Performance of a Mobile Star Screen to Improve Woodchip Quality of Forest Residues
Abstract
:1. Introduction
2. Materials and Methods
2.1. Product Analyses
2.2. Production and Cost Analyses
3. Results
3.1. Productivity and Cost
3.2. Product Analyses
3.3. Cost-Benefit Comparison
4. Discussion
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Manufacturer | Komptech GmbH |
---|---|
Model | Multistar L3 |
Year of manufacture | 2009 |
Engine type | diesel generator |
Engine power | 60 kVA |
Weight (transport position) | ca. 19 t |
Dimensions in transport position (L × W × H) | 11.3 × 2.6 × 4.0 m |
Dimensions in working position (L × W × H) | 12.8 × 6.3 × 4.0 m |
Hopper volume | ca. 7 m3 |
Coarse screen dimensions (L × W) | 3.2 × 1.3 m |
Fine screen dimensions (L × W) | 5.8 × 1.3 m |
Max. throughput capacity | 180 m3/h |
Setting of the Fine Screen Deck | Harvest Type | Number of Harvesting Sites Sampled |
---|---|---|
1861 rpm (62% of Max. Speed) | Thinning | 4 |
Clear-cut | 4 | |
2239 rpm (74% of Max. Speed) | Thinning | 3 |
Clear-cut | 4 | |
2624 rpm (87% of Max. Speed) | Thinning | 4 |
Clear-cut | 4 |
Star Screen (Multistar L3) | Wheel Loader (Volvo L110H) | Unit | |
---|---|---|---|
Input Data | |||
Purchase price | 350,000.00 | 165,000.00 | € |
Expected useful life | 10,000 | 13,000 | PMH15 |
Technical obsolescence | 10 | 10 | Years |
Annual utilization | 1000 | 1000 | PMH15 |
Utilization barrier | 1000 | 1300 | PMH15 |
Interest rate | 5.0 | 5.0 | % |
Repair cost ratio | 0.75 | 0.90 | |
Material Costs | |||
Interest | 8.75 | 4.13 | €/PMH15 |
Insurance | 3.40 | 3.80 | €/PMH15 |
Depreciation | 35.00 | 16.50 | €/PMH15 |
Repair costs | 26.25 | 8.79 | €/PMH15 |
Fuel costs | 10.08 | 27.36 | €/PMH15 |
Lubricant costs | 2.02 | 5.47 | €/PMH15 |
Total Material Costs | 85.50 | 66.05 | €/PMH15 |
Labor Costs | 0.00 | 30.00 | €/PMH15 |
Total Machine Costs | 85.50 | 96.05 | €/PMH15 |
Total System Costs | 181.55 | €/PSH15 |
Unit | Mean | SD | |
---|---|---|---|
Moisture content | % | 44.58 | 1.44 |
Productivity | t/PSH0 | 20.99 | 2.75 |
t/PSH15 | 20.62 | 3.27 | |
m³ (loose)/PSH0 | 143.74 | 18.87 | |
m³ (loose)/PSH15 | 141.20 | 22.37 | |
Costs | €/t | 9.02 | 1.47 |
€/m³(loose) | 1.32 | 0.21 |
Unscreened Woodchips | Screened Fraction | |||||
---|---|---|---|---|---|---|
Fine | Medium | Coarse | ||||
Setting of the Fine Screen Deck | 1861 rpm (n = 8) | Fibers | 58.23 a | 18.27 b | 69.16 ac | 78.79 c |
Bark | 13.22 a | 15.29 a | 12.87 a | 7.85 a | ||
Twigs | 11.75 a | 6.02 a | 9.68 a | 10.94 a | ||
Needles | 13.32 a | 52.93 b | 5.84 c | 1.43 d | ||
Others | 3.48 a | 7.48 b | 2.46 a | 0.99 a | ||
2239 rpm (n = 7) | Fibers | 58.70 a | 13.17 b | 62.99 ac | 76.47 c | |
Bark | 15.56 a | 12.44 a | 16.66 a | 12.63 a | ||
Twigs | 8.19 a | 5.48 a | 11.76 a | 8.10 a | ||
Needles | 14.07 a | 52.62 b | 6.09 c | 1.92 d | ||
Others | 3.49 a | 16.29 b | 2.50 ac | 0.88 c | ||
2624 rpm (n = 8) | Fibers | 50.16 a | 9.93 b | 48.78 a | 68.62 a | |
Bark | 14.98 a | 13.33 a | 11.81 a | 9.81 a | ||
Twigs | 12.17 ab | 4.03 a | 17.57 b | 16.10 ab | ||
Needles | 17.68 a | 59.64 b | 17.38 a | 3.58 c | ||
Others | 5.02 a | 13.06 b | 4.47 a | 1.89 a |
Fines, % (<3.15 mm) | Acceptable, % (3.15–63 mm) | Oversize, % (>63 mm) | ||||
---|---|---|---|---|---|---|
Setting of the Fine Screen Deck | 1861 rpm (n = 8) | Unscreened Woodchips | 22.86 a | 69.06 a | 8.09 a | |
Screened | Fine fraction | 71.78 b | 28.22 b | 0.00 a | ||
Medium fraction | 8.44 c | 84.42 c | 7.15 a | |||
Coarse fraction | 1.90 c | 49.26 d | 48.85 b | |||
2239 rpm (n = 7) | Unscreened Woodchips | 22.24 a | 68.19 ac | 9.58 a | ||
Screened | Fine fraction | 69.10 b | 30.90 b | 0.00 a | ||
Medium fraction | 8.97 ac | 80.92 a | 10.11 a | |||
Coarse fraction | 2.14 c | 54.07 c | 43.79 b | |||
2624 rpm (n = 8) | Unscreened Woodchips | 25.93 a | 66.71 a | 7.35 a | ||
Screened | Fine fraction | 80.56 b | 19.44 b | 0.00 a | ||
Medium fraction | 23.88 a | 71.16 a | 4.83 a | |||
Coarse fraction | 5.55 c | 53.15 c | 41.29 b |
Unscreened | Screened Fraction | |||||
---|---|---|---|---|---|---|
Fine | Medium | Coarse | ||||
Setting of the Fine Screen Deck | 1861 rpm (n = 8) | Moisture content (%) | 46.42 ab | 56.97 a | 52.09 a | 41.41 b |
Ash content (%) | 2.70 a | 7.65 b | 2.36 a | 1.29 a | ||
Energy content (MJ/kg) | 20.6 a | 20.4 a | 20.7 a | 20.6 a | ||
Nutrient content: | ||||||
C (%) | 51.1 a | 47.8 b | 52.4 c | 52.6 c | ||
N (ppm) | 3727 a | 7139 b | 2963 ac | 2477 c | ||
P (ppm) | 300 a | 543 b | 241 a | 223 a | ||
K (ppm) | 1094 a | 1614 b | 948 a | 1082 a | ||
Ca (ppm) | 3954 a | 6147 b | 3701 a | 3157 a | ||
Mg (ppm) | 511 a | 781 b | 483 a | 403 a | ||
2239 rpm (n = 7) | Moisture content (%) | 45.64 ab | 50.97 a | 48.36 a | 42.87 b | |
Ash content (%) | 3.56 a | 16.29 b | 2.70 a | 1.41 a | ||
Energy content (MJ/kg) | 20.4 ab | 19.0 a | 20.5 ab | 20.6 b | ||
Nutrient content: | ||||||
C (%) | 51.0 a | 47.9 b | 52.2 c | 52.4 c | ||
N (ppm) | 3708 a | 7777 b | 3193 ac | 2549 c | ||
P (ppm) | 295 a | 588 b | 271 a | 231 a | ||
K (ppm) | 1086 a | 1708 b | 1056 a | 1116 a | ||
Ca (ppm) | 4111 a | 6223 b | 4248 a | 3687 a | ||
Mg (ppm) | 512 a | 841 b | 532 a | 433 a | ||
2624 rpm (n = 8) | Moisture content (%) | 41.80 a | 55.62 b | 52.92 b | 47.11 a | |
Ash content (%) | 4.30 a | 10.53 b | 3.34 a | 2.24 a | ||
Energy content (MJ/kg) | 20.6 ab | 19.6 a | 20.5 ab | 20.7 b | ||
Nutrient content: | ||||||
C (%) | 50.8 a | 47.7 b | 52.0 c | 52.3 c | ||
N (ppm) | 4298 a | 8053 b | 4670 a | 3055 c | ||
P (ppm) | 350 a | 610 b | 384 a | 279 a | ||
K (ppm) | 1236 a | 1751 b | 1330 a | 1229 a | ||
Ca (ppm) | 4473 a | 6436 b | 4459 a | 3737 a | ||
Mg (ppm) | 576 ac | 856 b | 639 a | 481 c |
Setting of the Fine Screen Deck | |||
---|---|---|---|
(1861 rpm) | (2239 rpm) | (2624 rpm) | |
Screening Costs 1 (€/t) | 14.05 | 12.36 | 11.47 |
Incidence of Acceptable Particles 1 (%) | 84.42 | 80.92 | 71.16 |
Av. Energy Content 1 (MJ/kg) | 20.68 | 20.46 | 20.45 |
Av. Ash Content 1 (%) | 2.36 | 2.70 | 3.34 |
Av. Nitrogen Content 1 (ppm) | 2963 | 3193 | 4670 |
Av. Needle Content 1 (%) | 5.84 | 6.09 | 17.38 |
© 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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Huber, C.; Kroisleitner, H.; Stampfer, K. Performance of a Mobile Star Screen to Improve Woodchip Quality of Forest Residues. Forests 2017, 8, 171. https://doi.org/10.3390/f8050171
Huber C, Kroisleitner H, Stampfer K. Performance of a Mobile Star Screen to Improve Woodchip Quality of Forest Residues. Forests. 2017; 8(5):171. https://doi.org/10.3390/f8050171
Chicago/Turabian StyleHuber, Christoph, Huberta Kroisleitner, and Karl Stampfer. 2017. "Performance of a Mobile Star Screen to Improve Woodchip Quality of Forest Residues" Forests 8, no. 5: 171. https://doi.org/10.3390/f8050171
APA StyleHuber, C., Kroisleitner, H., & Stampfer, K. (2017). Performance of a Mobile Star Screen to Improve Woodchip Quality of Forest Residues. Forests, 8(5), 171. https://doi.org/10.3390/f8050171