K) | 11,400 | 17,800 | ||
| Magnesium (Mg) | 6030 | 2700 | ||
| Calcium (Ca) | 16,200 | 4500 | ||
| Sulfur (S) | 19,800 | 2700 | ||
| C/N ratio | 8.75:1 | ~30:1 | ||
| Total carbon | 35 | 43 | % TS | |
| Total nitrogen | 40,000 | 14,000 | mg·kg−1 TS | |
| Micronutrients | Molybdenum (Mo) | 1.2 | 0.3 | mg·kg−1 TS |
| Iron (Fe) | 6200 | 184 | ||
| Cobalt (Co) | 1.2 | 65 | ||
| Selenium (Se) | 0.8 | |||
| Manganese (Mn) | 180 | 29 |
Composition and theoretical methane potential of Rügen-Mix biomass.
| Fraction | Component | Share [%] | Theoretical CH4 | Unit |
|---|---|---|---|---|
| Volatile solids | 68.9 | |||
| Carbohydrate | 44.3 | 164 | mL·g−1 TS | |
| 238 | mL·g−1 VS | |||
| Fiber | 9.7 | |||
| Protein | 24.4 | 112 | mL·g−1 TS | |
| 163 | mL·g−1 VS | |||
| Lipid | 0.2 | 2 | mL·g−1 TS | |
| 3 | mL·g−1 VS | |||
| Inorganic solids | 31.1 | |||
| Total | 100 | 278 | mL·g−1 TS | |
| 404 | mL·g−1 VS |
Figure 1Reaction time of thermo-acidic pretreatment: Net accumulated methane production of pretreated and untreated (U) Rügen-Mix. Pretreatment was applied for 30 min, 60 min, 90 min, and 120 min at 80 °C in 0.2 M HCl (a). (b) shows the histogram of the final net methane yield in mL·g−1 VS algae biomass. The values of the final methane yield are reported in Table 3 and were taken at Day 22.
Figure 2Acid concentration for pretreatment: Net accumulated methane production of pretreated and untreated (U) Rügen-Mix (a). Pretreatment was applied at 80 °C for 2 h in 0.05 M (0.05 M), 0.1 M (0.1 M), and 0.2 M HCl (0.2 M) and at 100 °C for 2 h in 0.2 M HCl (100 °C); (b) shows the final net methane yield in mL·g−1 VS algae biomass. The values of the final methane yield are reported in Table 3 and were taken at Day 22.
Figure 3Thermo-acidic pretreatment with FGC: Net accumulated methane production of pretreated and untreated (U) Rügen-Mix. Pretreatment was applied for 2 h at 80 °C in HCl, pH 1.2 (HCl), and FGC, pH 1.2 (FGC), and water (H2O) (a). (b) shows the histogram of the final net methane yield in mL·g−1 VS algae biomass. The values of the final methane yield are reported in Table 3 and were taken at Day 22.
Kinetic decay constants (K) and related values of degradation dynamics (time until 50%, 70%, and 90% of maximum BMP (T50, T70, T90) were produced) for all batch experiments. Name of the sample (Name), pretreatment medium and concentration (Medium), pretreatment conditions (PT conditions), and maximum BMP are stated with standard deviation (SD).
| Name | Medium | PT conditions | K (d−1) | T50 | T70 | T90 | BMP [mL·g−1 VS] | SD |
|---|---|---|---|---|---|---|---|---|
| U | RM untreated | - | 0.2145 | 3.7 | 6.4 | 12.3 | 87 | ±7 |
| RM-U | RM untreated | - | 0.1912 | 3.6 | 6.3 | 12.0 | 96 | ±4 |
| 0.05 M | 0.05 M HCl | 80 °C/2 h | 0.2899 | 2.4 | 4.2 | 7.9 | 66 | ±6 |
| 0.1 M | 0.1 M HCl | 80 °C/2 h | 0.2591 | 2.7 | 4.6 | 8.9 | 95 | ±10 |
| 0.2 M | 0.2 M HCl | 80 °C/2 h | 0.2476 | 2.8 | 4.9 | 9.3 | 98 | ±11 |
| 100 °C | 0.2 M HCl | 100 °C/2 h | 0.305 | 2.8 | 4.9 | 9.4 | 103 | ±10 |
| 30 min | 0.2 M HCl | 80 °C /30 min | 0.2662 | 2.6 | 4.5 | 8.6 | 90 | ±20 |
| 60 min | 0.2 M HCl | 80 °C/60 min | 0.2536 | 2.7 | 4.7 | 9.1 | 94 | ±8 |
| 90 min | 0.2 M HCl | 80 °C/90 min | 0.2442 | 2.8 | 4.9 | 9.4 | 121 | ±7 |
| HCl | HCl pH 1.2 | 80 °C/2 h | 0.2467 | 2.8 | 4.9 | 9.3 | 103 | ±10 |
| FGC | FGC pH 1.2 | 80 °C/2 h | 0.2477 | 2.8 | 4.9 | 9.3 | 108 | ±11 |
| H2O | H2O | 80 °C/2 h | 0.1976 | 3.5 | 6.1 | 11.7 | 80 | ±11 |
| MS-U | MS untreated | - | 0.2543 | 2.7 | 4.7 | 9.1 | 303 | ±37 |
| 50/50 | MS/RM 50%/50% | - | 0.2428 | 2.9 | 5.0 | 9.5 | 210 | ±16 |
| 75/25 | MS/RM 75%/25% | - | 0.2628 | 2.6 | 4.6 | 8.8 | 255 | ±31 |
Figure 4Co-digestion with maize silage: Net accumulated methane production of monodigestion from Rügen-Mix (RM-U), maize silage (MS-U), and their respective blends, 50% RM/50% MS (50/50) and 25% RM/75% MS (25/75) (a). (b) shows the histogram of the real final net methane yield in mL·g−1 VS algae biomass, along with the theoretical BMPs (T). The values of the final methane yield are reported in Table 3 and were taken at Day 22.
Figure 5Continuous fermentation at mesophilic operation: Mesophilic continuous AD of untreated Rügen-Mix showing the process parameters; cumulative CH4 volume [L], specific volumetric CH4 production (calculated) per VS feed load (L·g−1·d−1) (a), pH value and conductivity EC in mS·cm−1 (b), VS and TS concentrations (% from total weight) (c). VS and TS represent average values from three individual measurements and error bars are defined by ±SD.
Mesophilic and thermophilic operating conditions of the bioreactors with their respective specific CH4 production rates.
| Mode | Phase | Time [days] | CH4 production [mL·g−1·d−1 VS] | OLR [g·L−1·d−1] | HRT [d] |
|---|---|---|---|---|---|
| Meso | P1 | 4–21 | 73 | 1.0 | 40 |
| P2 | 22–35 | 68 | 1.5 | 40 | |
| P3 | 36–69 | 62 | 2.0 | 40 | |
| P4 | 70–132 | 54 | 2.5 | 40 | |
| P5 | 133–175 | 53 | 2.5 | 31 | |
| Thermo | 4–57 | 65 | 3.0 | 15 |
Figure 6Continuous fermentation at thermophilic operation: Thermophilic continuous AD of untreated Rügen-Mix showing the process parameters; cumulative CH4 volume [L], specific volumetric CH4 production (calculated) per VS feed load (L·g−1·d−1) (a), pH value and conductivity EC in mS·cm−1 (b), VS and TS concentration (% from total weight) (c). VS and TS represent average values from three individual measurements and error bars are defined by ±SD.
Macro- and micronutrient composition and heavy metal concentration of RM, RMR, average energy crop digestate (digestate) [45], and the limiting concentrations for component declaration according to DüMV.
| Category | Element | RM | RMR | Digestate | DüMV | Unit |
|---|---|---|---|---|---|---|
| Heavy metals (BioAbfV) | Lead (Pb) | 8.6 | 11 | 2.9 | 150 | mg·kg−1 TS |
| Cadmium (Cd) | 3.2 | 3.8 | 0.26 | 1.5 | ||
| Chromium (Cr) | 13 | 21 | 9.0 | 300 | ||
| Copper (Cu) | 20 | 28 | 69 | 70 | ||
| Nickel (Ni) | 15 | 20 | 7.5 | 80 | ||
| Mercury (Hg) | 0.05 | 0.04 | 0.03 | 1 | ||
| Zinc (Zn) | 141 | 215 | 316 | 500 | ||
| Macronutrients | Phosphorous (P) | 1900 | 2800 | 25,700 | 300 | |
| Potassium (K) | 11,400 | 14,800 | 71,400 | 500 | ||
| Magnesium (Mg) | 6030 | 8120 | 12,000 | 300 | ||
| Calcium (Ca) | 16,200 | 21,300 | 30,000 | 500 | ||
| Sulfur (S) | 19,800 | 21,300 | 4710 | 300 | ||
| C/N ratio | 8.75:1 | 10:1 | 6.4:1 | |||
| Total carbon | 35 | 42 | 43 | % TS | ||
| Total nitrogen | 40,000 | 21,300 | 67,140 | 1000 | mg·kg−1 TS | |
| Micronutrients | Molybdenum (Mo) | 1.2 | 1.6 | 2 | mg·kg−1 TS | |
| Iron (Fe) | 6200 | 8560 | 100 | |||
| Cobalt (Co) | 1.2 | 2.9 | 4 | |||
| Selenium (Se) | 0.8 | 1 | ||||
| Manganese (Mn) | 180 | 280 | 200 |
List of pretreatment conditions applied in this work for acid hydrolysis of Rügen-Mix. Name of the sample (Name), PT reaction time (Reaction time), PT temperature (Temperature), PT medium (Medium), and concentration of the medium (Concentration).
| Name | Reaction time | Temperature | Medium | Concentration |
|---|---|---|---|---|
| RM-U; U | - | - | H2O | - |
| 0.05 M | 2 h | 80 °C | HCl | 0.05 M |
| 0.1 M | 2 h | 80 °C | HCl | 0.1 M |
| 0.2 M | 2 h | 80 °C | HCl | 0.2 M |
| 30 min | 30 min | 80 °C | HCl | 0.2 M |
| 60 min | 60 min | 80 °C | HCl | 0.2 M |
| 90 min | 90 min | 80 °C | HCl | 0.2 M |
| HCl | 2 h | 80 °C | HCl | pH 1.2 |
| FGC | 2 h | 80 °C | FGC | pH 1.2 |
| H2O | 2 h | 80 °C | H2O | - |
| 100 | 2 h | 100 °C | HCl | 0.2 M |