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    :如圖,在平面直角坐標(biāo)系xoy中,拋物線yx2x-10與x軸的交點(diǎn)為A,與y軸的交點(diǎn)為點(diǎn)B,過點(diǎn)Bx軸的平行線BC,交拋物線于點(diǎn)C,連結(jié)AC.現(xiàn)有兩動(dòng)點(diǎn)P,Q分別從O,C兩點(diǎn)同時(shí)出發(fā),點(diǎn)P以每秒4個(gè)單位的速度沿OA向終點(diǎn)A移動(dòng),點(diǎn)Q以每秒1個(gè)單位的速度沿CB向點(diǎn)B移動(dòng),點(diǎn)P停止運(yùn)動(dòng)時(shí),點(diǎn)Q也同時(shí)停止運(yùn)動(dòng).線段OC,PQ相交于點(diǎn)D,過點(diǎn)DDEOA,交CA于點(diǎn)E,射線QEx軸于點(diǎn)F.設(shè)動(dòng)點(diǎn)P,Q移動(dòng)的時(shí)間為t(單位:秒)
    (1)求AB,C三點(diǎn)的坐標(biāo)和拋物線的頂點(diǎn)坐標(biāo);
    (2)當(dāng)t為何值時(shí),四邊形PQCA為平行四邊形?請(qǐng)寫出計(jì)算過程;
    (3)當(dāng)t∈(0,)時(shí),△PQF的面積是否總為定值?若是,求出此定值;若不是,請(qǐng)說明理由;
    (4)當(dāng)t為何值時(shí),△PQF為等腰三角形?請(qǐng)寫出解答過程.
    			
    


			
    

		
    
		
		
	
    
		
    
			
    
				
    
				
    :略
    :(1)在yx2x-10中,令y=0,得x2-8x-180=0.
    解得x=-10或x=18,∴A(18,0).····················································· 1分
    yx2x-10中,令x=0,得y=-10.
    B(0,-10).································· 2分
    BCx軸,∴點(diǎn)C的縱坐標(biāo)為-10.
    由-10=x2x-10得x=0或x=8.
    C(8,-10).·································· 3分
    yx2x-10=(x-4)2
    ∴拋物線的頂點(diǎn)坐標(biāo)為(4,-).    4分
    (2)若四邊形PQCA為平行四邊形,由于QCPA,故只要QCPA即可.
    QCtPA=18-4t,∴t=18-4t
    解得t.·························································································· 6分
    (3)設(shè)點(diǎn)P運(yùn)動(dòng)了t秒,則OP=4t,QCt,且0<t<4.5,說明點(diǎn)P在線段OA上,且不與點(diǎn)O,A重合.
    QCOP,    ∴
    同理QCAF,∴,即
    AF=4tOP
    PFPAAFPAOP=18.································································· 8分
    SPQFPF·OB×18×10=90
    ∴△PQF的面積總為定值90.································································· 9分
    (4)設(shè)點(diǎn)P運(yùn)動(dòng)了t秒,則P(4t,0),F(18+4t,0),Q(8-t,-10) t(0,4.5).
    PQ2=(4t-8+t)2+102=(5t-8)2+100
    FQ2=(18+4t-8+t)2+102=(5t+10)2+100.
    ①若FPFQ,則182=(5t+10)2+100.
    即25(t+2)2=224,(t+2)2
    ∵0≤t≤4.5,∴2≤t+2≤6.5,∴t+2=
    t-2.··················································································· 11分
    ②若QPQF,則(5t-8)2+100=(5t+10)2+100.
    即(5t-8)2=(5t+10)2,無0≤t≤4.5的t滿足.·································· 12分
    ③若PQPF,則(5t-8)2+100=182
    即(5t-8)2=224,由于≈15,又0≤5t≤22.5,
    ∴-8≤5t-8≤14.5,而14.52=()2<224.
    故無0≤t≤4.5的t滿足此方程.·························································· 13分
    注:也可解出t<0或t>4.5均不合題意,
    故無0≤t≤4.5的t滿足此方程.
    綜上所述,當(dāng)t-2時(shí),△PQF為等腰三角形.·························· 14分
    				
    
							
    
			
    
			
    
			
			
    
		
    
	
    

		
    

		





			
    
		
    
		
				
    
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