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report:intro [2026/06/12 17:36] – [1.3 Product] team4report:intro [2026/06/12 18:01] (current) – [1.7 Tests] team4
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-=== 1.3 Product ===+==== 1.3 Product ====
  
 Maris Habitats is a modular reef infrastructure and environmental monitoring system designed for underwater environments. The product combines physical Reef Blocks with an optional removable Smart Module, allowing it to provide both habitat support and long-term environmental data collection. Maris Habitats is a modular reef infrastructure and environmental monitoring system designed for underwater environments. The product combines physical Reef Blocks with an optional removable Smart Module, allowing it to provide both habitat support and long-term environmental data collection.
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 This project focuses on developing a sustainable and technically feasible concept for a modular artificial reef system with environmental monitoring functions. The main goal is not to prove immediate biological recovery, but to design a reef structure and a basic sensing system that can support future marine restoration and monitoring projects. This project focuses on developing a sustainable and technically feasible concept for a modular artificial reef system with environmental monitoring functions. The main goal is not to prove immediate biological recovery, but to design a reef structure and a basic sensing system that can support future marine restoration and monitoring projects.
  
-The first objective is to design a modular reef structure that can be adapted to different sites and project sizes. The structure should be made of repeatable blocks that can be combined in several ways. These blocks should provide surfaces, cavities, and sheltered spaces that may support habitat formation over time.+The first objective is to design a modular reef structure that can be adapted to different sites and project sizes. The structure should be made of repeatable Reef Blocks that can be combined in several ways. These blocks should provide surfaces, cavities, and sheltered spaces that may support habitat formation over time.
  
 Another important objective is to select materials that are suitable for marine conditions. For the final design, durable and environmentally compatible materials, such as basalt fiber-reinforced concrete, are considered because they can improve resistance to seawater conditions and reduce long-term environmental risks [(FIORE2015)], [(QU2021)]. Another important objective is to select materials that are suitable for marine conditions. For the final design, durable and environmentally compatible materials, such as basalt fiber-reinforced concrete, are considered because they can improve resistance to seawater conditions and reduce long-term environmental risks [(FIORE2015)], [(QU2021)].
  
-The project also aims to include a removable Smart Module. Instead of placing electronics permanently inside the Reef Module, the system uses a Smartlogger placed in a Smartlogger attachment. This makes it easier to check, repair, or replace electronic components without removing the whole Reef Module from the seabed.+The project also aims to include a removable Smart Module. Instead of placing electronics permanently inside the Reef Block, the system uses a Smartlogger placed in a Smartlogger attachment. The Smart Module consists of the Smartlogger and the Smartlogger attachment. This makes it easier to check, repair, or replace electronic components without removing the whole Reef Block from the seabed.
  
 A further objective is to collect useful environmental data. In the final system, the intended parameters include temperature, pressure or depth, pH, and conductivity. This data can help users understand the conditions around the installation site and observe how the surrounding marine environment changes over time. A further objective is to collect useful environmental data. In the final system, the intended parameters include temperature, pressure or depth, pH, and conductivity. This data can help users understand the conditions around the installation site and observe how the surrounding marine environment changes over time.
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 For the prototype, the objective is more limited. The prototype is intended to validate the basic sensing and data logging concept under controlled conditions. Due to budget and component availability, it uses a simplified sensor set, including temperature, pressure, and total dissolved solids (TDS). The pH and conductivity sensors are reserved for the final product. For the prototype, the objective is more limited. The prototype is intended to validate the basic sensing and data logging concept under controlled conditions. Due to budget and component availability, it uses a simplified sensor set, including temperature, pressure, and total dissolved solids (TDS). The pH and conductivity sensors are reserved for the final product.
  
-Finally, the project aims to reduce unnecessary disturbance to the marine environment. The removable Smartlogger allows maintenance, battery replacement, and data collection to be carried out without disturbing the main Reef ModuleThis also reduces the risk of leaving failed electronic components underwater.+Finally, the project aims to reduce unnecessary disturbance to the marine environment. The removable Smart Module allows maintenance, battery replacement, and data collection to be carried out without disturbing the main Reef BlockSince the Smartlogger can be removed from the Smartlogger attachment, failed or damaged electronic components can also be taken out instead of being left underwater. 
  
 ==== 1.6 Requirements ==== ==== 1.6 Requirements ====
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 Because the project separates the final product from the prototype, the requirements are also considered at two levels. The final product is intended for long-term marine deployment, while the prototype is designed to validate the basic sensing and data logging concept under controlled conditions. Because the project separates the final product from the prototype, the requirements are also considered at two levels. The final product is intended for long-term marine deployment, while the prototype is designed to validate the basic sensing and data logging concept under controlled conditions.
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 === 1.6.1 Functional Requirements === === 1.6.1 Functional Requirements ===
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 The physical reef structure must include cavities, textured surfaces, and sheltered spaces that may support the attachment and growth of marine organisms over time [(Graham2013)]. The physical reef structure must include cavities, textured surfaces, and sheltered spaces that may support the attachment and growth of marine organisms over time [(Graham2013)].
  
-The structure must be modular, so that several reef blocks can be combined and adapted to different project sizes and site conditions.+The structure must be modular, so that several Reef Blocks can be combined and adapted to different project sizes and site conditions.
  
 The final system must collect environmental data at predefined time intervals. The intended final measurement parameters include water temperature, pressure/depth, pH, and conductivity. The final system must collect environmental data at predefined time intervals. The intended final measurement parameters include water temperature, pressure/depth, pH, and conductivity.
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 The system must perform measurements periodically, typically once per hour. During each cycle, the system remains active only for the time required to stabilize sensor readings and store the data. The system must perform measurements periodically, typically once per hour. During each cycle, the system remains active only for the time required to stabilize sensor readings and store the data.
  
-The Smartlogger must be removable from the Smartlogger attachment so that battery replacement, sensor inspection, maintenance, and data retrieval can be carried out without removing the whole Reef Module from the seabed.+The Smartlogger must be removable from the Smartlogger attachment so that battery replacement, sensor inspection, maintenance, and data retrieval can be carried out without removing the whole Reef Block from the seabed.
  
 === 1.6.2 Non-Functional Requirements === === 1.6.2 Non-Functional Requirements ===
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 In addition to functional capabilities, the system must satisfy several non-functional requirements to ensure safe and reliable operation in marine environments. Since the structure is deployed underwater and interacts directly with marine ecosystems, material selection, structural stability, waterproofing, and maintenance access are critical. In addition to functional capabilities, the system must satisfy several non-functional requirements to ensure safe and reliable operation in marine environments. Since the structure is deployed underwater and interacts directly with marine ecosystems, material selection, structural stability, waterproofing, and maintenance access are critical.
  
-To avoid environmental risks, the structure must be made from durable, non-toxic, and environmentally compatible materials that do not release harmful substances into the marine environment. Poorly selected artificial reef materials can create long-term environmental problems, as shown by previous failed reef projects such as Osborne Reef [(OsborneReef2024)].+To avoid environmental risks, the Reef Block structure must be made from durable, non-toxic, and environmentally compatible materials that do not release harmful substances into the marine environment. Poorly selected artificial reef materials can create long-term environmental problems, as shown by previous failed reef projects such as Osborne Reef [(OsborneReef2024)].
  
 For the final product, basalt fiber-reinforced concrete is considered as the main structural material because basalt fibers are known for corrosion resistance and chemical stability in marine environments [(FIORE2015)]. For the final product, basalt fiber-reinforced concrete is considered as the main structural material because basalt fibers are known for corrosion resistance and chemical stability in marine environments [(FIORE2015)].
  
-The structure must be designed to remain stable under expected currents and wave conditions without displacement. Artificial reef guidelines emphasize that reef materials should be stable and remain at the intended deployment site [(NOAA2007)].+The Reef Block must be designed to remain stable under expected currents and wave conditions without displacement. Artificial reef guidelines emphasize that reef materials should be stable and remain at the intended deployment site [(NOAA2007)].
  
-All electronic components, including sensors, batteries, and storage units, must be enclosed in a waterproof housing with at least IP68 protection to prevent water ingress and support underwater operation [(IP68)].+All electronic components, including sensors, batteries, and storage units, must be enclosed in a waterproof Smartlogger housing with at least IP68 protection to prevent water ingress and support underwater operation [(IP68)].
  
-The monitoring unit must be designed to reduce the risk of leakage, corrosion, and internal moisture. Moisture-absorbing materials may be used inside the enclosure to help control condensation.+The Smartlogger must be designed to reduce the risk of leakage, corrosion, and internal moisture. Moisture-absorbing materials may be used inside the enclosure to help control condensation.
  
-The design must allow access for maintenance, battery replacement, and data retrieval. This is especially important because the system stores data locally and requires scheduled retrieval.+The Smartlogger design must allow access for maintenance, battery replacement, and data retrieval. This is especially important because the system stores data locally and requires scheduled retrieval.
  
 The prototype does not need to meet the same marine-grade requirements as the final product. It is intended for controlled testing and should be clearly presented as a simplified validation model rather than a final deployable system. The prototype does not need to meet the same marine-grade requirements as the final product. It is intended for controlled testing and should be clearly presented as a simplified validation model rather than a final deployable system.
  
 ==== 1.7 Tests ==== ==== 1.7 Tests ====
-The main objective of testing the prototype is to verify that the Maris Habitats concept functions as intended under controlled conditions. Since the prototype is a simplified validation model, the testing phase focuses on three main aspects: the basic operation of the sensor system, the structural stability of the habitat module, and the protection of the electronic components. The final product is intended for long-term marine deployment, whereas the prototype is primarily used to validate the measurement and data-logging concept in a controlled environment. For this reason, the prototype tests will focus on temperature, pressure, and Total Dissolved Solids (TDS) measurements, while more advanced parameters such as pH and conductivity are reserved for the final product. 
  
-A structural test will be carried out using SOLIDWORKS simulation tools. This test will be used to analyze how the habitat structure responds to applied forces and to evaluate whether the design can withstand expected mechanical loads. The simulation will help identify possible weak points in the structure and support further design improvements before physical production or deployment.+The main objective of testing the prototype is to verify that the Maris Habitats concept functions as intended under controlled conditions. Since the prototype is a simplified validation model, the testing phase focuses on three main aspects: the basic operation of the sensor system, the structural stability of the Reef Block, and the protection of the electronic components. The final product is intended for long-term marine deployment, whereas the prototype is primarily used to validate the measurement and data-logging concept in a controlled environment. For this reason, the prototype tests will focus on temperature, pressure, and Total Dissolved Solids (TDS) measurements, while more advanced parameters such as pH and conductivity are reserved for the final product.
  
-A prototype test will be performed in air to verify the basic functionality of the electronic system. This test will confirm whether the sensors, microcontroller, power supply, and data storage system operate correctly before any water-related testing is considered. The purpose of this stage is to reduce technical risk by ensuring that the system can collect and store sensor data under safe and controlled conditions.+A structural test will be carried out using SOLIDWORKS simulation tools. This test will be used to analyze how the Reef Block structure responds to applied forces and to evaluate whether the design can withstand expected mechanical loads. The simulation will help identify possible weak points in the structure and support further design improvements before physical production or deployment. 
 + 
 +A prototype test will be performed in air to verify the basic functionality of the Smartlogger electronic system. This test will confirm whether the sensors, microcontroller, power supply, and data storage system operate correctly before any water-related testing is considered. The purpose of this stage is to reduce technical risk by ensuring that the system can collect and store sensor data under safe and controlled conditions.
  
 These tests will provide an initial validation of the prototype and help determine whether the system is ready for further development and more realistic environmental testing. These tests will provide an initial validation of the prototype and help determine whether the system is ready for further development and more realistic environmental testing.
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 ==== 1.8 Report Structure ==== ==== 1.8 Report Structure ====
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