结合集散控制系统的特点,设计了一种嵌入式啤酒发酵控制系统。该系统采用自主研发的智能化SOC(System on Chip)嵌入式数据终端处理器作为控制终端;通过差动中值定标的方法实现现场高精度检测;使用固定周期预测增量控制方法对啤酒发酵的...结合集散控制系统的特点,设计了一种嵌入式啤酒发酵控制系统。该系统采用自主研发的智能化SOC(System on Chip)嵌入式数据终端处理器作为控制终端;通过差动中值定标的方法实现现场高精度检测;使用固定周期预测增量控制方法对啤酒发酵的温度进行控制;采用时间隧道数据处理器处理的方法而使数据处理系统化,提高了系统的稳定性和连贯性;数据终端处理器配置通用串行口,与工控计算机组成局域网实现集散式控制。实践证明,该系统不仅成本低、功能强,而且灵活、可靠。展开更多
For the release of hazardous contaminant indoors, source identification is critical for developing effective response measures. A method which can quickly and accurately identify the position, emission rate, and relea...For the release of hazardous contaminant indoors, source identification is critical for developing effective response measures. A method which can quickly and accurately identify the position, emission rate, and release time of a single constant contaminant source by using real sensors was presented. The method was numerically demonstrated and validated by a case study of contaminant release in a three-dimensional office. The effects of the measurement errors and total sampling period of sensor on the performance of source identification were thoroughly studied. The results indicate that the adverse effects of the measurement errors can be mitigated by extending the total sampling period. For reaching a desirable accuracy of source identification, the total sampling period should exceed a certain threshold, which can be determined by repeatedly running the identification method tmtil the results tend to be stable. The method presented can contribute to develop an onsite source identification system for protecting occupants from indoor releases.展开更多
文摘结合集散控制系统的特点,设计了一种嵌入式啤酒发酵控制系统。该系统采用自主研发的智能化SOC(System on Chip)嵌入式数据终端处理器作为控制终端;通过差动中值定标的方法实现现场高精度检测;使用固定周期预测增量控制方法对啤酒发酵的温度进行控制;采用时间隧道数据处理器处理的方法而使数据处理系统化,提高了系统的稳定性和连贯性;数据终端处理器配置通用串行口,与工控计算机组成局域网实现集散式控制。实践证明,该系统不仅成本低、功能强,而且灵活、可靠。
基金Project(50908128) supported by the National Natural Science Foundation of ChinaProject(51125030) supported by the National Science Foundation for Distinguished Young Scholars in China
文摘For the release of hazardous contaminant indoors, source identification is critical for developing effective response measures. A method which can quickly and accurately identify the position, emission rate, and release time of a single constant contaminant source by using real sensors was presented. The method was numerically demonstrated and validated by a case study of contaminant release in a three-dimensional office. The effects of the measurement errors and total sampling period of sensor on the performance of source identification were thoroughly studied. The results indicate that the adverse effects of the measurement errors can be mitigated by extending the total sampling period. For reaching a desirable accuracy of source identification, the total sampling period should exceed a certain threshold, which can be determined by repeatedly running the identification method tmtil the results tend to be stable. The method presented can contribute to develop an onsite source identification system for protecting occupants from indoor releases.