Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Methods and Data
2.2.1. Goal and Scope Definition
2.2.2. Life Cycle Inventory Analysis
(1) Field Operations
- Emachine = direct energy consumption of using the machine (MJ·fen−1);
- P = power of the machine (hp);
- T = the time the machine worked on the field (h·fen−1);
- Eff = efficiency of the engine of the machine (%).
- Etruck = energy consumption of the truck (MJ·fen−1);
- Ecum = cumulative energy demand of using the truck (MJ·ton-km−1);
- D = distance traveled of the truck (km·time−1);
- t = times the truck was used in one CS (time);
- L = load of the truck (ton);
- S = size of the paddy on which the machines worked (fen).
(2) Chemicals and Organic Compounds
(3) Seedlings
(4) Irrigation
(5) Rice Paddies
(6) Drying and Refining
- Edrying = direct energy consumption of the drying machine (MJ·fen−1);
- Pdrying = power of the drying machine (hp);
- Tdrying = the time that the drying process takes (h·batch−1);
- Eff = efficiency of the engine of the drying machine (%);
- G = amount of grain for 1 batch (kg·batch−1).
(7) Economic Aspects
3. Results and Discussion
3.1. Sustainability Aspects
3.1.1. GHG Emissions
3.1.2. Water Consumption
3.1.3. Energy Consumption
3.1.4. Economic Aspects
3.2. Potentials of Organic Farming in Houbi District
3.3. Fallow and Non-Fallow Period
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Appendix: Calculation of the Electricity Consumption
- For the first CS (B and C periods last for around five months, January–May)
- For the second CS (B and C periods last for around four months, July–October)
Electricity Consumption (kWh Month−1) | Price of Electricity | |
---|---|---|
June to September (TWD·kWh−1) | October to May (TWD·kWh−1) | |
< 120 | 2.10 | 2.10 |
121–330 | 3.02 | 2.68 |
331–500 | 4.39 | 3.61 |
501–700 | 5.44 | 4.48 |
701–1000 | 6.16 | 5.03 |
> 1001 | 6.71 | 5.28 |
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Conventional Farm | Organic Farm * | |
---|---|---|
Location | Houbi District, Tainan City (southwestern Taiwan) | Luoshan, Fuli Township, Hualien County (eastern Taiwan) |
Temperature [32] | Average (30 years): 24.3 °C | Average (30 years): 23.4 °C |
Lowest: 17.6 (January) | Lowest: 18.0 °C (January) | |
Highest: 29.2 °C (July) | Highest: 28.5 °C (July) | |
Precipitation [32] | Annual: 1698.2 mm | Annual: 2176.8 m |
Lowest: 14.4 mm (December) | Lowest: 62.2 mm (January) | |
Highest: 395.1 mm (August) | Highest: 399.2 mm (September) | |
Crop season (CS) [33,34] | First: January–May | First: January–May |
Second: July–October or early November | Second: July–October or early November | |
Yield of rice [33,34] | First CS: 810–990 kg·dry·grain·fen−1 | First and second CS: 420–540 kg·dry·grain·fen−1 |
Second CS: 585–630 kg·dry·grain·fen−1 | ||
Rice breed [33,34] | Taigeng No. 9 | Kaohsiung No. 139 |
Seeding density [33,34,35] | 9.6 kg·seed·fen−1·CS−1 | 5.5 kg·seed·fen−1·CS−1 |
Farming activities [33,34] | Ploughing (twice), transplanting (once), applying fertilizer and pesticide (4 times), and harvesting (once) | Ploughing (2–3 times), transplanting (once), organic fertilizer and organic pesticide applying (2–3 times), weeding (2–4 times), harvesting (once) |
Data Category | Source |
---|---|
Field operation | |
|
|
Chemicals and Organic compounds | |
|
|
Seedling | |
| |
Irrigation | |
|
|
Rice paddies | |
|
|
Drying and refining | |
|
|
Machinery | Specification (hp: Horsepower) |
---|---|
Ploughing machine | 135 hp |
Transplanting machine | 21 hp |
Spraying machine | 6 hp |
Harvester | 105 hp |
Truck | 80 hp, 4-ton load |
Fertilizer | Active Ingredients (%) | Amount (kg·fen−1·CS−1) | |||||
---|---|---|---|---|---|---|---|
N | NH4 | NO3− | P2O5 | K2O | Organic Matter | ||
Conventional | |||||||
Ammonium sulfate | 21 | 21 | -- | -- | -- | 40 | |
TaiFer * #1 Compound fertilizer | 20 | 10 | 8 | 5 | 10 | 40 | |
TaiFer * #39 Compound fertilizer | 12 | 6 | -- | 18 | 12 | 80 | |
Organic | |||||||
Hao Le Te #2 Compound organic fertilizer | 5 | 2 | 2 | 84 | 140 |
Pesticide | Active Ingredient (Chemical Class) | Ecoinvent | Amount (kg·fen−1·CS−1) |
---|---|---|---|
Conventional | |||
Chuan Chi Chu [54] | Mefenacet + bensulfuron-methyl [55] (sulfonylurea [56]) | (Sulfonyl) urea compounds | 0.091 [54] |
Hsi To Sheng [54] | Edifenphos [55] (phosphorothioate [57]) | Fungicide | 0.100 [54] |
Wen Sha Ning [54] | Pencycuron [55] (Phenylurea [57]) | Diuron | 0.046 [54] |
Chung Ching Ching [54] | Alpha-cypermethrin [55] (pyrethroid [58]) | Pyrethroid compounds | 0.006 [54] |
Hsing Nung Sheng [54] | Mancozeb [55] (dithiocarbamate [57]) | Mancozeb | 0.043 [54] |
Organic | |||
Camellia meal [34] | Camellia meal [34] | Rape meal | 6 [34] |
Chili water [34] | Chili [32] | -- | 350 [34] |
Farm | Conventional | Organic (Luoshan) | Organic (Houbi) | |||
---|---|---|---|---|---|---|
GHG | CH4 a | N2O b | CH4 a | N2O b | CH4 a | N2O b |
Normal cropping season | ||||||
B1, C1 (first CS) | 6.15 c | 0.045 d | 15.83 e | 0.060 f | 7.59 g | 0.016 h |
B2, C2 (second CS) | 25.3 c | 0.051 d | 22.69 i | 0.0003 j | 31.20 k | 0.018 l |
A1, R1 (summer fallow) | 0.47 m | 0.030 n | 0.59 o | 0.010 p | 0.59 o | 0.010 p |
A2, R2 (winter fallow) | 1.08 q | 0.030 n | 1.33 r | 0.010 p | 1.33 r | 0.010 p |
Fallow season (no rice cultivated) | ||||||
B1, C1 | 1.58 c | 0.030 n | 1.95 s | 0.010 p | 1.95 s | 0.010 p |
B2, C2 | 2.58 c | 0.030 n | 3.19 t | 0.010 p | 3.19 t | 0.010 p |
A1, R1 | 0.47 m | 0.030 n | 0.59 o | 0.010 p | 0.59 o | 0.010 p |
A2, R2 | 1.08 q | 0.030 n | 1.33 r | 0.010 p | 1.33 r | 0.010 p |
Conventional (Houbi) | Organic (Luoshan) | ||||||
---|---|---|---|---|---|---|---|
Category | Price (TWD·unit−1) | Amount (unit·fen−1) | Unit | Category | Price (TWD·unit−1) | Amount (unit·fen−1) | Unit |
Expenditure | |||||||
Chemicals | Organic compounds | ||||||
Ammonium sulfate | 250 | 1 | pack | Hao Le Te #2 | 10 | 140 | kg |
TaiFer a #1 | 310 | 1 | pack | Camellia meal | 15 | 6 d | kg |
TaiFer a #39 | 350 | 2 | pack | ||||
Chuan Chi Chu | 175 | 1 | pack | ||||
Hsi To Sheng | 580 | 0.2 | bottle | ||||
Wen Sha Ning | 290 | 0.2 | bottle | ||||
Chung Ching Ching | 320 | 0.1 | bottle | ||||
Hsing Nung Sheng | 250 | 0.066 | bottle | ||||
Power | |||||||
Electricity | 1000 | -- | fen | Electricity | 1000 | -- | fen |
Wages | |||||||
Ploughing | 550 | 2 | time | Ploughing | 550 | 3 | time |
Transplanting | 550 | 1 | time | Transplanting | 600 | 1 | time |
Pesticide spraying | 200 | 4 | time | Harvesting | 1100 | 1 | time |
Harvesting | 900 | 1 | time | Weeding | 500 | 4 | time |
Seedling | 30 | 30 | box | Seedling | 30 | 30 | box |
Income | |||||||
Dry grain | 21.3 | 810 b, 585 c | kg | Dry grain | 28 | 420 e | kg |
Impact | Conventional (Houbi) | Organic (Luoshan) | ||||
---|---|---|---|---|---|---|
First CS | Second CS | Annual | First CS | Second CS | Annual | |
Unit * | Unit * | Unit * | Unit * | Unit * | Unit * | |
GHG emissions | 715 | 1206 | 1920 | 577 | 706 | 1282 |
Chemical/Organic compound | 149 | 149 | 298 | 46 | 49 | 95 |
Fertilizer | 146 | 146 | 292 | 46 | 46 | 93 |
Pesticide | 3 | 3 | 6 | 0 | 2 | 2 |
Power | 282 | 249 | 531 | 40 | 40 | 80 |
Fuel | 42 | 42 | 85 | 40 | 40 | 80 |
Electricity | 239 | 207 | 446 | -- | -- | -- |
Rice paddy | 215 | 698 | 913 | 468 | 585 | 1053 |
Methane | 157 | 644 | 801 | 400 | 581 | 981 |
Nitrous oxide | 58 | 54 | 112 | 68 | 4 | 72 |
Seedling | 18 | 18 | 35 | 12 | 12 | 24 |
Water consumption | 1257 | 1030 | 2287 | 3537 | 3257 | 6794 |
Irrigation | 1253 | 1025 | 2278 | 3534 | 3252 | 6786 |
Pesticide | 1 | 1 | 2 | 1 | 1 | 1 |
Seedling | 3 | 5 | 7 | 3 | 5 | 7 |
Seed disinfection | 0.02 | 0.02 | 0.03 | -- | -- | -- |
Washing/immersing | 0.06 | 0.06 | 0.13 | 0.02 | 0.02 | 0.03 |
Soil preparation | 0.01 | 0.01 | 0.02 | 0.01 | 0.01 | 0.02 |
Bud greening | 3 | 5 | 7 | 3 | 5 | 7 |
Energy consumption | 6120 | 5530 | 11,650 | 943 | 1025 | 1968 |
Fuel | 962 | 962 | 1924 | 942 | 942 | 1885 |
Electricity | 4289 | 3699 | 7988 | -- | -- | -- |
Fertilizer | 812 | 812 | 1625 | 1 | 1 | 1 |
Pesticide | 57 | 57 | 113 | 0 | 82 | 82 |
Impact | Conventional (Houbi) | Organic (Luoshan) | ||||
---|---|---|---|---|---|---|
First CS | Second CS | Annual | First CS | Second CS | Annual | |
GHG emissions * | 1.1 | 2.5 | 1.7 | 1.8 | 2.2 | 2.0 |
Cultivation | 1.0 | 2.4 | 1.6 | 1.7 | 2.1 | 1.9 |
Drying and refining | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 |
Energy consumption * | 11.6 | 13.8 | 12.5 | 4.9 | 4.9 | 4.9 |
Cultivation | 9.6 | 12.0 | 10.6 | 2.8 | 3.1 | 3.0 |
Drying and refining | 2.0 | 1.9 | 2.0 | 2.1 | 1.9 | 2.0 |
Impacts and Annual Net Income (Unit) | Yield Scenarios (on Luoshan Basis) | ||||
---|---|---|---|---|---|
−10% | +0% | +10% | +20% | +30% | |
GHG (kg-CO2·equiv. ·kg-dried·rice−1) | 2.9 | 2.6 | 2.4 | 2.2 | 2.0 |
Water consumption (m3·kg-dried·rice−1) | 3.4 | 3.1 | 2.8 | 2.6 | 2.4 |
Energy consumption (MJ·kg-dried·rice−1) | 19.0 | 17.3 | 15.9 | 14.8 | 13.8 |
Annual net income (TWD·fen−1) | 5178 | 7530 | 9882 | 12234 | 14586 |
Farms | Equivalent | |||
---|---|---|---|---|
GHG Emissions | Water Consumption | Energy Consumption | Net Income | |
Organic farm, Luoshan | 1073 | 254 | 2405 | 912 |
Conventional farm, Houbi | 1246 | 1142 | 980 | 1125 |
Fallow CS | kg-CO2·equiv. | kg-dry·grain |
---|---|---|
First CS, conventional | –0.44 | –0.64 |
Second CS, conventional | –0.94 | –0.57 |
First CS, organic | –0.13 | –0.12 |
Second CS, organic | –0.17 | –0.13 |
© 2016 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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Lin, H.-C.; Fukushima, Y. Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System. Sustainability 2016, 8, 529. https://doi.org/10.3390/su8060529
Lin H-C, Fukushima Y. Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System. Sustainability. 2016; 8(6):529. https://doi.org/10.3390/su8060529
Chicago/Turabian StyleLin, Hung-Chun, and Yasuhiro Fukushima. 2016. "Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System" Sustainability 8, no. 6: 529. https://doi.org/10.3390/su8060529
APA StyleLin, H. -C., & Fukushima, Y. (2016). Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System. Sustainability, 8(6), 529. https://doi.org/10.3390/su8060529