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参考文献是文章或著作等写作过程中参考过的文献,文后参考文献是指为撰写或编辑论文和著作而引用的有关文献信息资源。

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[18]Carey, J. M.,Beilin, R., Boxshall,A.,Burgman M. A. and Flander , “Risk-Based Approaches to Deal with Uncertainty in a Data-Poor System:Stakeholder Involvement in Hazard Identification for Marine National Parks and Marine Sanctuaries in Victoria,Australia”, Risk Analysis: An International Journal,27(1),pp. 271-281,

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[1] Zhixin W, Chuanwen J, Qian A, et al. The key technology of offshore wind farm and its new development in China[J]. Renewable and Sustainable Energy Reviews, 2009, 13(1):216-222.

[2] Shahir H, Pak A. Estimating liquefaction-induced settlement of shallow foundations by numerical approach[J]. Computers and Geotechnics, 2010, 37(3): 267-279.

[3] Hausler EA. Influence of ground improvement on settlement and liquefaction:a study based on field case history evidence and dynamic geotechnicalcentrifuge tests. PhD dissertation, University of California, Berkeley; 2002.

[4] Kemal Hac efendio lu. Stochastic seismic response analysis of offshore wind turbine including fluid‐structure‐soil interaction[J]. Struct. Design Tall Spec. Build.,2010,

[5] Arablouei A, Gharabaghi A R M, Ghalandarzadeh A, et al. Effects of seawater–structure–soil interaction on seismic performance of caisson-type quay wall[J]. Computers &Structures, 2011, 89(23): 2439-2459.

[6] Zafeirakos A, Gerolymos N. On the seismic response of under-designed caisson foundations[J]. Bulletin of Earthquake Engineering, 2013: 1-36.

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[1] T. Paulay and J. R. Binney. Diagonally Reinforced coupling beams of shear Walls[S].ACI Special Publication 42, Detroit, 1974, 2: 579-598

[2] Lam WY, Su R K L, Pam H J. Experimental study of plate-reinforced composite deep coupling beams[J]. Structural Design Tall Special Building, 2009(18): 235-257

[3] ACI 318-02: Building Code Requirements for Structural Concrete, ACI318R-02:Commentary, An ACI Standard, reported by ACI Com-mittee318, American Concete Institute, 2002

[4] Siu W H, Su R K L. Effects of plastic hinges on partial interaction behaviour of bolted side-plated beams[J]. Journal of Construction Steel Research, 2010, 66(5):622-633

[5] Xie Q. State of the art of buckling-restrained braces inAsia[J]. Journal of Construction Steel Research, 2005, 61(6):727-748

[6] Kim J,Chou H. Behavior and design of structures with buckling-restrained braces[J].Structural Engineering, 2004,26(6):693-706

[7] Tsai K C, Lai J W. A study of buckling restrained seismic braced frame[J].Structural Engineering, Chinese Society of Structural Engineering, 2002, 17(2):3-32

[8] Patrick J. Fortney, Bahrem M. Shahrooz, Gian A. Rassati. Large-Scale Testing of a Replaceable “Fuse” Steel Coupling Beam[J]. Journal of Structural 2007:1801-1807

[9] Qihong Zhao. Cyclic Behavior of traditional and Innovative Composite Shear Walls[J]. Journal of Structural Engineering, Feb. 2004:271-284

282 评论

弱智好儿童

1、张会新,龚进,樊姣荣,等. 分布式数字无线测温系统[J]. 化工自动化及仪表,2011,38 ( 12) : 1493 ~ 1495.  .中国知网[引用日期2017-12-20]

2、 赵科,李常贤,张彤.基于STM32的无线温湿度控制器[J].化工自动化及仪表,2015,42(06):629-633.  .中国知网[引用日期2017-12-20]

温湿度控制器主要由传感器、控制器、加热器三部分组成,其工作原理如下:传感器检测箱内温湿度信息,并传递到控制器由控制器分析处理:当箱内的温度、湿度达到或超过预先设定的值时,控制器中的继电器触点闭合,加热器接通电源开始工作,对箱内进行加热或鼓风等;一段时间后,箱内温度或湿度远离设定值,控制器中的继电器触点断开,加热或鼓风停止。

随着工业的发展,对现场温湿度控制的要求越来越高,传统的模拟开关控制已经很难满足生产要求,因此设计更加可靠、智能的无线温湿度控制器将具有较高的经济效益和实用价值。无线温湿度控制器是一种集温湿度信号采集、数据存储、无线收发、控制及通信等功能于一体的新型控制器  。

对于有害及危险等人类难以或无法到达的工作现场,通过设计无线温湿度控制器对生产现场的温湿度进行采集、控制和记录,可达到可靠生产、提高产品质量的目的。

另外,由于工业现场空间较大,温湿度又是非线性、纯滞后和大惯性的被控量,因此采用从机分布控制与主机集中控制相结合的方式进行现场温湿度控制,即通过多点从机进行温湿度采集和控制,采用无线模块将信息传送到中心主机,中心主机通过无线通信向各从机传送给定值和控制参数,主机可进行监控。

参考资料来源:百度百科-温湿度控制器

167 评论

空空的小新

1、张会新,龚进,樊姣荣,等. 分布式数字无线测温系统[J]. 化工自动化及仪表,2011,38 ( 12) : 1493 ~ 1495.  .中国知网[引用日期2017-12-20]

2、 赵科,李常贤,张彤.基于STM32的无线温湿度控制器[J].化工自动化及仪表,2015,42(06):629-633.  .中国知网[引用日期2017-12-20]

一种可同时对温度、湿度信号进行测量控制的仪器,并实现液晶数字显示,还可通过按键对温、湿度分别进行上、下限设置和显示,从而使仪表可以根据现场情况,自动启动风扇或加热器,对被测环境的实际温、湿度自动调节。

动作指示通过两常开触点输出,真正使仪表实现了智能化更能适应复杂多变的现场情况,从而达到有效的保护设备的目的。

温湿度控制器主要分为:普通型系列和智能型系列两种。

普通型温湿度控制器:采用进口高分子温湿度传感器,结合稳定的模拟电路及开关电源技术制作而成。

智能型温湿度控制器:以数码管方式显示温湿度值,有加热器、传感器故障指示、变送功能,该仪表集测量、显示、控制及通讯于一体,精度高、测量范围宽,是一种适合于各个行业和领域的温湿度测量控制仪表。

参考资料来源:百度百科-温湿度控制器

187 评论

冬日恋鬼

你可以参照下面的:[1] 彭立,张建洲,王少华. 自适应温度控制系统的研制[J]东北师大学报(自然科学版), 1994,(01) . [2] 俞胜扬. 环境湿热实验箱加湿系统的改进[J]电测与仪表, 2004,(02) . [3] Jack Shandle. 即将来临的32位浪潮——ARM构架在32位微控制器领域的应用[J]单片机与嵌入式系统应用, 2004,(03) . [4] 刘侃 ,张永泰 ,刘洛琨. ARM程序设计优化策略与技术[J]单片机与嵌入式系统应用, 2004,(04) . [5] 王小飞,袁涛,张铁冰. 铂电阻测温仪的设计与实现[J]电子技术应用, 2005,(09) . [6] 刘镇,姜学智,李东海. PID控制参数整定方法[J]电子技术应用, 1997,(05) . [7] 魏铭炎. 日本及其TABAI ESPEC公司环境试验设备研制和生产概况[J]电子产品可靠性与环境试验, 1995,(01) . [8] 刘建明. “四综合”系统试验应力控制方法研究[J]电子产品可靠性与环境试验, 2005,(S1) . [9] 江孝国,王婉丽,祁双喜. 高精度PID温度控制器[J]电子与自动化, 2000,(05) . [10] 谢晨浩. 环境试验设备湿度测量不确定度的分析[J]电子质量, 2003,(12) . [11] 王春晖. 环境试验箱中制冷系统的原理分析及优化概述[J]电子质量, 2003,(12) . [12] 王红萍. 铂电阻温度传感器测温研究[J]抚顺石油学院学报, 2003,(02) . [13] 张媛媛,何怡刚,徐雪松. 基于C8051F020的温湿度控制箱设计[J]国外电子元器件, 2004,(10) . [14] 于洋. 高低温试验箱微机自动控制系统的设计[J]工业仪表与自动化装置, 2003,(02) . [15] 陈儿同,王芳,贺运红,叶继涛,华泽钊. 多功能低温试验台的研制与实验方法[J]上海理工大学学报, 2002,(03) . [16] 李家柱,李牧铮,张军,孙志华. 人工气候复合加速腐蚀试验机的研究[J]环境技术, 2002,(01) . [17] 陈谋义. 环境温度变化对低温试验箱性能的影响[J]环境技术, 1998,(01) . [18] 胡志强. 环境试验设备与环境试验[J]航空精密制造技术, 1993,(04) . [19] 王晓慧,王丽. 环境试验简介[J]航空标准化与质量, 2002,(03) . [20] 富刚,郎德荣. 温湿度闭环控制实验设备的开发与研制[J]沈阳航空工业学院学报, 1999,(02) .

160 评论

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