期刊文献+

松花江水质参数与换热管内污垢热阻的关联分析 被引量:2

Correlation analysis between Songhua River water quality and fouling resistance in heat exchanger tube
在线阅读 下载PDF
导出
摘要 研究松花江水在换热过程中,主要水质参数对表面污垢热阻的影响程度,分别测定3种管型在换热过程中水质参数的变化情况,所选管型分别是光管、交叉缩放椭圆管和不连续双斜向内肋管,水质参数为p H、碱度、电导率、溶解氧、钙离子浓度和亚铁离子浓度。应用灰色关联方法,将水质数据和污垢热阻数据进行关联分析得出,两种强化管的水质参数关联顺序相同。其中的两种参数与污垢热阻呈现同向变化趋势,其余参数与污垢热阻呈现反向变化的趋势。强化换热管不但对水质参数的变化产生影响,而且对关联程度也有影响。 The influence of the Songhua River water quality on the fouling resistance in heat transfer process was studied. The water quality variation in the heat transfer was measured in three types of heat exchange tube, including a general circular tube and two enhanced tubes, alternating elliptical axis tube and discrete double inclined ribs tube. The measured water quality parameters are pH, alkalinity, conductivity, DO, Ca^2+ and Fe^2+ concentrations. The fouling resistance is correlated with the water quality parameters with the gray correlation method. The results show that the parameter correlation order is the same for the two enhanced tubes. The variation tendency of fouling resistance is the same as two of the water quality parameters and opposite of the other parameters. Compared with circular heat exchange tube, the enhanced heat exchange tube affects not only the water quality parameters, but also the parameter correlation.
出处 《化工学报》 EI CAS CSCD 北大核心 2014年第12期4742-4748,共7页 CIESC Journal
基金 国家自然科学基金项目(51076025)~~
关键词 结垢 湍流 水质参数 灰色关联 数值分析 fouling turbulent flow water quality parameters gray correlation numerical analysis
  • 相关文献

参考文献23

二级参考文献101

共引文献128

同被引文献27

  • 1侯峰,徐宏,曾斌,王跃峰.化学镀Ni-P-SiO_2复合镀层的晶化行为研究(英文)[J].稀有金属材料与工程,2012,41(S2):398-400. 被引量:3
  • 2中华人民共和国科学技术部.中国地热能利用技术及应用[R/OL].(2012-03-09)[2015-08-12].http://www.most.gov.cn/kjbgz/201203/W020120309590813594101.pdf.
  • 3国家能源局.国家能源局、财政部、国土资源部、住房和城乡建设部关于促进地热能开发利用的指导意见:国能新能[2013]48号[A/OL].(2013-01-10)[2015-08-12].http://zfxxgk.nea.gov.cn/auto87/201302/t20130207_1581.htm.
  • 4CORSI R. Scaling and corrosion in geothermal equipment: problems and preventive measures [J]. Geothermics, 1986, 15 (5/6): 839-856.
  • 5MUNDHENK N, HUTTENLOCH P, KOHL T, et al. Metal corrosion in geothermal brine environments of the Upper Rhine graben--Laboratory and on-site studies [J]. Geothermics, 2013, 46:14-21.
  • 6SUGAMA T, BUTCHER T, ECKER L. Experience with the development of advanced materials for geothermal systems [G]//WICKS G, SIMON J, ZIDAN R, et al. Materials Challenges in Alternative and Renewable Energy: Ceramic Transactions, 2011, 224:387-401. DOI: 10.1002/9781118019467.ch37.
  • 7GAWLIK K, SUGAMA T, JUNG D. Organometallic polymer coatings for geothermal-fluid-sprayed air-cooled condensers [J]. Geothermal Resources Council Transactions, 2002, 26: 657-661.
  • 8THOMAS R. Titanium in the geothermal industry [J]. Geothermics, 2003, 32 (4/5/6): 679-687.
  • 9HOUSE R Specialty metal solutions for corrosive geothermal applications [J]. Geothermal Resources Council Transactions, 2010, 34: 1045-1049.
  • 10MUNDHENK N, HUTTENLOCH P, SAN JUAN B, et al. Corrosion and scaling as interrelated phenomena in an operating geothermal power plant [J]. Corrosion Science, 2013, 70: 17-28.

引证文献2

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部