在工业操作技术制造电缆的工艺阶段,确保双绞线传输数字信号的标准化参数

G. Bezprozvannych, O. Pushkar
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引用次数: 1

摘要

介绍。在生产控制和控制系统中,建筑物使用许多简单的设备-用于检测光,热,运动,烟雾,湿度和压力的传感器,激活和控制开关的机制,关闭设备,警报等-“操作技术”(OT)。不同的通信协议和现场技术,如用于空调系统的Modbus,用于访问控制的Bacnet和用于照明的Lonworks,传统上被用于它们的连接。网络碎片化导致在创建单个自动化系统时需要使用网关来转换协议,这使任何对象的复杂控制系统的实现变得复杂。同时,信息网络是统一的,但由于各种原因(技术、成本),以太网协议用于其中的操作技术还没有得到广泛应用。与现有的现场轮胎网络相比,由于其高带宽,工业以太网在OT中实现附加功能的灵活性显著提高。现代工业以太网网络基于非屏蔽和屏蔽双绞线5E类电缆。双绞线结构中额外金属屏的存在,会引起导体电阻的增加,这是由于紧密度、电容量和宽带信号传输范围内衰减比的影响。目的。基于对工业操作技术中屏蔽和非屏蔽电缆电气参数宽频率范围内测量结果的分析,确定技术设备设置范围,以确保消光系数和抗扰度的标准化值。方法。实验研究了305米长5e类屏蔽电缆10条和85条样本对传输电参数的统计平均值。在1 ~ 10mhz的频率范围内,非屏蔽电缆的衰减系数值较小。在大于30mhz的范围内,屏蔽电缆受铝带屏的影响,衰减值较小。建立了双绞线电阻和容量不对称的配对相关系数,对非屏蔽电缆为0,9735,对屏蔽电缆为0,9257。事实证明,电阻对的不对称性在更大程度上影响了电缆抗扰度的提高。分析了随机工艺过程中噪声干扰对隔离导体直径和电容量偏离标称值的影响。提出了保证高频衰减和抗噪的工艺流程设置策略。实用价值。由随机工艺过程中的随机变化引起的乘法干扰,在概率为50%的水平上,可导致直径偏离标称值2倍。工艺设备的设备设置必须保证绝缘导体的变容系数为0.3%,以达到高水平的抗噪性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ensuring standardized parameters for the transmission of digital signals by twisted pairs at the technological stage of manufacturing cables for industrial operating technologies
Introduction. In production control and control systems, buildings use many simple devices - sensors to detect light, heat, movement, smoke, humidity and pressure, mechanisms for activation and control of switches, closing devices, alarm, etc. - «operating technologies» (OT). Different communication protocols and field tire technologies, such as Modbus for conditioning systems, Bacnet for access control and Lonworks for lighting, have been traditionally used and used for their connection. Network fragmentation leads to the need to use gateways to transform protocols when creating a single automation system, which complicates the implementation of complex control systems for any object. At the same time, information networks are unified, but the Ethernet protocol used in them for operating technologies for various reasons (technological, cost) has not been widespread. Due to its high bandwidth compared to existing field tire networks, industrial Ethernet is significantly capable of increasing flexibility in the implementation of additional functions in OT. Modern industrial Ethernet networks are based on non - shielded and shielded twisted pair category 5E cables. The presence of additional metal screens in the structure of twisted pair causes the increase in electrical resistance of conductors due to the effect of closeness, the electrical capacity, and the ratio of attenuation in the range of transmission of broadband signals. Purpose. Substantiation of the range of settings of technological equipment to ensure standardized values of the extinction coefficient and immunity based on the analysis of the results of measurements in a wide frequency range of electrical parameters of shielded and unshielded cables for industrial operating technologies. Methodology. Experimental studies have been performed for statistically averaged electrical parameters of the transmission of pairs for 10 and 85 samples of 305 meters long and shielded cables of category 5e, respectively. It is determined that in the frequency range from 1 to 10 MHz, unshielded cables have less values of the attenuation coefficient. In the range of more than 30 MHz, the shielded cables have smaller values of the attenuation due to the influence of the alumopolymer tape screen. It is established that the coefficient of paired correlation between asymmetries of resistance and capacity of twisted pairs is 0,9735 - for unshielded and 0,9257 - for shielded cables. The impact has been proven to a greater extent asymmetry of resistance the pairs on the increasing noise immunity of cables. The influence noise interference on the deviation of the diameter and electrical capacity of the isolated conductor from the nominal values in the stochastic technological process is analyzed. The strategy of technological process settings to ensure the attenuation and the noise immunity in the high -frequency range is substantiated. Practical value. Multiplicative interference, caused by random changes in the stochastic technological process, can lead to a deviation of diameter 2 times from the nominal value at level of probability at 50 %. The equipment settings of the technological equipment must guarantee the coefficient of variation capacity of the insulated conductor at 0.3 % for high level of noise immunity.
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