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“8+2” 重点领域
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  • 快讯 CT技术在农业工程研究中的应用现状和展望

    来源专题:农机装备
    编译者:江浩
    发布时间:2025-06-05
    摘要:计算机断层扫描(CT)技术,作为一种先进的非侵入式成像技术,融合了X射线和计算机重建算法,能够精确揭示物体内部结构,在农业工程研究领域具有巨大的应用前景,逐渐成为推动农业工程智能化和精准化的重要技术之一。为了系统总结CT技术在农业工程领域的应用现状和分析该技术的未来发展趋势,该文概述了CT技术的基本原理,包括设备构造、工作流程、图像重建和后处理技术等,并通过与其他无损检测技术的对比,突出了CT技术在高分辨率、强穿透力等方面的显著优势,梳理了CT技术在果蔬品质检测、籽粒评价、茎杆分析、根系分析以及土壤孔隙分析等研究领域的应用实例。同时,该文结合CT技术的应用现状,分析了目前该技术存在设备操作流程复杂、图像处理难度高、检测分辨率限制和设备成本高昂及辐射安全等问题,提出了CT技术应用发展趋势有丰富研究对象、增强应用效果和优化技术环节等方面,旨在为CT技术在农业工程领域进一步应用发展提供参考,以促进CT技术与农业工程研究的深度融合及在相关研究中的应用。关键词: CT技术  /  农业工程  /  无损检测  /  图像重建  /  后处理技术  /  发展趋势  
  • 快讯 Ecorobotix 推出生菜疏果算法,为生菜种植者提供精度和节省劳动力

    来源专题:农机装备
    编译者:江浩
    发布时间:2025-06-05
    Ecorobotix 是一家专门从事精准农业的人工智能公司,宣布推出其新的生菜疏果算法,扩展了其 ARA 超高精度 (UHP) 喷雾机的功能,以提供市场上最先进的自动疏果解决方案之一。ARA 用户现在可以通过软件许可证使用这项新功能,无需额外的设备或人工即可实现精确的每株植物间伐。 “这对我们在生菜行业的客户来说是一个重要的里程碑,”Ecorobotix 区域作物护理经理 Katerina Lee 说。“我们将 AI 的强大功能与 ARA 超高精度喷涂平台的可靠性相结合,以消除该领域最耗时和最耗力的任务之一——疏伐。” 生菜疏果算法的主要优点:取代体力劳动:种植者可以消除疏果人员并降低劳动力成本。ARA 系统只需一名作员即可自主执行疏伐。卓越的均匀性:ARA 使用数学精度来定义植物间距,确保林分一致并消除人为差异。更快的田间覆盖:ARA 超越了人工工作人员,在保持准确性的同时快速覆盖田地。轻松集成: 现有的 ARA 所有者可以通过简单的许可证订阅来激活生菜疏果。多用途平台:同一台 ARA 喷雾器可用于除草和其他作物保护任务,让一台机器全年都能实现价值。真正的植物选择:ARA 在种植线上区分作物和杂草,每次都保留正确的植物。作简单:ARA 喷雾器具有直观的界面和最少的设置,任何作员都很容易使用。这项创新是 Ecorobotix 更广泛使命的一部分,旨在通过尖端的 Plant-by-Plant AI 技术帮助种植者减少劳动力、提高产量潜力并提高运营效率。 对 Lettuce Thinning 算法或安排现场演示感兴趣的 Lettuce 生产商可以注册 这里. 关于 EcorobotixEcorobotix 是一家专门从事精准农业的人工智能公司。其旗舰产品 ARA 超高精度喷涂机使用先进的计算机视觉和人工智能,仅在需要时提供化学处理。Ecorobotix 技术旨在减少化学品使用和体力劳动,同时提高作物性能,正在重新定义种植者对待田间每株植物的方式。
  • 快讯 Key Technologies of Terahertz Wave Modified New Materials Initiated in China

    来源专题:宁夏重点产业科技信息服务
    编译者:刘 悦
    发布时间:2025-06-05
    Recently, good news came from Zhumeng Jiuzhou Technology Co., Ltd., located in Beijing. After more than 10 years of intensive research and repeated experiments by the company, an energy support device (waveguide cabin) that can generate terahertz waves and empower a variety of materials through waveguide effect and molecular synchronous resonance technology has been successfully launched. And formally began to serve the chemical industry and new materials and other fields, marking a major breakthrough in the industrial application of terahertz technology, which is the first domestic invention and is also in the leading position in the world. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; It is reported that terahertz (THz) waves refer to electromagnetic waves with frequencies ranging from 0.1 to 10 THz (wavelengths ranging from 30 to 3000 μm). The terahertz (THz) wave band can cover the characteristic spectrum of semiconductors, plasmas, organisms and biological macromolecules. The use of this frequency band can deepen and expand human understanding of some basic scientific issues in physics, chemistry, astronomy, informatics and life sciences. THz technology can be widely used in radar, remote sensing, homeland security and anti-terrorism, high-security data communication and transmission, atmosphere and environmental monitoring, real-time biological information extraction, medical diagnosis and other fields. Therefore, the research of THz technology has great application value for the national economy and national security. & lt; br & lt; span style = "height: 6px; display: block;" & gt; & lt;/span & gt; THz is the last virgin land in the electromagnetic spectrum. It is favored by all countries because of its unique advantages and wide application value. In 2004, the U.S. government rated THz technology as one of the "Top Ten Technologies to Change the Future World", and almost all important national laboratories are studying THz technology; Japan listed THz technology as the first of the "Top Ten Key Strategic Objectives of National Pillars", and carried out research and development with the strength of the whole country; European countries also use EU funds to organize large-scale THz research projects involving multi-disciplines across countries; the Russian National Academy of Sciences has also established the Terahertz Research Institute to actively carry out THz technology research in conjunction with universities. Therefore, THz technology has become one of the most important emerging disciplines in this century. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; In November 2005, the Chinese government held a special "Fragrant Hill Science and Technology Conference" to discuss the development direction of THz industry in China, and formulated the development plan of THz technology in China. At present, many research institutes in China are carrying out relevant research in the field of terahertz. & lt; br & lt; span style = "height: 6px; display: block;" & lt;/span & lt; According to Lv Tao, Technical Director of Dream Building Jiuzhou Company, as a scientific and technological enterprise specializing in high-tech research and development and promotion. Relying on the high-quality scientific research resources in Beijing, the company has actively cooperated with relevant universities and other scientific research institutions to create key technologies for terahertz industrial applications. Firstly, the technology was successfully applied to the field of high temperature calcination, and terahertz wave pretreatment was used to promote sintering densification. This technology can not only reduce the energy consumption of ceramic tile sintering by about 8%, but also greatly improve the strength of ceramic tile (without reducing the performance of the premise, can reduce the thickness of ceramic tile by 20%, to achieve cost reduction and efficiency, the effect is remarkable. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; In silicon steel sheet, magnesium oxide powder is mainly used for insulation coating, high temperature annealing separator and improving magnetic properties. After terahertz technology modification, the performance of insulation coating can be significantly improved. Nhancing the quarantine effect of the high-temperature annealing, enhancing the quarantine effect of the high-temperature annealing, optimizing the magnetic performance and improving the mechanical performance. Through the modification, the particle distribution and the surface activity of the magnesium oxide powder can be optimized, so that a more uniform and compact insulating coating is formed on the surface of the silicon steel sheet, the insulating performance of the silicon steel sheet is improved, the electric leakage phenomenon is reduced, and the eddy current loss is reduced. The adhesive force and the high temperature resistance of the coating are improved; the particle size of the magnesium oxide powder is refined, and the dispersibility of the magnesium oxide powder is improved, so that the silicon steel sheet is more effectively prevented from being adhered in the high temperature annealing process. The surface quality of the silicon steel sheet after annealing is improved, the surface chemical property of the magnesium oxide powder is optimized, and the silicon steel sheet is promoted to form a more ideal magnetic domain structure in the annealing process. But also can significantly reduce iron loss, save energy, protect environment, and improve the efficiency of a motor and a transformer; the activity of the magnesium oxide powder is improved, and the bonding force between the magnesium oxide powder and a silicon steel sheet matrix is enhanced, so that the mechanical strength of the silicon steel sheet is improved; and the corrosion resistance of the silicon steel sheet is enhanced. The denser insulating coating can effectively prevent the contact between the external corrosive medium and the silicon steel substrate, further improve the chemical stability of the magnesium oxide, more effectively resist the corrosion of acid, alkali and other corrosive media, and protect the silicon steel substrate from being damaged. & lt; br & lt; span style = "height: 6px; display: block;" & lt;/span & lt; The modified magnesium oxide powder can also improve the insulation performance and surface quality of the silicon steel sheet to meet the strict requirements of high-end electronic products on material performance. The modified magnesium oxide powder can improve the mechanical strength and high temperature resistance of the silicon steel sheet and prolong the service life of equipment. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; Compared with the traditional bamboo charcoal board before the terahertz wave energizing, the bamboo charcoal board made by the terahertz wave energizing bamboo charcoal powder has significant improvement in physical properties, chemical activity and functionality. Before energization, the specific surface area of conventional bamboo charcoal powder is about 300-500 m 2/G, the pore structure is mainly micropores, the pore size distribution is uneven, and the adsorption efficiency is limited. After terahertz wave activation, the specific surface area of bamboo charcoal can be increased to 600-800 m 2/G, or even higher. The terahertz wave promotes the expansion of micropores to mesopores/macropores, forming a hierarchical pore structure and enhancing the adsorption capacity of macromolecular pollutants such as formaldehyde and VOCs. The adsorption rate is increased by 30% -50%, and the saturated adsorption capacity is increased by more than 20%. & lt; br & lt; span style = "height: 6px; display: block;" & gt; & lt;/span & gt; In terms of mechanical properties, the bending strength of ordinary bamboo charcoal board is about 15-25MPa before energizing. The wear resistance is general, and it is easy to cause brittleness due to loose internal structure. After the energization, the bending strength is improved to 30-40MPa, and the terahertz wave optimizes the dispersion and the interface binding force of the carbon powder. The wear resistance is improved by 20-30%, the agglomeration of the carbon powder is reduced due to the terahertz wave treatment, and the bonding density with the matrix material is enhanced. & lt; br & lt; span style = "height: 6px; display: block;" & gt; & lt;/span & gt; In terms of antibacterial and mildew-proof performance, before energization, it relies on the weak antibacterial property of bamboo charcoal itself (mainly physical adsorption, no active sterilization ability). The mildewproof grade is Grade II standard of GB/T 35601-2017. After being energized, the terahertz wave excites the functional groups (such as carboxyl and hydroxyl) on the surface of the carbon powder to enhance the interaction with the microbial cell membrane, and the antibacterial rate can reach more than 90% (such as Escherichia coli and Staphylococcus aureus). The mildew-proof grade can be upgraded to grade I (long-acting bacteriostasis). < br > span style = "height: 6px; display: block;" Far infrared and negative ion release. Before energization, the far infrared emissivity is about 0.7-0.8 at room temperature. The amount of negative ions released is 500-1000/cm 3. After energization, the far-infrared emissivity is increased to 0.85-0.95, the carbon lattice vibration mode is controlled by terahertz wave, and the release amount of negative ions can reach 2000-3000/cm 3. < br > < span style = "height: 6px; display: block;" >/span > Thermal stability and flame retardancy, the thermal decomposition temperature is about 300-350 ℃ before energization. Oxygen Index (LOI) is 22-24 (flammable). After energization, the thermal decomposition temperature is increased to more than 400 deg C (the terahertz wave promotes the degree of graphitization). The oxygen index can reach 28-30 flame retardant level, which is more suitable for high temperature or fire protection requirements. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; Lu Tao said that at present, Zhumeng Jiuzhou Company, together with relevant chemical and new material enterprises, has successfully carried out industrial application experiments of enabling modification of bio-based and inorganic chemical products such as bamboo charcoal board, silicon steel and magnesium oxide in Zhejiang and Hebei provinces, and achieved good results, with a number of performance indicators significantly improved. Terahertz technology can also be used to modify titanium dioxide, silicon dioxide, calcium carbonate, coatings, sodium humate, potassium humate and other chemical products to improve product quality. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; By optimizing the electromagnetic characteristics and surface structure, the terahertz wave modified titanium dioxide is significantly superior to traditional products in high-frequency communication, weather resistance and dispersibility, especially suitable for 6G technology and high-end industrial fields. Its technological breakthroughs not only improve material performance, but also provide innovative solutions for multi-scenario applications. Lu Tao added. & lt;br& gt;& lt;span style="height:6px;display:block;"& gt;& lt;/span& gt; Terahertz wave has a certain thermal effect, which can break and recombine some chemical bonds on the surface of silica, thus changing the chemical structure and the distribution of active sites on the surface, and increasing the number and activity of active groups on the surface. The electric field component of the THz wave can also interact with the charge distribution on the silica surface, affecting the distribution and migration of the surface charge. The resonance effect increases the vibration amplitude of molecules or lattices, resulting in minor changes in the internal structure, such as the adjustment of pore structure, the change of surface roughness, etc., thus increasing the specific surface area and improving its performance in catalysis and other fields. At the same time, the energy of THz wave can also induce defects in silicon dioxide, such as oxygen vacancies. Change the electronic structure of silicon dioxide to make it more chemically active. Oxygen vacancies and other defects can be used as adsorption sites to enhance the adsorption capacity of reactant molecules, and also contribute to the transfer and transfer of electrons, thus promoting the catalytic reaction.
  • 快讯 Pitura 种子:一个值得信赖的质量和创新的世纪

    来源专题:农机装备
    编译者:江浩
    发布时间:2025-06-05
    Pitura Seeds 成立于 1921 年,是位于加拿大曼尼托巴省的第四代家庭农场和第三代种子公司。在过去的一个世纪里,这个行业领导者已经从一个小型的区域种子种植者发展成为北美农业领域的杰出参与者。 Pitura Seeds 的成功在很大程度上归功于其对质量、效率和前瞻性创新的坚定承诺——这些价值观与 Cimbria 自身行业领先的专业知识无缝结合。Pitura Seeds 和 Cimbria 之间的合作伙伴关系可以追溯到 1998 年,当时 Calvin Pitura 首次考虑了 Cimbria 尖端加工设备和技术的价值。 Pitura Seeds 认识到需要扩大运营并实现现代化,因此决定在 2017 年建造一个新的、最先进的设施。经过广泛的研究和对生产设施的跨洲参观,Pitura 团队一直对 Cimbria 设备的普及印象深刻——这证明了公司作为行业领导者的声誉。Cimbria 是帮助他们通过新工厂实现愿景的自然选择。这个最先进的设施的核心是一条由 Cimbria 提供支持的加工线,可提供无与伦比的灵活性、产能和质量。该设施旨在处理各种作物,包括谷物、豆类和油籽,每小时能够加工惊人的 800 至 1,000 蒲式耳——超过了其最初的每小时 22 吨设计规格。这种卓越表现的关键在于战略性地使用 Cimbria 技术,这些技术由 Nexeed 团队精心挑选和整合,以满足 Pitura Seeds 的严格标准。从轻柔地处理易碎的豆类和大豆,到精确的密度分离和光学颜色分选,该过程的每一步都经过优化,以实现最高的效率和产品完整性。以 Cimbria 和 Nexeed 作为值得信赖的盟友,Pitura Seeds 准备延续其长达一个世纪的卓越传统,为北美客户提供最优质的种子。这种对“第一次就把事情做对”的坚定承诺一直是 Pitura 成功背后的驱动力,无疑将推动公司在未来几代人中向前发展。
  • 快讯 Sonardyne通过竞争性招标被选为英国首个离岸碳捕获与储存(CCS)站点提供基线环境监测服务,支持NEP项目实现净零目标

    来源专题:深海资源开发
    编译者:徐冰烨
    发布时间:2025-06-05
    Sonardyne通过竞争性投标过程,被选为英国首个海上碳捕获与储存(CCS)项目的基线环境监测服务提供商。该公司将为Northern Endurance Partnership(NEP)提供监测服务,NEP负责开发运输二氧化碳的基础设施,这些二氧化碳将来自Teesside和Humber地区的碳捕获项目,并在北海下安全储存。这一基础设施对于实现英国碳密集工业区的净零排放至关重要。 Sonardyne将在水下145公里处的Endurance站点上方和周围的关键位置布置海底监测器,这些监测器将在2026年夏季开始监测,为期两年,以在二氧化碳运输和储存开始前提供基线数据。监测器将配备Sonardyne的Edge数据处理应用、电源管理和声波水通信系统,以实现长期远程电池操作部署。每个监测器还包含Sonardyne的Origin 600ADCP、Wavefront的被动声纳阵列和多种第三方传感器。这项技术可以检测到大范围水体化学变化的细微差异,数据可以通过无线海底声波通信技术收集,而无需收回监测器。 监测是海上CCS开发的关键活动,旨在验证二氧化碳在储层中的安全封存,并向利益相关者和公众提供信心,促进温室气体减排过程。