IOT 수경재배 자동제어 물방울 관개 시스템 3D 모델

- 이용 가능한 포맷: Collada (.dae) 3.21 MBAutodesk 3DS MAX (.max) 7.15 MBSTEP (.step) 2.06 MB3D Studio (.3ds) 1.29 MBBlender3D (.blend) 3.52 MBSketchUp (.skp) 3.30 MBAutodesk AutoCAD (.dwg) 3.26 MBIGES (.iges) 2.11 MBRhinoceros (.3dm) 10.94 MBStereolithography (.stl) 2.75 MBGLB (.glb / .gltf) 1.66 MBAutodesk FBX (.fbx) 4.88 MBWavefront OBJ (.obj) 2.42 MBACIS(.sat) 3.84 MB
 
- 폴리곤:203005
 - 버텍스:159086
 - 애니메이티드:No
 - 텍스쳐드:No
 - 리그드:No
 - 재료:
 - 로우 폴리곤:No
 - 컬렉션:No
 - UVW 매핑:No
 - 플러그인 사용 됨:No
 - 프린트 준비:No
 - 3D 스캔:No
 - 성인용 콘텐츠:No
 - PBR:No
 - AI 훈련:No
 - 지오메트리:Poly NURBS
 - 언래핑 된 UVs:Unknown
 - 조회:207
 - 날짜: 2025-09-27
 - 아이템 ID:601870
 
IOT 수경재배 자동제어 물방울 관개 시스템 3D 모델 dae, max, step, 3ds, blend, skp, dwg, iges, 3dm, stl, glb, fbx, obj, sat, 발신 surf3d
High-quality 3D assets at affordable prices — trusted by designers, engineers, and creators worldwide. Made with care to be versatile, accessible, and ready for your pipeline.
Included File Formats
This model is provided in 14 widely supported formats, ensuring maximum compatibility:
• - FBX (.fbx) – Standard format for most 3D software and pipelines
• - OBJ + MTL (.obj, .mtl) – Wavefront format, widely used and compatible
• - STL (.stl) – Exported mesh geometry; may be suitable for 3D printing with adjustments
• - STEP (.step, .stp) – CAD format using NURBS surfaces
• - IGES (.iges, .igs) – Common format for CAD/CAM and engineering workflows (NURBS)
• - SAT (.sat) – ACIS solid model format (NURBS)
• - DAE (.dae) – Collada format for 3D applications and animations
• - glTF (.glb) – Modern, lightweight format for web, AR, and real-time engines
• - 3DS (.3ds) – Legacy format with broad software support
• - 3ds Max (.max) – Provided for 3ds Max users
• - Blender (.blend) – Provided for Blender users
• - SketchUp (.skp) – Compatible with all SketchUp versions
• - AutoCAD (.dwg) – Suitable for technical and architectural workflows
• - Rhino (.3dm) – Provided for Rhino users
Model Info
• - All files are checked and tested for integrity and correct content
• - Geometry uses real-world scale; model resolution varies depending on the product (high or low poly)
• • - Scene setup and mesh structure may vary depending on model complexity
• - Rendered using Luxion KeyShot
• - Affordable price with professional detailing
Buy with confidence. Quality and compatibility guaranteed.
If you have any questions about the file formats, feel free to send us a message — we're happy to assist you!
Sincerely,
SURF3D
Trusted source for professional and affordable 3D models.
More Information About 3D Model :
An IoT Hydroponic Plant Auto Control Water Drip Irrigation System represents an advanced agricultural technology that integrates Internet of Things (IoT) principles with soilless cultivation (hydroponics) and precision irrigation. This sophisticated system is designed to autonomously monitor, regulate, and optimize environmental parameters and nutrient delivery for plant growth, thereby significantly enhancing resource efficiency, yield, and crop quality.
**Core Components:**
At its foundation, the system comprises several integrated modules:
1. **Hydroponic Setup:** This fundamental component includes a grow tray or channels, inert growing media (e.g., rockwool, coco coir, perlite) for physical plant support, and a reservoir containing a precisely balanced aqueous nutrient solution. While various hydroponic techniques exist, this system specifically incorporates drip irrigation for nutrient delivery.
2. **Drip Irrigation Subsystem:** Central to efficient nutrient delivery, this subsystem typically consists of a submersible pump within the nutrient reservoir, a network of distribution tubing, and individual drippers or emitters positioned near the base of each plant. This method ensures targeted, consistent, and localized delivery of the nutrient solution directly to the root zone, minimizing waste through evaporation or runoff.
3. **Sensor Array:** A crucial element for real-time data acquisition, the system incorporates various environmental and solution-specific sensors. These typically include:
* **pH Sensor:** Measures the acidity or alkalinity of the nutrient solution, critical for optimal nutrient uptake by plants.
* **Electrical Conductivity (EC) / Total Dissolved Solids (TDS) Sensor:** Quantifies the concentration of dissolved mineral salts (nutrients) in the solution, indicating nutrient strength.
* **Temperature Sensors (Air & Water):** Monitors both ambient air and nutrient solution temperatures, which profoundly impact plant metabolism and dissolved oxygen levels.
* **Humidity Sensor:** Measures atmospheric moisture, vital for transpiration regulation and preventing fungal diseases.
* **Water Level Sensor:** Monitors the volume of nutrient solution in the reservoir, triggering refills as needed.
* **Light Intensity Sensor (PAR/LUX):** Measures the quantity of light available for photosynthesis, informing grow light operation.
4. **Control Unit (Microcontroller/Microprocessor):** Often a single-board computer (e.g., Raspberry Pi, Arduino) or a dedicated Programmable Logic Controller (PLC), this unit serves as the system's brain. It continuously receives, processes, and analyzes sensor data against predefined optimal parameters for specific plant types, executing logical commands.
5. **IoT Connectivity Module:** This module facilitates communication between the local control unit and a remote server or cloud platform. Utilizing wireless technologies such as Wi-Fi, Zigbee, LoRa, or cellular networks, it enables real-time data transmission, remote monitoring, and control commands from an external interface.
6. **Actuators:** These are the devices that execute physical changes in the system based on the control unit's commands. Common actuators include:
* **Peristaltic or Dosing Pumps:** Precisely dispense pH-adjusting solutions (acid/base) and concentrated nutrient blends to maintain optimal solution parameters.
* **Water Pumps:** Circulate the nutrient solution for irrigation and potentially for aeration within the reservoir.
* **Solenoid Valves:** Control the flow of water or nutrient solutions to different grow zones or for reservoir top-ups.
* **Grow Lights:** Regulate photoperiod and light intensity based on plant requirements.
* **Fans/Ventilation Systems:** Manage air circulation, temperature, and humidity within the growing environment.
**Operational Mechanism:**
The system operates on a continuous feedback loop. Sensors perpetually collect data from the hydroponic environment, transmitting it to the control unit. The control unit compares this real-time data with programmed optimal ranges for the specific crop being cultivated. If deviations are detected (e.g., pH too high, EC too low, water level below threshold, temperature outside range), the control unit activates the appropriate actuators. For instance, if pH is high, a dosing pump dispenses pH-down solution; if EC is low, nutrient concentrates are added; if water level is low, the reservoir is refilled; if air temperature is high, fans are activated. All sensor readings, system statuses, and operational logs are wirelessly transmitted via the IoT module to a cloud-based server. Users can access this data and remotely manage system parameters through a dedicated web interface or mobile application, receiving real-time alerts for critical events or abnormal conditions.
**Key Benefits and Advantages:**
The deployment of such a system offers significant advantages in modern agriculture:
* **Resource Efficiency:** Precise water and nutrient delivery drastically reduces consumption, often by up to 90% compared to traditional soil-based methods, minimizing waste and environmental impact.
* **Optimized Plant Growth:** Maintaining ideal conditions (pH, EC, temperature, humidity, light) around the clock maximizes plant health, accelerates growth rates, and ultimately enhances yields and crop quality.
* **Reduced Labor and Automation:** Automated monitoring and control significantly reduce manual intervention for routine tasks such as watering, fertilizing, and environmental adjustments, freeing up human resources.
* **Data-Driven Insights:** Continuous data collection provides valuable insights into plant responses and system performance, enabling data-driven adjustments and optimization strategies for improved efficiency and yield over time.
* **Pest and Disease Control:** Controlled Environment Agriculture (CEA) inherently reduces exposure to soil-borne pathogens and pests, simplifying pest management.
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다른 포맷이 필요하시면, 새로운 지원 티켓을 열어 요청하세요. 저희는 3D 모델을 다음으로 변환할 수 있습니다: .stl, .c4d, .obj, .fbx, .ma/.mb, .3ds, .3dm, .dxf/.dwg, .max. .blend, .skp, .glb. 우리는 3D 장면을 변환하지 않습니다 .step, .iges, .stp, .sldprt와 같은 형식도 포함됩니다.!사용 정보
IOT 수경재배 자동제어 물방울 관개 시스템 - 기본 또는 확장 라이선스에 따라 이 로열티 프리 3D 모델을 개인적 및 상업적 목적으로 사용할 수 있습니다.기본 라이선스는 디지털 광고, 디자인 및 시각화 프로젝트, 비즈니스 소셜 미디어 계정, 네이티브 앱, 웹 앱, 비디오 게임, 그리고 물리적 또는 디지털 최종 제품(무료 및 유료 모두)을 포함한 대부분의 표준 사용 사례를 포괄합니다.
확장 라이선스는 기본 라이선스에 따라 부여된 모든 권리를 포함하며 사용 제한이 없으며, 로열티 프리 조건 하에 3D 모델을 상업적 프로젝트에 무제한으로 사용할 수 있습니다.
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