(2)用简便方法计算。
125×88
255+173-55+27
25×15×6×4
85×199+85
3000÷125÷8
396-172-28
125×88
255+173-55+27
25×15×6×4
85×199+85
3000÷125÷8
396-172-28
答案
125×88
=125×(80+8)
=125×80+125×8
=10000+1000
=11000
255+173-55+27
=(255-55)+(173+27)
=200+200
=400
25×15×6×4
=(25×4)×(15×6)
=100×90
=9000
85×199+85
=85×(199+1)
=85×200
=17000
3000÷125÷8
=3000÷(125×8)
=3000÷1000
=3
396-172-28
=396-(172+28)
=396-200
=196
=125×(80+8)
=125×80+125×8
=10000+1000
=11000
255+173-55+27
=(255-55)+(173+27)
=200+200
=400
25×15×6×4
=(25×4)×(15×6)
=100×90
=9000
85×199+85
=85×(199+1)
=85×200
=17000
3000÷125÷8
=3000÷(125×8)
=3000÷1000
=3
396-172-28
=396-(172+28)
=396-200
=196
5.已知∠1=125°、∠4=65°,求∠2、∠3、∠5的度数。

答案
答题区:
由题可知,$\angle1$和$\angle2$组成平角,$\angle1 = 125^{\circ}$,所以$\angle2=180^{\circ}-\angle1 = 180^{\circ}- 125^{\circ}=55^{\circ}$;
$\angle3$和$\angle2$作为三角形内角,和对顶角相等的$\angle4$($\angle4 = 65^{\circ}$)所对应的内角互为对顶角(三角形内角和180°),所以$\angle3 = 180^{\circ}-\angle2-\angle4= 180^{\circ}-55^{\circ}- 65^{\circ}=60^{\circ}$;
$\angle5$和$\angle3$组成平角,所以$\angle5=180^{\circ}-\angle3 = 180^{\circ}-60^{\circ}=120^{\circ}$。
综上,$\angle2 = 55^{\circ}$,$\angle3 = 60^{\circ}$,$\angle5 = 120^{\circ}$。
由题可知,$\angle1$和$\angle2$组成平角,$\angle1 = 125^{\circ}$,所以$\angle2=180^{\circ}-\angle1 = 180^{\circ}- 125^{\circ}=55^{\circ}$;
$\angle3$和$\angle2$作为三角形内角,和对顶角相等的$\angle4$($\angle4 = 65^{\circ}$)所对应的内角互为对顶角(三角形内角和180°),所以$\angle3 = 180^{\circ}-\angle2-\angle4= 180^{\circ}-55^{\circ}- 65^{\circ}=60^{\circ}$;
$\angle5$和$\angle3$组成平角,所以$\angle5=180^{\circ}-\angle3 = 180^{\circ}-60^{\circ}=120^{\circ}$。
综上,$\angle2 = 55^{\circ}$,$\angle3 = 60^{\circ}$,$\angle5 = 120^{\circ}$。
6.在下面的点子图中画出底长3cm、高2cm的平行四边形,高4cm的等腰梯形,底和高都是3cm的钝角三角形各一个。(点子图中每相邻的两点之间的距离为1cm。)

答案
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