2020年山东省泰安市新泰市中部联盟中考数学一模试卷 +解析

理由:连接EF,DF交BC于K. Q四边形ABFD是平行四边形,

?AB//DF,

??DKE??ABC?45?,

??EKF?180???DKE?135?,EK?ED, Q?ADE?180???EDC?180??45??135?,

??EKF??ADE,

Q?DKC??C, ?DK?DC, QDF?AB?AC,

?KF?AD,

在?EKF和?EDA中, ?EK?ED???EKF??ADE, ?KF?AD???EKF??EDA,

?EF?EA,?KEF??AED,

??FEA??BED?90?,

??AEF是等腰直角三角形,

?AF?2AE.

(3)如图③中,结论不变,AF?2AE.

第29页(共30页)

理由:连接EF,延长FD交AC于K.

Q?EDF?180???KDC??EDC?135???KDC,

?ACE?(90???KDC)??DCE?135???KDC, ??EDF??ACE,

QDF?AB,AB?AC,

?DF?AC

在?EDF和?ECA中, ?DF?AC???EDF??ACE, ?DE?CE???EDF??ECA,

?EF?EA,?FED??AEC,

??FEA??DEC?90?,

??AEF是等腰直角三角形,

?AF?2AE.

第30页(共30页)

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