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    • 22. 发明公开
    • METHOD FOR PRODUCING A MINERAL FERTILISER
    • 生产矿物肥料的方法
    • EP3222603A1
    • 2017-09-27
    • EP15772034.3
    • 2015-08-12
    • Agroprotector GmbHBolsunow, Paul
    • ABRAMOV, Serhii
    • C05D9/00
    • C05D9/00
    • The invention relates to mineral fertiliser production and can be used in the production technology of coated granulated fertilisers comprising nitric and/or phosphoric and/or potassium nutrients. The method for producing the mineral fertiliser provides a coating for fertiliser granules, which is based on glauconite, wherein, following the coating process, the fertiliser granules are subjected to the action of a constant magnetic field characterized by a strength in the range of 2000-3000 E and an exposure time in the range of 1-2 minutes. The method provides for an increase in the mineral fertiliser efficacy by affecting the fertiliser, the locus, the seeds sown in the soil, and the plant itself during its growth through additional physical factors, namely the magnetic field induced by the residual magnetism of the glauconite coating.
    • 本发明涉及矿物肥料生产并且可以用于包含硝酸和/或磷酸和/或钾营养素的包衣颗粒肥料的生产技术。 本发明的矿物肥料的制造方法,是以石绿石为基础的肥料颗粒用涂料,其中,在涂布工序之后,肥料颗粒受到强度为2000〜 3000 E,曝光时间在1-2分钟的范围内。 该方法通过影响肥料,场所,播种在土壤中的种子以及植物本身在其生长期间通过额外的物理因素,即由海绿石的剩余磁力诱导的磁场,来提高矿物肥料功效 涂层。
    • 28. 发明公开
    • SYSTEM AND METHOD FOR ENGINEERING AND DETAILING STEEL JOINTS IN A STEEL STRUCTURE
    • 系统在VERFAHREN ZUR ENTWICKLUNG UND FORMBESTIMMUNG VON STAHLVERBINDUNGEN IN EINER STAHLKONSTRUKTION
    • EP3140755A1
    • 2017-03-15
    • EP15789773.7
    • 2015-05-05
    • Qnect LLC
    • LEDERMAN, HenryHAUSTHOR, Jeffrey AlanPONOMAREV, IlyaGRUBBS, Daniel George
    • G06F17/50
    • G06F17/5004G06F2217/04
    • A system for engineering and detailing joints in a steel structure includes a compute device that is electronically linked with a web-enabled server. In use, the system engages in an automated process of connecting the various joints in the steel structure by first collecting basic connection preferences via the compute device. Additionally, raw data is extracted from a computer model of the steel structure on the compute device. Using the connection preferences and raw data, the server analyzes framing interrelationships and engineers the connection details for each joint based upon connection preferences and load requirements. Taking into account the connection details of other local joints in the steel structure, the server utilizes an iterative engineering process to ensure that the connection details satisfy structural loads in a cost-effective fashion. Upon completion, the engineered connection details are uploaded back into the computer model of the steel structure on the compute device.
    • 用于在钢结构中工程和详细描述接头的系统包括与启用web的服务器电子连接的计算设备。 在使用中,系统通过首先通过计算装置收集基本的连接偏好来进行连接钢结构中的各种接头的自动化过程。 另外,从计算设备上的钢结构的计算机模型中提取原始数据。 使用连接首选项和原始数据,服务器根据连接首选项和负载要求分析每个关节的框架相互关系和工程师的连接详细信息。 考虑到钢结构中其他局部接头的连接细节,服务器利用迭代工程过程,确保连接细节以成本有效的方式满足结构荷载。 完成后,工程连接细节将被上传回计算设备上钢结构的计算机模型。