t2=-5℃ t1=15℃
273000?(5244.?10-3)?362.83273000?(3275.?10-3)?362.832?02??67.32??19.6?10-6?73000(?5?15)2224?0224?67.32解得 02=103.66?9L=400 γ○
2
=52.44×10-3 γ1=60.86×10-3 σ01=107.72
t2=-5℃ t1=10℃
273000?(5244.?10-3)?400273000?(6083.?10-3)?4002?02??107.72??19.6?10-6?73000(?5?10)2224?0224?107.72解得 02=102.13?10L=450 γ○
2
=52.44×10-3 γ1=60.86×10-3 σ01=107.72
t2=-5℃ t1=10℃
273000?(5244.?10-3)?450273000?(6083.?10-3)?4502-6?02??107.72??19.6?10?73000(?5?10)224?0224?107.722解得 02=100.45?
11L=500 γ○
2
=52.44×10-3 γ1=60.86×10-3 σ01=107.72
t2=-5℃ t1=10℃
273000?(5244.?10-3)?500273000?(6083.?10-3)?5002-6?02??107.72??19.6?10?73000(?5?10)2224?0224?107.72解得 02=99.15?12L=550 γ○
2
=52.44×10-3 γ1=60.86×10-3 σ01=107.72
t2=-5℃ t1=10℃
273000?(5244.?10-3)?550273000?(6083.?10-3)?5502-6?02??107.72??19.6?10?73000(?5?10)2224?0224?107.72解得 02=98.15?13L=600 γ○
2
=52.44×10-3 γ1=60.86×10-3 σ01=107.72
t2=-5℃ t1=10℃
273000?(5244.?10-3)?600273000?(6083.?10-3)?6002-6?02??107.72??19.6?10?73000(?5?10)2224?0224?107.72解得 02=97.36?(5)年均气温 1L=50 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?50273000?(3275.?10-3)?502?02??67.32??19.6?10-6?73000(15?15)2224?0224?67.32解得 02=67.32?2L=100 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?100273000?(3275.?10-3)?1002?02??67.32??19.6?10-6?73000(15?15)2224?0224?67.32解得 02=67.32?3L=150 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?150273000?(3275.?10-3)?1502-6?02??67.32??19.6?10?73000(15?15)224?0224?67.322解得 02=67.32?4L=200 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?200273000?(3275.?10-3)?2002-6?02??67.32??19.6?10?73000(15?15)2224?0224?67.32解得 02=67.32?5L=250 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?250273000?(3275.?10-3)?2502-6?02??67.32??19.6?10?73000(15?15)2224?0224?67.32解得 02=67.32?6L=300 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?300273000?(3275.?10-3)?3002-6?02??67.32??19.6?10?73000(15?15)2224?0224?67.32解得 02=67.32?7L=350 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?350273000?(3275.?10-3)?3502?02??67.32??19.6?10-6?73000(15?15)2224?0224?67.32解得 02=67.32?8L=326.83 γ○
2
=32.75×10-3 γ1=32.75×10-3 σ01=67.32
t2=15℃ t1=15℃
273000?(3275.?10-3)?326.83273000?(3275.?10-3)?326.832?02??67.32??19.6?10-6?73000(15?15)2224?0224?67.32解得 02=67.32?9L=400 γ○
2
=32.75×10-3 γ1=60.86×10-3 σ01=107.72
t2=15℃ t1=10℃
273000?(3275.?10-3)?400273000?(6083.?10-3)?4002?02??107.72??19.6?10-6?73000(15?10)2224?0224?107.72解得 02=65.80?10L=450 γ○
2
=32.75×10-3 γ1=60.86×10-3 σ01=107.72
t2=15℃ t1=10℃
273000?(3275.?10-3)?450273000?(6083.?10-3)?4502?02??107.72??19.6?10-6?73000(15?10)2224?0224?107.72解得 02=64.20?11L=500 γ○
2
=32.75×10-3 γ1=60.86×10-3 σ01=107.72
t2=15℃ t1=10℃
273000?(3275.?10-3)?500273000?(6083.?10-3)?5002?02??107.72??19.6?10-6?73000(15?10)2224?0224?107.72解得 02=63.04?12L=550 γ○
2
=32.75×10-3 γ1=60.86×10-3 σ01=107.72
t2=15℃ t1=10℃
273000?(3275.?10-3)?550273000?(6083.?10-3)?5502-6?02??107.72??19.6?10?73000(15?10)224?0224?107.722解得 02=62.17?13L=600 γ○
2
=32.75×10-3 γ1=60.86×10-3 σ01=107.72
t2=15℃ t1=10℃
273000?(3275.?10-3)?600273000?(6083.?10-3)?6002?02??107.72??19.6?10-6?73000(15?10)2224?0224?107.72解得 02=61.50?5、计算最高温度下的弧垂
?1L2弧垂的计算公式:f? (γ1=32.75×10-3 )
○1L=50 ○2L=100 ○3L=150 ○4L=200
○5L=250 ○6L=300 ○7L=350 ○8L=362.83 ○9L=400 ○10450 ○11L=500 ○12L=550 8?0σ32.75?10-3?5020=36.03 f?8?36.03=0.284 σ=42.45 f?32.75?10-3?100208?42.45=0.964 σ32.75?10-3?15020=47.66 f?8?47.66=1.932 32.75?10-3?2002σ0=51.66 f?8?51.66=3.170 32.75?10-3?2502σ0=54.70 f?8?54.70=4.677 σ32.75?10-3?30020=57.03 f?8?57.03=6.460 σ=58.83 f?32.75?10-3?350208?58.83=8.524 σ32.75?10-3?362.8320=59.23 f?8?59.23=9.100 32.75?10-3σ?40020=59.07 f?8?59.07=11.089 σf?32.75?10-3?45020=58.868?58.86=14.083 σ32.75?10-3?50020=58.71f?8?58.71=17.433 σ32.75?10-3?55020=58.59f?8?58.59=21.136 32.75?10-3?6002=25.194 13L=600 σ0=58.50f?○8?58.50四、作出挡距与应力和弧垂的关系
(详见附录一)
12010080最高气温弧垂60最低气温最大风速40覆冰年均气温2000100200300400500600700 五、计算说明书
1、根据所在区和导线型号找出相关数据
2、计算各比载,最高气温、最低气温和年均气温的比载为自重比载γ1=32.75×10-3,最大风速比载为γ6=60.86×10-3,覆冰比载为γ7=52.44×10-3 3、计算各挡距lij?[?0]24?(tj?ti)lij=24??[?0]j?[?0]i??E(tj?ti)??????E?(j)2?(i)2?[?0]i???[?0]j??j2??i2 LAB=292.86,LAC=362.83,LAD=203.68,LBC=1995.42,LBD=127.56,LCD=虚数
4、确定应力值:年均气温应力σcp=25%σp=67.32,其他条件下的应力都为40%σp=107.72
5、根据挡距判断控制气象条件和临界挡距,即当L<362.83时,年均气温为控制气象条件;当L>362.83时,最大风速为控制气象条件
22E?2lE?12l26、列状态方程?02???01???E(t2?t1)以临界挡距为分界点,算2224?0224?01,
各气象条件下不同挡距所对应的应力值
?1L27、根据公式f?,计算最高气温下,各挡距所对应的弧垂
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