课后习题整理名词解释和计算
3??lm??ls?lsScp???4???z?3????54?54?0.015??0.64?
4???0.074?55.290?0.074mm凹模深Scp=1.5%×1.3, Δ=0.64mm,
00?z?0.074mm
?0.074?0.074?64.820mm2??z?2?Hm?[Hs?HsScp??]0??64?64?0.015?1.3??0.64?33??0凸模高Scp=1.5%×1.3, Δ=0.64mm,
?z?0.074mm
022??0hm?[hs?hsScp??]0?62?62?0.015?1.3??0.64?63.64??z?0.074mm中??33???0.074心距Scp=1.5%, Δ=0.56mm,
?z?0.062mm
0.062?45.81?0.031mm 2Cm?[Cs?CsScp]??z2??45?45?0.015??其余工作尺寸同理算出,省略。
8.有一用ABS塑料成型的制件,其尺寸如图7—36,模具成型零件工作尺寸的制造精度按IT9级GB/T1800—1998选取,磨损量取0.04mm,以公差带法计算凹模和凸模的成型尺寸。
解:①凹模直径Smax=0.8%, Smin=0.3%, Δ=0.40mm ,
???z?0.087mm,?c?0.04mm
?0.087?0.087?120.560mm
Lm??Ls?LsSmax???0z??120?120?0.008?0.4?0校核?Smax?Smin?Ls??z??c??
整理人:DZ
6
课后习题整理名词解释和计算
(0.008-0.003)×120+0.087+0.04=0.65mm>0.40mm 不满足,需降低塑件精度,或选用收缩变化范围小的塑料。 ②凸模直径Δ=0.36mm
lm??ls?lsSmin?????z??114?114?0.003?0.36??0.087?114.70?0.087mm
00校核lm??z??c?Smaxls?Ls
114.7—0.087—0.04—0.008×114=113.66<114, 不满足,需降低塑件精度,或选用收缩变化范围小的塑料。 ③凹模深?z?0.062mm
Hm???1?Smin?Hs??z?0z???1?0.003??48?0.062?0???0.062?0.062?48.080mm
校核Hm?SmaxHs???Hs
48.08-0.008×48+0.24=47.93<48 不满足,需降低塑件精度,或选用收缩变化范围小的塑
料。 9.图7-36的ABS塑件,若采用组合式圆形型腔,模具材料为45钢,其许用应力[σ]=160MPa,型腔压力取40MPa,试求其凹模侧壁厚度。
解:由于型腔半径为60mm小于86mm,故按强度计算凹模侧壁厚度
?S?r???
?????1???60?????2p????160?1??24.85mm
160?2?40?整理人:DZ 7