土力学1-1解:(1)A试样100.083dmm300.317dmm600.928dmm60100.92811.180.083udCd22301060()0.3171.610.0830.928cdCdd(1)B试样100.0015dmm300.003dmm600.0066dmm60100.00664.40.0015udCd22301060()0.0030.910.00150.0066cdCdd1-2解:已知:m=Sm=SG=Q饱和rS=1又知:wSmmm(1)含水量wSmm=4.710.6==%(2)孔隙比0.4432.71.201.0SreGS(3)孔隙率1.20.54554.5%111.2ee(4)饱和密度及其重度32.71.21.77/111.2SsatwGegcme31.771017.7/satsatgkNm(5)浮密度及其重度3'1.771.00.77/satwgcm3''0.77107.7/gkNm(6)干密度及其重度32.71.01.23/111.2SwdGgcme31.231012.3/ddgkNm1-3解:Q31.601.51/110.06dgcm2.701.01110.791.51sswddGe0.7929.3%2.70satseGQ1.60100150.91110.06smVmg(29.3%6%)150.935.2wsmmg1-4解:QwSmmwSmmmsSmmm1000940110.06smmgQ0.160.16940150wsmmgg1-5解:(1)Q31.771.61/110.098dgcmw02.71.01110.681.61sswddGe(2)00.6825.2%2.7satseG(3)max0maxmin0.940.680.540.940.46reeDeeQ1/32/3rD该砂土层处于中密状态。1-6解:1.Q1SdGeSrGeS0.152.750.8250.5Ae0.062.680.5360.3Be32.751.50/10.825dAgcm32.681.74/10.536dBgcmQ(1)d3(1)1.50(10.15)1.74/AdAAgcm3(1)1.74(10.06)1.84/BdBBgcmQAB上述叙述是错误的。2.Q32.751.50/10.825dAgcm32.681.74/10.536dBgcmdAdB上述叙述是错误的。3.Q0.152.750.8250.5Ae0.062.680.5360.3BeABee上述叙述是正确的。1-7证明:(1)/1/11sssssswdsVVsmmmVGVVVVVeeQ1nen1()(1)111swswswGGGnnen(2)1/111swwVwswswssVsswwrsrwsVVsmVVVmmVVVVGSeGSemVVVVVeeegg(3)1'1111swsswsswsswswwswVsVsmmVmVVGGVVVVeeeV1-8解:(1)对A土进行分类①由粒径分布曲线图,查得粒径大于㎜的粗粒含量大于50%,所以A土属于粗粒土;②粒径大于2㎜的砾粒含量小于50%,所以A土属于砂类,但小于㎜的细粒含量为27%,在15%~50%之间,因而A土属于细粒土质砂;③由于A土的液限为%,塑性指数16133pI,在17㎜塑性图上落在ML区,故A土最后定名为粉土质砂(SM)。(2)对B土进行分类①由粒径分布曲线图,查得粒径大于㎜的粗粒含量大于50%,所以B土属于粗粒土;②粒径大于2㎜的砾粒含量小于50%,所以B土属于砂类,但小于㎜的细粒含量为28%,在15%~50%之间,因而B土属于细粒土质砂;③由于B土的液限为%,塑性指数241410pI,在17㎜塑性图上落在ML区,故B土最后定名为粉土质砂(SC)。(3)对C土进行分类①由粒径分布曲线图,查得粒径大于㎜的粗粒含量大于50%,所以C土属于粗粒土;②粒径大于2㎜的砾粒含量大于50%,所以C土属于砾类土;③细粒含量为2%,少于5%,该土属砾;④从图中曲线查得10d,30d和60d分别为㎜,㎜和㎜因此,土的不均匀系数60105.6280.2udCd土的曲率系数22301060()0.450.180.25.6cdCdd⑤由于5,1~3ucCC,所以C土属于级配不良砾(GP)。1-9解:(1)Q12ssmm即1122ddVVgg112211dVV22111(1)1.6520(112%)21.741.7dVV万方(2)1.6530004950sdmVt()4950(19%12%)346.5wsopmmt(3)2.721.01110.6481.65sswddGe20.0%95%2.7279.8%0.648srGSe[2-1]如图所示为某地基剖面图,各土层的重度及地下水位如图,求土的自重应力和静孔隙水应力。解:各层面点自重应力计算如下:O点:kPacz0A点:kPahcz0.3725.1811B点:kPahhcz0.5511825.182211C点:kPahhhcz0.6511011825.18332211D点:kPahhhhcz0.923911011825.1844332211E点:kPahhhhhcz0.11125.93911011825.185544332211各层面点的静孔隙水应力如下:O、A、B点为0;E点:kPahww60)231(10绘图如下:2m2m3m1m1m地下水位γ=m3γ=18kN/m3γsat=20kN/m3γsat=19kN/m3γsat=m3OABCDE01234567890255075100125自重应力(kPa)深度(m)[2-2]某矩形基础,埋深1m,上部结构传至设计地面标高处的荷载为P=2106kN,荷载为单偏心,偏心距e=。求基底中心点、边点A和B下4m深处的竖向附加应力解:已知:P=2106kN,γ0=17kN/m3,d=1m,e0=,l=6m,b=3m,z=4m.(1)基底压力: G=γdlb=20×1×6×3=360kN,Fv=P+G=2106+360=2466kNmlmFPeev0.1626.024663.021060∴kPalelbFpkPalelbFpvv4.101)626.061(362466616.172)626.061(36246661minmax(2)基底附加应力:kPadppkPadpp4.841174.1016.1551176.1720minmi...
