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      All Rights Reserved@Hangzhou Hyperspectral Imaging Technology Co., Ltd. 浙ICP備19040412號-2 網(wǎng)站地圖
      Design By: Yushangweb
      Water Quality Monitoring

      Industry status

      Development Goals for China's Water Quality Monitoring Industry During the 14th Five-Year Plan Period

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      ? China possesses total water resources of 2.8124 trillion m3, of which surface water accounts for 96.4%.

      ? Among the 1,931 surface water quality monitoring sections, the proportion of water quality classified as "Below Grade V" was 3.4%.

      ? In response to China's water pollution challenges, the government has successively introduced multiple policies and plans to strengthen pollution prevention and control.

      ? Monitoring is crucial for managing water pollution. Water quality monitoring refers to the process of observing and measuring the types of pollutants in a water body, their concentrations, and trends, thereby assessing the overall water quality status.

      ? According to the "Outline of the Ecological and Environmental Monitoring Plan (2020-2035)" issued by the Ministry of Ecology and Environment, between 2020 and 2035, ecological and environmental monitoring will expand from comprehensively deepening ambient quality and pollution source monitoring to gradually incorporating ecological status monitoring and environmental risk early warning, aiming to build a comprehensive assessment system for the ecological environment.


      Heat Map of China's Water Quality Monitoring Industry Chain

      • In the realm of surface water environmental monitoring, and in response to the integrated management needs of the "Triad Approach" addressing water pollution control, aquatic ecosystem restoration, and water resource protection, efforts are being coordinated across river basins and regions, water bodies and land areas, and biological communities and their habitats. This comprehensive strategy is facilitating a gradual shift from water quality monitoring towards aquatic ecological monitoring.

      • During the 14th Five-Year Plan period, the number of national monitoring sections was consolidated and increased from 2,050 to approximately 4,000.

      • As China's efforts in water environmental protection and management advance, the market scope for water quality monitoring is concurrently expanding. Based on estimates factoring in the demand for surface water monitoring, groundwater monitoring, and pollution source water quality monitoring, the market size for water quality monitoring in China reached approximately 38 billion RMB in 2020.

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      Technical Background

      Hyperspectral imaging technology, a novel remote sensing technique developed in the early 1980s, organically integrates image morphological measurement with spectroscopic analysis. It represents the future development direction of new detection technologies.


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      The drone-based hyperspectral water quality monitoring solution serves as a valuable supplement to traditional chemical detection methods. It enables users to grasp the status and trends of the aquatic environment in a timely, accurate, and comprehensive manner.

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      • The spectral reflectance of a water body is influenced by dissolved or suspended substances within it. Polluted water, differing from clean water in terms of pollutant concentration and composition, exhibits distinct characteristics in remote sensing imagery, such as variations in texture, grayscale, and reflectance.

      •  Hyperspectral remote sensing enables the monitoring of various water quality parameters through either qualitative identification models or quantitative inversion models.

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      Product solution

      產(chǎn)品功能特性描述

      1. With a spectral resolution better than 2.8 nm, it enables precise analysis of spectral characteristics of various ground objects.

      2. Features a large-target CMOS hyperspectral camera, supporting up to 1920 spatial channels and 1200 spectral channels.

      3. The onboard control and acquisition system includes a built-in 1 TB SSD, ensuring worry-free data storage.

      4. Hardware-synchronized triggering of a high-definition visible light camera with a resolution of 15 megapixels, supporting high-precision orthophoto mosaic generation.

      5. Incorporates a gimbal self-stabilization system, utilizing UAV push-broom imaging (non-hover scanning) for high operational efficiency.

      6. Deeply compatible with UAV platforms, requiring only a single data cable for connection to provide integrated power supply and data communication; simultaneously acquires GPS information and correlates it line-by-line with hyperspectral data.

      7. Enables remote intelligent control for convenient operation, preventing ineffective flight missions.

      8. Capable of real-time rendering of multi-band spectral composite images, allowing real-time monitoring of hyperspectral acquisition scenes and spectral curves of spatial points.

      9. Pre-loaded with calculations for over 20 common indices (e.g., NDVI), supporting custom band operations and various spectral processing and analysis functions.

      10. Capable of retrieving water quality parameters such as chlorophyll-a, total nitrogen (TN), total phosphorus (TP), ammonia nitrogen (NH3-N), permanganate index (CODMn), and suspended solids (SS).


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                                                                                             HY-9010-L高光譜無人機掛載系統(tǒng)(實物圖)


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                                   高光譜無人機掛載系統(tǒng)




         

      The HY-9010-L Hyperspectral UAV-mounted system utilizes cutting-edge hyperspectral imaging technology to fully exploit the unique spectral signatures of different materials. Integrated with a high-definition camera, it achieves comprehensive detection of qualitative, quantitative, temporal, and locational information, serving as an integrated remote sensing device that combines spectral and spatial data.

      This system, which incorporates both a hyperspectral camera and an HD camera, synchronously captures multi-dimensional data during operation. It allows for real-time mission monitoring and remote control. Furthermore, with its built-in high-performance processing unit, the system can perform real-time ground object reflectance calculation and analytical inversion. It is suitable for a wide range of applications, including water environment monitoring, smart agriculture, forestry surveys, target identification, and military camouflage detection, meeting diverse industrial needs.



                                          

                                      

      型號

      HY-9010-L高光譜掛載系統(tǒng)

      模塊

      名稱

      指標

      參數(shù)

      主機 

                             高光譜相機

      光譜范圍

      400-1000nm

      光譜分辨率

      優(yōu)于2.8nm

      空間分辨率

      1.56mrad @f=16mm

      視場角

      38°@f=16mm

      空間通道數(shù)

      480(4x)

      光譜通道數(shù)

      300(4x)

      狹縫寬度

      25μm

      探測器類型

      CMOS

      探測器接口

      USB 3.0

      探測器靶面尺寸

      1/1.2”

      像素位深

      12bits

      幀頻

      50fps

      鏡頭焦距

      16mm

      高清相機

      像素

      1500萬

      控制與采集模塊

      硬件配置

      CPU:I7,內(nèi)存:16g,硬盤:1TB

      GPS定位

      支持RTK模式

      (需開通相應(yīng)服務(wù))

      定位精度優(yōu)于250px

      其它參數(shù)

      工作電流

      峰值電流:3A

      輸入電壓

      13.6V

      重量

      約3kg

      工作溫度

      0-40°C

      儲存溫度

      0-50°C

      地面站

      地面站參數(shù)

      工作時間

      約4小時

      工作電流

      峰值電流:1.5A

      輸入電壓

      11.1V

      重量

      約1kg(不含電源)

      工作溫度

      0-40°C

      儲存溫度

      0-50°C


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      The hyperspectral UAV-mounted system features the capability for synchronous multi-dimensional data acquisition. A single flight can capture hyperspectral imagery data across 300 spectral bands along with high-definition visible-light photographs. The accompanying software enables the calculation of various common indices, such as NDVI and NDWI. Furthermore, equipped with built-in multi-parameter water quality inversion algorithms, the system can accurately retrieve key indicators—including Total Nitrogen (TN), Total Phosphorus (TP), Ammonia Nitrogen (NH3-N), Permanganate Index (COD<sub>Mn</sub>), Chlorophyll-a (Chl-a), and Suspended Solids (SS)—and generate clear, intuitive concentration distribution maps to facilitate precise pollution source tracking.


      In-flight Inspection Process

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      無人機載高光譜監(jiān)測試飛需求溝通單

      試飛需求簡述

      試飛目的,需求,緣由

      試飛地點信息

      試飛點地址,百度地圖截圖,經(jīng)緯度(如有),監(jiān)測河道的長度寬度,水深及流速等

      試飛區(qū)類型

      城區(qū)/鄉(xiāng)村/山區(qū)等

      地形高程

      規(guī)劃飛行路徑需要

      當?shù)睾0?/span>

      無人機飛行一般只能在海拔5000米以下進行飛行任務(wù)

      期望試飛日期


      當?shù)禺斎仗鞖馇闆r

      當前無人機飛行只能在非雨霧雪及4級天氣進行。

      飛行空域30米距離外

      在人口密集區(qū)

      規(guī)劃飛行路徑需要

      飛行空域30米距離外

      5層以上高樓是否非常密集

      規(guī)劃飛行路徑需要

      飛行空域20米距離外

      變電所通信基站等

      規(guī)劃飛行路徑需要

      水質(zhì)反演等環(huán)保水利是否已經(jīng)有本地的第三方存留數(shù)據(jù)

      各地水質(zhì)和植物數(shù)情況不一樣。通過可靠的第三方數(shù)據(jù)我們能繁衍出來更加精準的當?shù)乇O(jiān)測對象數(shù)據(jù)


      Application Cases

       Hyperspectral technology has found considerable application in the monitoring of water body quality. Presently, it permits the quantitative estimation of parameters such as chlorophyll-a concentration, total nitrogen, and total phosphorus, thereby supporting effective water quality evaluation.

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      East China

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      Jiangxi Province

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      Guangxi Province

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      Anhui Province

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      Jiangsu Province

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      Chongqing Municipality

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      message

      If you would like to contact us, please fill out the form below so that your inquiry can directly reach the appropriate contact person.
      Tel
      +86-571-83729176
      Phone
      15305811932 (Wechat)
      Email
      sales@hhitgroup.com
      Address
      Room 503, Building 2, HIAS Sci-Tech Innovation Park, Yunqi Town, Xihu District, Hangzhou, China

      All Rights Reserved@Hangzhou Hyperspectral Imaging Technology Co., Ltd. 浙ICP備19040412號-2 網(wǎng)站地圖

      Design By: Yushangweb

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