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				an是(1+x)n展開式中含x2的項的系數.則等于A.2               B.0               C.1               D.-1			查看更多
           
          


		
          
		
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          an是(1+x)n+1nÎN*)的展開式中含x2的項的系數,則                                                                          
            
          A.1                         B.2                         C.3                         D.4 
          

			
          
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          an是 (1 + x) n + 1 (nÎN*) 展開式中含x2項的系數,則 =
          (19)  
          A.2B.1C.D.0
          

			
          
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          an是 (1 + x) n + 1 (nÎN*) 展開式中含x2項的系數,則 =
          (19)  
          A.2B.1C.D.0
          

			
          
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          若an是(1+x)n+1(n∈N*)展開式中含x2項的系數,則
          lim
          n→∞
          1
          a1
          +
          1
          a2
          +…+
          1
          an
          )=( 。
          
                
          A、2
          B、1
          C、
          1
          2
          D、0
          

			
          
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          若an是(1+x)n+1(n∈N*)展開式中含x2項的系數,則
          lim
          n→∞
          1
          a1
          +
          1
          a2
          +…+
          1
          an
          )=( 。
          A.2B.1C.
          1
          2
          		D.0
          

			
          
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          難點磁場
          6ec8aac122bd4f6e
          殲滅難點訓練
          一、1.解析:6ec8aac122bd4f6e,
          6ec8aac122bd4f6e
          答案:A
          2.解析:6ec8aac122bd4f6e
          答案:C
          二、3.解析:6ec8aac122bd4f6e
          6ec8aac122bd4f6e
          答案:6ec8aac122bd4f6e
          4.解析:原式=6ec8aac122bd4f6e
          6ec8aac122bd4f6e
          a?b=86ec8aac122bd4f6e
          答案:86ec8aac122bd4f6e
          三、5.解:(1)由{an+16ec8aac122bd4f6ean}是公比為6ec8aac122bd4f6e的等比數列,且a1=6ec8aac122bd4f6e,a2=6ec8aac122bd4f6e,
          an+16ec8aac122bd4f6ean=(a26ec8aac122bd4f6ea1)(6ec8aac122bd4f6e)n-1=(6ec8aac122bd4f6e6ec8aac122bd4f6e×6ec8aac122bd4f6e)(6ec8aac122bd4f6e)n-1=6ec8aac122bd4f6e,
          an+1=6ec8aac122bd4f6ean+6ec8aac122bd4f6e                                               ①
          又由數列{lg(an+16ec8aac122bd4f6ean)}是公差為-1的等差數列,且首項lg(a26ec8aac122bd4f6ea1)
          =lg(6ec8aac122bd4f6e6ec8aac122bd4f6e×6ec8aac122bd4f6e)=-2,
          ∴其通項lg(an+16ec8aac122bd4f6ean)=-2+(n-1)(-1)=-(n+1),
          an+16ec8aac122bd4f6ean=10(n+1),即an+1=6ec8aac122bd4f6ean+10(n+1)                                                                                                 
          ①②聯(lián)立解得an=6ec8aac122bd4f6e[(6ec8aac122bd4f6e)n+1-(6ec8aac122bd4f6e)n+1
          (2)Sn=6ec8aac122bd4f6e
          6ec8aac122bd4f6e
          6.解:由于6ec8aac122bd4f6e=1,可知,f(2a)=0                                                                      ①
          同理f(4a)=0                                                                                                            ②
          由①②可知f(x)必含有(x-2a)與(x-4a)的因式,由于f(x)是x的三次多項式,故可設f(x)=A(x-2a)(x-4a)(xC),這里A、C均為待定的常數,
          6ec8aac122bd4f6e
          6ec8aac122bd4f6e,即4a2A-2aCA=-1                                                         ③
          同理,由于6ec8aac122bd4f6e=1,得A(4a-2a)(4aC)=1,即8a2A-2aCA=1                        ④
          由③④得C=3a,A=6ec8aac122bd4f6e,因而f(x)= 6ec8aac122bd4f6e (x-2a)(x-4a)(x-3a),
          6ec8aac122bd4f6e
          6ec8aac122bd4f6e
          由數列{an}、{bn}都是由正數組成的等比數列,知p>0,q>0
          6ec8aac122bd4f6e
          p<1時,q<1, 6ec8aac122bd4f6e
          6ec8aac122bd4f6e
          8.解:(1)an=(n-1)d,bn=26ec8aac122bd4f6e=2(n1)d?
          Sn=b1+b2+b3+…+bn=20+2d+22d+…+2(n1)d?
          d≠0,2d≠1,∴Sn=6ec8aac122bd4f6e
          Tn=6ec8aac122bd4f6e
          (2)當d>0時,2d>1
          6ec8aac122bd4f6e
           
           
           
          		
          
	
          
	
          
		
          


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