{"currentpage":1,"firstResult":0,"maxresult":10,"pagecode":5,"pageindex":{"endPagecode":5,"startPagecode":1},"records":[{"abstractinfo":"介绍了韶E36海洋平台产品试制的情况。通过合理的铌、钛、镍微合金化的成分设计,结合洁净的冶炼、合理的轧制冷却工艺、正火热处理工艺,成功轧制了60mm E36Z35海洋平台钢板。该钢板从表面至心部组织均匀,晶粒度达到了9.5,强韧性、厚度方向性能满足船规要求。研究结果表明:韶成功试制了以正火状态交货的60mm厚的E36Z35海洋平台。","authors":[{"authorName":"刘年富,何矿年,李桦,廖卫团,温志红,杨太阳","id":"7eb447fd-7eed-49e6-b6a6-c48fbbfbbe20","originalAuthorName":"刘年富,何矿年,李桦,廖卫团,温志红,杨太阳"}],"categoryName":"|","doi":"","fpage":"97","id":"45778732-9b5b-4d62-b28d-a1ef7149551b","issue":"5","journal":{"abbrevTitle":"GT","coverImgSrc":"journal/img/cover/GT.jpg","id":"27","issnPpub":"0449-749X","publisherId":"GT","title":"钢铁"},"keywords":[{"id":"3e3d9aa3-1d57-4b4b-9c57-00b2fd62df9b","keyword":"E36海洋平台试制","originalKeyword":"E36级; 海洋平台用钢; 试制"}],"language":"zh","publisherId":"0449-749X_2011_5_19","title":"E36海洋平台试制","volume":"46","year":"2011"},{"abstractinfo":"介绍了韶E36海洋平台产品试制的情况.通过合理的铌、钛、镍微合金化的成分设计,结合洁净的冶炼、合理的轧制冷却工艺、正火热处理工艺,成功轧制了60 mm E36-Z35海洋平台钢板.该钢板从表面至心部组织均匀,晶粒度达到了9.5,强韧性、厚度方向性能满足船规要求.研究结果表明:韶成功试制了以正火状态交货的60 mm厚的E36-Z35海洋平台.","authors":[{"authorName":"刘年富","id":"edc2901e-b55a-45d6-ad7a-dc06a67f80ed","originalAuthorName":"刘年富"},{"authorName":"何矿年","id":"a8066563-b1e3-4930-981e-238cfe7f213e","originalAuthorName":"何矿年"},{"authorName":"李桦","id":"6d2543e2-8756-4db1-9223-f14609300ce1","originalAuthorName":"李桦"},{"authorName":"廖卫团","id":"4a7f71ab-3a16-4d35-9a98-48784c342966","originalAuthorName":"廖卫团"},{"authorName":"温志红","id":"8f1f4bf4-0a00-46cd-b241-e84480901d98","originalAuthorName":"温志红"},{"authorName":"杨太阳","id":"9637e5f8-48b8-4368-ab9c-7c4e8d007b53","originalAuthorName":"杨太阳"}],"doi":"","fpage":"97","id":"fc0adfd0-4a9d-44ee-94c9-dfd9f8a53a2d","issue":"5","journal":{"abbrevTitle":"GT","coverImgSrc":"journal/img/cover/GT.jpg","id":"27","issnPpub":"0449-749X","publisherId":"GT","title":"钢铁"},"keywords":[{"id":"07b7fa72-166d-4534-955b-73fd537e1a39","keyword":"E36","originalKeyword":"E36级"},{"id":"4cecc85e-04d8-4065-8160-ff968b789587","keyword":"海洋平台","originalKeyword":"海洋平台用钢"},{"id":"bd14623c-418b-4540-89c5-f4cefd9102b0","keyword":"试制","originalKeyword":"试制"}],"language":"zh","publisherId":"gt201105022","title":"E36海洋平台试制","volume":"46","year":"2011"},{"abstractinfo":"采用Nb微合金化技术思路成功设计出E36海洋石油平台H型钢的化学成分,并在实验室研究出合适的TMCP工艺,其力学性能满足GB712-2000的要求.","authors":[{"authorName":"郭华","id":"fea930ab-9fa4-4b59-b5b8-2c8d1358e3f2","originalAuthorName":"郭华"}],"doi":"","fpage":"34","id":"978af5e0-4b9e-4870-8903-00e57bc36964","issue":"1","journal":{"abbrevTitle":"GTYJ","coverImgSrc":"journal/img/cover/GTYJ.jpg","id":"29","issnPpub":"1001-1447","publisherId":"GTYJ","title":"钢铁研究"},"keywords":[{"id":"65fcfc34-15e7-4250-8704-64e93125ed0b","keyword":"海洋石油平台","originalKeyword":"海洋石油平台"},{"id":"3e042f6c-4416-4377-888d-9fdd302d2e33","keyword":"Nb微合金化","originalKeyword":"Nb微合金化"},{"id":"24384e91-3b2f-4a29-b970-24d7de3105f2","keyword":"H型钢","originalKeyword":"H型钢"},{"id":"5e2a145f-88bd-4540-900d-3f3feca87205","keyword":"TMCP","originalKeyword":"TMCP"}],"language":"zh","publisherId":"gtyj200801010","title":"Nb微合金化E36海洋石油平台H型钢的研究","volume":"36","year":"2008"},{"abstractinfo":"通过采用多元微合金化成分设计,LF+VD复合精炼,TMCP控轧控冷、正火等一系列技术,开发了高强度高韧性HYE36海洋石油钻井平台.试生产表明,所开发的HYE36从成分设计到工艺过程控制均比较合理,铸坯质量和钢板综合性能良好,可以满足用户要求.","authors":[{"authorName":"肖大恒","id":"7b27fc6d-aba4-4df6-91c4-c6d6b179874e","originalAuthorName":"肖大恒"},{"authorName":"吴清明","id":"0d78072c-dbd3-474e-b5d2-ae544aa15124","originalAuthorName":"吴清明"},{"authorName":"李曲全","id":"43e2d0d0-8dd2-4143-bba2-c6ba6b5956c9","originalAuthorName":"李曲全"},{"authorName":"孙小平","id":"b402cac7-a191-4e28-81a2-60ee3dcc3e30","originalAuthorName":"孙小平"},{"authorName":"易耀云","id":"87fb1d12-eded-44b7-8310-9bb4b4fb5be8","originalAuthorName":"易耀云"}],"doi":"10.3969/j.issn.1671-6620.2009.02.002","fpage":"84","id":"5d4cdbfc-6a5d-4906-baa6-e4dbd6efd344","issue":"2","journal":{"abbrevTitle":"CLYYJXB","coverImgSrc":"journal/img/cover/CLYYJXB.jpg","id":"17","issnPpub":"1671-6620","publisherId":"CLYYJXB","title":"材料与冶金学报"},"keywords":[{"id":"cbbcd2b9-6a02-40e7-8eb1-485d38169811","keyword":"HYE36","originalKeyword":"HYE36"},{"id":"3edc7075-db5e-47f8-b877-e285f5ea5876","keyword":"海洋石油钻井平台","originalKeyword":"海洋石油钻井平台钢"},{"id":"7146c4b6-6155-4969-8789-ef41c36158e2","keyword":"控轧控冷","originalKeyword":"控轧控冷"}],"language":"zh","publisherId":"clyyjxb200902002","title":"HYE36海洋石油钻井平台试制","volume":"8","year":"2009"},{"abstractinfo":"针对船E36、10CrNiCu,开展了的自然腐蚀电位测试、室内全浸加速腐蚀试验.结果表明,10CrNiCu具有较高的电位值及较低的平均腐蚀速率,表现出较好的耐海水腐蚀性能;其与E36连接时作为阴极受到E36的阳极保护,减慢了其腐蚀速率.","authors":[{"authorName":"杨延涛","id":"4c0b18ae-32f2-4f3a-8028-5befd6275dc3","originalAuthorName":"杨延涛"},{"authorName":"曲占元","id":"f79761ed-2aff-4b72-b9b6-95e50f964e01","originalAuthorName":"曲占元"},{"authorName":"刘刚","id":"d7512b31-a542-4b05-8796-a365432636fa","originalAuthorName":"刘刚"}],"doi":"","fpage":"22","id":"3b6caac9-9acc-4669-910c-7c5dd60b1123","issue":"4","journal":{"abbrevTitle":"CLKFYYY","coverImgSrc":"journal/img/cover/CLKFYYY.jpg","id":"10","issnPpub":"1003-1545","publisherId":"CLKFYYY","title":"材料开发与应用"},"keywords":[{"id":"f001bd93-e740-4cc2-8cbc-30ffeee499d2","keyword":"船体","originalKeyword":"船体钢"},{"id":"c77919ea-7d9e-40d8-afdf-132e64093718","keyword":"海水","originalKeyword":"海水"},{"id":"926f64ca-7b0f-4e89-962f-63be55e5de19","keyword":"腐蚀性能","originalKeyword":"腐蚀性能"}],"language":"zh","publisherId":"clkfyyy201304005","title":"船E36和10CrNiCu耐海水腐蚀性能研究","volume":"28","year":"2013"},{"abstractinfo":"作为1种低成本生产E420海洋平台的工艺路线,采用添加少量微合金元素的成分设计,利用超快冷技术,有效控制冷却过程以改善钢材的微观组织。采用以上工艺试制的50mm海洋平台钢板,获得了良好的综合力学性能,屈服强度大于445MPa,抗拉强度大于578MPa,-40℃冲击功大于200J。","authors":[{"authorName":"李鑫磊","id":"abf63962-4727-4b25-a221-3c68468052ba","originalAuthorName":"李鑫磊"},{"authorName":"狄国标","id":"afdf98c0-f634-48a0-bb00-8ad2544543d2","originalAuthorName":"狄国标"},{"authorName":"杨春卫","id":"7824d8e5-2e5c-40e1-90e8-291a63e0d459","originalAuthorName":"杨春卫"},{"authorName":"田鹏","id":"3dc9826a-5117-4cee-854b-643bf118fd3f","originalAuthorName":"田鹏"},{"authorName":"田士平","id":"64f69648-ca2a-40b2-b1b7-c8524ebc7a1d","originalAuthorName":"田士平"}],"doi":"","fpage":"19","id":"9fe62ed7-a93a-4e07-bcb1-458de333da23","issue":"5","journal":{"abbrevTitle":"GTYJ","coverImgSrc":"journal/img/cover/GTYJ.jpg","id":"29","issnPpub":"1001-1447","publisherId":"GTYJ","title":"钢铁研究"},"keywords":[{"id":"c4615931-dd38-46a9-842f-505dbd7c179a","keyword":"海洋平台","originalKeyword":"海洋平台用钢"},{"id":"46f85a6c-3b76-4aa2-81ef-e8cfbe5f9f59","keyword":"低成本","originalKeyword":"低成本"},{"id":"5da62906-00b3-486e-ae20-8d1a52f27b49","keyword":"超快冷","originalKeyword":"超快冷"},{"id":"d3176737-d82b-40c6-ba3f-120078e0e44e","keyword":"显微组织","originalKeyword":"显微组织"}],"language":"zh","publisherId":"gtyj201205006","title":"低成本海洋平台E420的研制与开发","volume":"40","year":"2012"},{"abstractinfo":"采用V-N微合金化技术思路成功设计出E36海洋石油平台的化学成分,采取第三代TMCP工艺进行试验轧制,其力学性能满足GB712-2000《船体结构》的要求.","authors":[{"authorName":"郭华","id":"9b6e96fa-8fc8-4ee5-953b-69bc1c96f1e1","originalAuthorName":"郭华"}],"doi":"10.3969/j.issn.1004-7638.2007.04.004","fpage":"17","id":"e93f3522-b67a-4007-9fce-33b4e2f56951","issue":"4","journal":{"abbrevTitle":"GTFT","coverImgSrc":"journal/img/cover/gtft1.jpg","id":"28","issnPpub":"1004-7638","publisherId":"GTFT","title":"钢铁钒钛"},"keywords":[{"id":"e7c1907f-be63-484c-b909-48a453d3c295","keyword":"海洋石油平台","originalKeyword":"海洋石油平台"},{"id":"29a2f08d-04d4-4652-957d-d6373c904377","keyword":"H型钢","originalKeyword":"H型钢"},{"id":"776f6dfc-ff2e-41c2-a2f6-6513483be746","keyword":"V-N微合金化技术","originalKeyword":"V-N微合金化技术"},{"id":"0f11a002-761d-4cbc-b040-4014abc2b479","keyword":"TMCP","originalKeyword":"TMCP"}],"language":"zh","publisherId":"gtft200704004","title":"V-N微合金化海洋石油平台实验室研究","volume":"28","year":"2007"},{"abstractinfo":"采用干湿交替周期浸润腐蚀试验模拟了三种设计的EH36平台海洋大气环境中的腐蚀行为。结果表明,降低碳含量并且提高铬含量有利于腐蚀锈层致密化,且腐蚀产物主要为对耐蚀性比较有益的α-FeOOH和γ-FeOOH,此类腐蚀产物在腐蚀后期能够明显抑制腐蚀速率的继续增长。","authors":[{"authorName":"唐荻","id":"a4c8cb21-e855-455e-a2c0-877ea8ea4d67","originalAuthorName":"唐荻"},{"authorName":"张明洁","id":"e076256e-c0ee-4815-84eb-4b127d0933ed","originalAuthorName":"张明洁"},{"authorName":"武会宾","id":"380ef620-8422-4906-9346-1a4ca9d17256","originalAuthorName":"武会宾"},{"authorName":"张杰","id":"8af6917e-f07f-4c46-8615-c40eeb1e4546","originalAuthorName":"张杰"}],"doi":"","fpage":"558","id":"3c3b8dca-e2b8-45b3-a3e3-8ea488031952","issue":"7","journal":{"abbrevTitle":"FSYFH","coverImgSrc":"journal/img/cover/FSYFH.jpg","id":"25","issnPpub":"1005-748X","publisherId":"FSYFH","title":"腐蚀与防护"},"keywords":[{"id":"b70531fb-ef07-49b2-97c8-075a407d491c","keyword":"海洋平台","originalKeyword":"海洋平台钢"},{"id":"4ba009ee-9183-4b0e-b106-d4d2f184221b","keyword":"大气腐蚀","originalKeyword":"大气腐蚀"},{"id":"23af7450-c42a-4de4-9a89-4d4db31532c8","keyword":"腐蚀产物","originalKeyword":"腐蚀产物"}],"language":"zh","publisherId":"fsyfh201207005","title":"EH36平台海洋大气腐蚀性能","volume":"33","year":"2012"},{"abstractinfo":"采用浸泡失重法和电化学方法,结合宏观和微观腐蚀形貌观察以及腐蚀产物分析,研究了E36E690两种海洋工程在模拟海水中的腐蚀行为.结果表明,两种在模拟海水中的电化学行为相似,均呈现阳极的活化溶解,腐蚀电流密度较小;两种均表现为均匀腐蚀,腐蚀速率较低,且随着时间的延长,平均腐蚀速率呈下降趋势;浸泡l周后两种的腐蚀速率相近,4周后E690的平均腐蚀速率逐渐低于E36.","authors":[{"authorName":"马宏驰","id":"72f21ac5-420f-4bf0-a841-fe4af3d8f3de","originalAuthorName":"马宏驰"},{"authorName":"杜翠薇","id":"5d91054e-7a21-4a73-9a3b-5123f6910262","originalAuthorName":"杜翠薇"},{"authorName":"刘智勇","id":"6c5d94a3-709a-404d-9808-74ed6544d106","originalAuthorName":"刘智勇"},{"authorName":"李晓刚","id":"59180e03-b2a3-4987-ba44-000cc914bcce","originalAuthorName":"李晓刚"},{"authorName":"刘潇","id":"e239a5d4-a664-45af-9f6b-90ec28e34d2d","originalAuthorName":"刘潇"},{"authorName":"郝文魁","id":"063055c7-7aa4-4bfc-ab04-8a89b784ec08","originalAuthorName":"郝文魁"}],"doi":"10.11903/1002.6495.2015.035","fpage":"27","id":"8b47fa86-f934-4ffd-b92c-9e1e8a09771e","issue":"1","journal":{"abbrevTitle":"FSXB","coverImgSrc":"journal/img/cover/腐蚀学报封面.jpg","id":"24","issnPpub":"2667-2669","publisherId":"FSXB","title":"腐蚀学报(英文)"},"keywords":[{"id":"f29b1997-41d4-4055-96a4-464f5751590a","keyword":"E690","originalKeyword":"E690钢"},{"id":"31791700-9bbd-4281-815a-2033db0cab02","keyword":"贝氏体高强","originalKeyword":"贝氏体高强钢"},{"id":"a2ccbc75-d3ff-409b-af29-90df33e2b714","keyword":"模拟海水","originalKeyword":"模拟海水"},{"id":"82165e59-b4a6-4c1f-86c0-63ee6164aa26","keyword":"腐蚀","originalKeyword":"腐蚀"}],"language":"zh","publisherId":"fskxyfhjs201601004","title":"E36E690在模拟海水中的腐蚀行为对比研究","volume":"28","year":"2016"},{"abstractinfo":"运用金相分析及扫描电镜断口分析的方法,研究了线能量对船E36的埋弧焊焊缝冲击韧性的影响,结果表明,大线能量焊接时,促使焊缝中产生沿奥氏体晶界分布的先共析铁素体,柱状晶明显粗大,断口微观形貌呈解理+准解理特征;线能量降低时促使焊缝中形成以针状铁素体为主的组织,断口微观形貌呈韧窝+准解理特征.焊缝的冲击韧性取决于焊缝中针状铁素体和先共析铁素体所占的比例.对于12mm厚的钢板,线能量最大不能超过32kJ·cm-1.","authors":[{"authorName":"曲占元","id":"7d546e28-29e3-4641-a6dc-a31dc22da755","originalAuthorName":"曲占元"}],"doi":"10.3969/j.issn.1003-1545.2010.04.002","fpage":"7","id":"600d9da3-de78-4723-80af-bd1f5d999fb9","issue":"4","journal":{"abbrevTitle":"CLKFYYY","coverImgSrc":"journal/img/cover/CLKFYYY.jpg","id":"10","issnPpub":"1003-1545","publisherId":"CLKFYYY","title":"材料开发与应用"},"keywords":[{"id":"5c2c7e17-c88b-4512-ad84-4fd05cd476b6","keyword":"埋弧焊","originalKeyword":"埋弧焊"},{"id":"f3d0530b-700a-4b7b-99de-84b06034b970","keyword":"E36","originalKeyword":"E36钢"},{"id":"6502513b-e492-49f9-84cc-157f53324afa","keyword":"低温韧性","originalKeyword":"低温韧性"}],"language":"zh","publisherId":"clkfyyy201004002","title":"埋弧焊线能量对船E36焊缝低温冲击韧性的影响","volume":"25","year":"2010"}],"totalpage":6202,"totalrecord":62017}