2025年暑假作业本大象出版社八年级数学人教版第30页答案
5. 如图18-22,在菱形$ABCD$中,$E$,$F是对角线AC$上两点,连接$DE$,$DF$,$∠ADF = ∠CDE$. 求证:$AE = CF$.
证明:∵ 四边形ABCD是菱形,∴
DA = DC
,∴
∠DAC = ∠DCA
。∵ ∠ADF = ∠CDE,∴
∠ADF - ∠EDF = ∠CDE - ∠EDF
,∴
∠ADE = ∠CDF
。在△DAE和△DCF中,$\left\{\begin{array}{l}\angle DAC = \angle DCA,\\DA = DC,\\\angle ADE = \angle CDF,\end{array}\right.$ ∴
△DAE ≌ △DCF(ASA)
,∴ AE = CF。

答案

∵ 四边形ABCD是菱形,∴ DA = DC,∴ ∠DAC = ∠DCA。∵ ∠ADF = ∠CDE,∴ ∠ADF - ∠EDF = ∠CDE - ∠EDF,∴ ∠ADE = ∠CDF。在△DAE和△DCF中,$\left\{\begin{array}{l}\angle DAC = \angle DCA,\\DA = DC,\\\angle ADE = \angle CDF,\end{array}\right.$ ∴ △DAE ≌ △DCF(ASA),∴ AE = CF。
6. 如图18-23,在$□ ABCD$中,$AC$,$BD交于点O$,点$E$,$F在AC$上,$AE = CF$.
(1)求证:四边形$EBFD$是平行四边形;
∵ 在▱ABCD中,AC,BD交于点O,∴ OA = OC,OB = OD。∵ AE = CF,∴ OE = OF,∴ 四边形EBFD是平行四边形。

(2)若$∠BAC = ∠DAC$,求证:四边形$EBFD$是菱形.
∵ 四边形ABCD是平行四边形,∴ AB//DC,∴ ∠BAC = ∠DCA。∵ ∠BAC = ∠DAC,∴ ∠DCA = ∠DAC,∴ DA = DC,∴ 平行四边形ABCD为菱形,∴ DB⊥EF,∴ 平行四边形EBFD是菱形,∴ 四边形EBFD是菱形。

答案

(1)∵ 在▱ABCD中,AC,BD交于点O,∴ OA = OC,OB = OD。∵ AE = CF,∴ OE = OF,∴ 四边形EBFD是平行四边形。 (2)∵ 四边形ABCD是平行四边形,∴ AB//DC,∴ ∠BAC = ∠DCA。∵ ∠BAC = ∠DAC,∴ ∠DCA = ∠DAC,∴ DA = DC,∴ 平行四边形ABCD为菱形,∴ DB⊥EF,∴ 平行四边形EBFD是菱形,∴ 四边形EBFD是菱形。