Expanding the Level of Technological Readiness for a Low-Cost Vertical Hydroponic System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Integrative Research Review
2.2. System Design
2.3. Technological Readiness Level (TRL)
- TRL 1. This is the lowest level of technological maturity at which scientific research begins to translate into applied research.
- TRL 2. Once fundamentals are verified, practical applications are devised. The examples are limited to speculative studies or utility models.
- TRL 3. In this stage, the product development starts. The work proceeds to the experimental phase to verify that the concept operates as expected.
- TRL 4. This level is considered as “low-fidelity” and determines if the individual elements could work as a system (Systems Readiness Level, SRL) [55].
- TRL 5. The basic technology components are integrated in a “high-fidelity” lab-scale system.
- TRL 6. The engineering development begins. The prototype must be able to perform all the functions required for a real environment. This represents an important step in demonstrating the maturity of a technology.
- TRL 7. This step requires the demonstration of the prototype in a real situation. The final design is practically complete.
- TRL 8. This TRL constitutes the end of system development, with testing in its final form and under the expected conditions.
- TRL 9. The technology is ready and the commercial manufacturing process can begin.
3. Results and Discussion
3.1. Dimensions of the Modular System Built
3.2. LED Technology and Shading Influence
3.3. Production and Costs
4. Conclusions
5. Patents
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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tunnel_width (m) | 7 |
tunnel_length (m) | 60 |
number_tunnels_per_ha | 25 |
module_length (m) | 2 |
number_modules_per_row_and_tunnel | 27 |
number_rows_per_tunnel | 4 |
number_modules_per_tunnel | 108 |
number_substrate_bags_per_module_3_levels | 6 |
number_substrate_bags_per_module_2_levels | 4 |
number_substrate_bags_per_conventional_hydroponic_system | 2 |
number_substrate_bags_per_tunnel_module_3_levels | 648 |
number_substrate_bags_per_tunnel_module_2_levels | 432 |
number_substrate_bags_per_tunnel_conventional_hydroponic_system | 216 |
number_plants_per_tunnel_module_3_levels | 8424 |
number_plants_per_tunnel_module_2_levels | 5616 |
number_plants_per_tunnel_conventional_hydroponic_system | 2592 |
number_plants_per_ha_module_3_levels | 210,600 |
number_plants_per_ha_module_2_levels | 140,400 |
number_plants_per_ha_conventional_hydroponic_system | 64,800 |
Conventional Hydroponic Solution | Three-Level Modules | |
---|---|---|
Variable costs | 22,680 | 69,660 |
Substrate sacks | 16,200 | 48,600 |
Strawberry plants | 6480 | 21,060 |
Fixed cost | ||
Hydroponic system | 160,200 | 337,500 |
Total implementation cost | 182,880 | 407,160 |
Total implementation cost per plant | 28.22 | 19.33 |
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Borrero, J.D. Expanding the Level of Technological Readiness for a Low-Cost Vertical Hydroponic System. Inventions 2021, 6, 68. https://doi.org/10.3390/inventions6040068
Borrero JD. Expanding the Level of Technological Readiness for a Low-Cost Vertical Hydroponic System. Inventions. 2021; 6(4):68. https://doi.org/10.3390/inventions6040068
Chicago/Turabian StyleBorrero, Juan D. 2021. "Expanding the Level of Technological Readiness for a Low-Cost Vertical Hydroponic System" Inventions 6, no. 4: 68. https://doi.org/10.3390/inventions6040068
APA StyleBorrero, J. D. (2021). Expanding the Level of Technological Readiness for a Low-Cost Vertical Hydroponic System. Inventions, 6(4), 68. https://doi.org/10.3390/inventions6040068