一对外啮合标准直圆柱齿轮,z1=20,i=3,模数m=3mm,计算分度圆,齿顶圆直径,齿根圆直径,齿厚,齿槽宽中心距。
在20°Zodal模态m模块下的go-ty-thew角α标准齿轮Alarius wid haha =(ha +)m = 1.25m hh = 1.25m hh = 1.25m高度HH = 1.25m go hh = 125万兆帕dida = dfdf = dfdf = d-hf = d-hf = m (Z-2.5)求解答,急急急!!!一对相啮合的渐开线标准直齿圆柱齿轮,小齿轮损坏。
霉菌编号Mn = DA2/(Z2+2)= 428/(105+2)= 4小齿轮齿编号A =(Z1+Z2)*Mn/2 => 252 =(Z1+105)*4/地址应用2 => z1 = 21传输比i = z2/z1 = 5小齿轮除法直径d1 = z1*mn = 21*4 = 84df1 = d1-mn*(1+0.25)*2 = 2 = 74pb =π*mn = mn = mn =π*mn = 12.566第一齿圆圆形db = d1*cos20 = 84/cos20 = 83.39,请参见直径,然后牙齿di = di+mn*2 = 84+8 = 9292*cosa1 = 83.39 = 83.39 = 83.39 => arscosa1 => arscosa1 = 83.3939找到直径。/92 = 0.306 =>压力斗篷A1 = 24.99°
一对外啮合直齿圆柱齿轮传动,已知Z1=12,Z2=56,m=4mm,α=20o,ha*=1,c*=0.25, 变位系数
当α= 20°,ha*= 1时,不发生根切割的最小可变系数=(17-z)/17,
z = 12,xmin =(17---- 12)/17≈0.294
因此,没有切割齿轮。
计算网格α
= [2×(0.3+0.21)/(12+56)]×TAN20°+INV20°
015×015×0.36397+0.014904
/p >> 20.020364从那里:α'≈22°06'30
计算中心距离
a = m×(z1+) Z2)/2 = 4×(12+56)/2 = 136位置A'=(A×Cosα)/Cosα=(136×COS20°)/COS22°06之后的中心距离'30''137.94
计算中心距离的变化因子
0.3+0.21)-0,485 = 0.025
< P>最终计算峰值的直径,您知道
