《电磁兼容导论第9章第10章部分答案.doc》由会员分享,可在线阅读,更多相关《电磁兼容导论第9章第10章部分答案.doc(3页珍藏版)》请在课桌文档上搜索。
1、.9.4.10 Repeat Problem 9.4.8 for the ribbon cable of Problem 9.4.3 where RS=RL=RNE=RFE=63.25. VNE,max=0.791,VFE,max=0解:为1MHz,5V,占空比50%,上升/下降时间为50ns远近端串扰系数:此脉冲串的摆动速率为:近端远端9.4.11 Repeat Problem 9.4.8 for the problem of two wires over a ground plane of problem 9.4.4.VNE,max=10.7mV,VFE,max=2.67mV解:导线上总电
2、感总电容远端和近端串扰系数此脉冲串的摆动速率为:近端远端9.7.2 For the line in Problem 9.7.1, determine the frequency where the shield will affect the inductive coupling when it is grounded at both ends.970 Hz解: 设导线长为拐点频率即所求频率为9.7.3 If the shield in Problem 9.7.1 is grounded at both ends, the line length is 2m and RS=0, RL=1K,
3、RNE=100, and RFE=50 determine the near-end crosstalk transfer ratio at 100 Hz, 1 KHz, 100 KHz, and 10 MHz.0.38 x 10-6,2.67 x 10-6, 3.72 x 10-6, 3.72 x 10-6解:因为两端接地,所以容性耦合为0拐点频率 所求为所求为:当时,感性耦合和频率的变化无关,所以时,所求值不在变化,均为9.7.4 For the ribbon cable shown in Fig. P9.3.4 assume the total mutual inductance and
4、 mutual capacitance to be LM=0.4H and Cm=400pF. If VSt is a 1 MHz sinusoid of magnitude 1 V, and the termination impedances are RS=RL=RNE=RFE=50, determine the near-end crosstalk if a shield is placed around the receptor wire and the shield is only connected to the near end of the reference wire. 12
5、.57mV How much does the shield reduce the crosstalk? 10.88dB解:因为接收导线和参考导线近端相连,故容性融合为0感性融合系数:此脉冲串的摆动速率为:则屏蔽层能减少干扰10.2.4 Compute the reflection loss and absorption loss for a 20 mil steel barrier at 30 MHz, 100 MHz, and 1 GHz, assuming a far-fieldsource. 53.23 dB, 3656.6 dB, 48 dB, 6676.0 dB, 38 dB, 2
6、1,111 dB解:时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:10.3.1 Compute the reflection loss and absorption loss for a 20-mil steel barrier at 10 kHz, 100 kHz, and 1 MHz for a near-field electricsource that is a distance of 5 cm from the shield. 188.02 dB, 66.76 dB,158.02 dB, 211.11 dB, 128.02 dB, 667.
7、6 dB解:近电场情况下时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:10.3.2 Compute the reflection loss and absorption loss for a 20-mil steel barrier at 10 kHz, 100 kHz, and 1 MHz for a near-fieldmagnetic source that is a distance of 5 cm from theshield. 211.45 dBuse R = 0, 66.76 dB, 21.45 dB use R =0, 211.11 dB, 8.55 dB, 667.6 dB解:近磁场情况下时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:时,反射损耗和吸收损耗分别为:3 / 3
