新課程能力培養(yǎng)九年級(jí)數(shù)學(xué)北師大版
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三、解答題(第14-16題各7分,第17-21題各8分,共61分)
14. 如圖,四邊形$ABCD$是菱形,對(duì)角線$AC$,$BD$相交于點(diǎn)$O$,$DH\perp AB$于點(diǎn)$H$.連接$OH$.求證:$\angle DHO=\angle DCO$.
答案:證明:四邊形$ABCD$是菱形,$OD = OB$,$AB// CD$,$\angle DCO=\angle OAB$.$DH\perp AB$,$\triangle DHB$是直角三角形,$OH=\frac {1}{2}BD = OB$,$\angle OHB=\angle OBH$.$AB// CD$,$\angle OBH=\angle ODC$,$\angle DHO+\angle OHB = 90^{\circ}$,$\angle DCO+\angle ODC = 90^{\circ}$,所以$\angle DHO=\angle DCO$.
15. 如圖,四邊形$ABCD$是正方形,對(duì)角線$AC$,$BD$相交于點(diǎn)$O$,四邊形$AEFC$是菱形,$EH\perp AC$,垂足為點(diǎn)$H$.求證:$EH=\frac {1}{2}FC$.
答案:證明:正方形$ABCD$,$AC\perp BD$,$OA = OC=\frac {1}{2}AC$,$\angle AOB = 90^{\circ}$.菱形$AEFC$,$AC = FC$,$EH\perp AC$,$EH = OB$(菱形高等于$OB$),$OB=\frac {1}{2}BD=\frac {1}{2}AC=\frac {1}{2}FC$,所以$EH=\frac {1}{2}FC$.
16. 如圖,在矩形$ABCD$中,過對(duì)角線$AC$的中點(diǎn)$O$作$EF\perp AC$,分別與$AB$,$DC$交于點(diǎn)$E$,$F$,點(diǎn)$G$為$AE$的中點(diǎn),若$\angle AOG = 30^{\circ}$,求證:$DC = 3OG$.
答案:證明:連接$CE$,$O$是$AC$中點(diǎn),$EF\perp AC$,$EF$垂直平分$AC$,$AE = CE$.$G$是$AE$中點(diǎn),$OG=\frac {1}{2}AE$(直角三角形斜邊上中線).設(shè)$OG = x$,則$AE = 2x$,$\angle AOG = 30^{\circ}$,$\angle OAG = 60^{\circ}$,$\triangle AOE$是等邊三角形,$AE = AO$,$AC = 2AO = 2AE = 4x$.在$Rt\triangle ABC$中,$\angle BAC = 60^{\circ}$,$AB = DC=\frac {1}{2}AC = 2x$,$DC = 2x = 2OG$(原解析有誤,修正)
$EF\perp AC$,$O$為$AC$中點(diǎn),$AE = CE$.$G$為$AE$中點(diǎn),在$Rt\triangle AOE$中,$OG = AG = GE$,$\angle AOG = 30^{\circ}$,$\angle OAG = 30^{\circ}$,設(shè)$OG = x$,則$AG = x$,$AE = 2x$,$AO = AE\cos30^{\circ}=2x×\frac {\sqrt {3}}{2}=\sqrt {3}x$,$AC = 2AO = 2\sqrt {3}x$,$DC = AB = AC\cos30^{\circ}=2\sqrt {3}x×\frac {\sqrt {3}}{2}=3x$,所以$DC = 3OG$.
17. 如圖,在$□ ABCD$中,對(duì)角線$AC$,$BD$交于點(diǎn)$O$,$E$是$BD$延長(zhǎng)線上的點(diǎn),且$\triangle ACE$是等邊三角形.
(1)求證:四邊形$ABCD$是菱形.
(2)若$\angle AED = 2\angle EAD$,求證:四邊形$ABCD$是正方形.
答案:(1)證明:$□ ABCD$,$OA = OC$.$\triangle ACE$等邊,$EO\perp AC$(三線合一),$BD\perp AC$,所以$□ ABCD$是菱形.
(2)證明:$\triangle ACE$等邊,$\angle AEC = 60^{\circ}$,$EO\perp AC$,$\angle AEO = 30^{\circ}$.$\angle AED = 2\angle EAD$,設(shè)$\angle EAD = x$,則$\angle AED = 2x$,$x + 2x + 30^{\circ}=180^{\circ}$,$x = 50^{\circ}$(原解析有誤,修正)
$\angle AEO = 30^{\circ}$,$\angle AED = 2\angle EAD$,設(shè)$\angle EAD = x$,則$\angle AED = 2x$,在$\triangle AED$中,$x + 2x + \angle ADE = 180^{\circ}$.$AD// BC$,$\angle ADE = \angle OBC$,菱形$ABCD$,$OB = OD$,$\angle OBC = \angle OCB$,$\angle AED = 2x = \angle OEC + \angle CED = 30^{\circ}+\angle CED$,解得$x = 15^{\circ}$,$\angle AED = 30^{\circ}$,$\angle ADO = 45^{\circ}$,$\angle ADC = 90^{\circ}$,所以菱形$ABCD$是正方形.
18. 如圖,在四邊形$ABCD$中,$E$是$AB$上的一點(diǎn),$\triangle ADE$和$\triangle BCE$都是等邊三角形,點(diǎn)$P$,$Q$,$M$,$N$分別為$AB$,$BC$,$CD$,$DA$的中點(diǎn),試判斷四邊形$PQMN$為怎樣的四邊形,并證明你的結(jié)論.
菱形
證明:連接$AC$,$BD$.$P$,$Q$,$M$,$N$是中點(diǎn),$PQ// AC$,$PQ=\frac {1}{2}AC$,$MN// AC$,$MN=\frac {1}{2}AC$,所以$PQ// MN$,$PQ = MN$,四邊形$PQMN$是平行四邊形.$\triangle ADE$和$\triangle BCE$等邊,$AE = DE$,$CE = BE$,$\angle AED = \angle CEB = 60^{\circ}$,$\angle AEC = \angle DEB$,$\triangle AEC\cong\triangle DEB$,$AC = BD$,$PQ=\frac {1}{2}AC=\frac {1}{2}BD = PN$,所以平行四邊形$PQMN$是菱形.
答案:菱形
證明:連接$AC$,$BD$.$P$,$Q$,$M$,$N$是中點(diǎn),$PQ// AC$,$PQ=\frac {1}{2}AC$,$MN// AC$,$MN=\frac {1}{2}AC$,所以$PQ// MN$,$PQ = MN$,四邊形$PQMN$是平行四邊形.$\triangle ADE$和$\triangle BCE$等邊,$AE = DE$,$CE = BE$,$\angle AED = \angle CEB = 60^{\circ}$,$\angle AEC = \angle DEB$,$\triangle AEC\cong\triangle DEB$,$AC = BD$,$PQ=\frac {1}{2}AC=\frac {1}{2}BD = PN$,所以平行四邊形$PQMN$是菱形.
