钛工业进展
鈦工業進展
태공업진전
TAI GONGYE JINZHAN
2014年
4期
24-27
,共4页
白保良%曾光%戚运莲%洪权%朱梅生
白保良%曾光%慼運蓮%洪權%硃梅生
백보량%증광%척운련%홍권%주매생
Ti-600合金%稳态蠕变速率%蠕变激活能%硅化物
Ti-600閤金%穩態蠕變速率%蠕變激活能%硅化物
Ti-600합금%은태연변속솔%연변격활능%규화물
Ti-600 alloy%steady state creep rate%activation energy%silicide
研究了Ti-600合金在3种温度(550、600、650℃)、5种应力(150、200、250、300、350 MPa)下的蠕变性能,并分析了硅化物对合金蠕变性能的影响。研究结果表明, Ti-600合金具有较小的稳态蠕变速率及较大的蠕变激活能,反映出该合金具有较好的蠕变抗力。当温度升高、应力增大时, Ti-600合金的稳态蠕变速率增大。600℃下,当蠕变应力高达350 MPa时, Ti-600合金的稳态蠕变速率低至3.72×10-7 s-1。 Ti-600合金的蠕变激活能最高可达574.6 kJ· mol-1,最低为332.7 kJ· mol-1。在蠕变过程中, Ti-600合金内析出了S2型( TiZr)6 Si3硅化物,能够钉扎位错、阻碍位错滑移,提高合金的蠕变抗力。
研究瞭Ti-600閤金在3種溫度(550、600、650℃)、5種應力(150、200、250、300、350 MPa)下的蠕變性能,併分析瞭硅化物對閤金蠕變性能的影響。研究結果錶明, Ti-600閤金具有較小的穩態蠕變速率及較大的蠕變激活能,反映齣該閤金具有較好的蠕變抗力。噹溫度升高、應力增大時, Ti-600閤金的穩態蠕變速率增大。600℃下,噹蠕變應力高達350 MPa時, Ti-600閤金的穩態蠕變速率低至3.72×10-7 s-1。 Ti-600閤金的蠕變激活能最高可達574.6 kJ· mol-1,最低為332.7 kJ· mol-1。在蠕變過程中, Ti-600閤金內析齣瞭S2型( TiZr)6 Si3硅化物,能夠釘扎位錯、阻礙位錯滑移,提高閤金的蠕變抗力。
연구료Ti-600합금재3충온도(550、600、650℃)、5충응력(150、200、250、300、350 MPa)하적연변성능,병분석료규화물대합금연변성능적영향。연구결과표명, Ti-600합금구유교소적은태연변속솔급교대적연변격활능,반영출해합금구유교호적연변항력。당온도승고、응력증대시, Ti-600합금적은태연변속솔증대。600℃하,당연변응력고체350 MPa시, Ti-600합금적은태연변속솔저지3.72×10-7 s-1。 Ti-600합금적연변격활능최고가체574.6 kJ· mol-1,최저위332.7 kJ· mol-1。재연변과정중, Ti-600합금내석출료S2형( TiZr)6 Si3규화물,능구정찰위착、조애위착활이,제고합금적연변항력。
Creep tests were carried out on Ti-600 alloy at the temperature of 550 ℃, 600 ℃, 650 ℃, and with the stress of 150 MPa, 200 MPa, 250 MPa, 300 MPa and 350 MPa, respectively.Creep property of Ti-600 alloy and in-fluence of silicide on the creep property for the alloy were also investigated .The results indicated that the value of steady state creep rate is small , and the activation energy is relatively high , which means the alloy possesses favorite creep resistance .The steady state creep rate will increase with the increment of temperature and stress during the creep process.And the steady state creep rate is as low as 3.72 ×10 -7 s-1 for the alloy creep at 600 ℃with the stress of 350 MPa.The calculated highest creep activation energy for the alloy is 574.6 kJ· mol -1 , and the lowest one is 332.7 kJ· mol -1 .During the creep process , slip would be impeded , and dislocations would also be pinned by the pre-cipitated S2 typed silicides ((TiZr)6Si3), then the motion of dislocations would be hindered , which has contribution to the higher creep resistance , and the higher values of activation energy .