来几个RF问题，看看大家的RF基础功底——系列一

七喜微波

楼主太经典了，我看到晚了，那天面试好多是这里的题目啊

joshua

虽然潜水N久了，但是面对楼主这么强这么kind的人，不能不顶呀

hangguoping

看了一下，才知道自己要学的东西好很多！[em03]

rd2007

还没看完,先顶!

onion_2001

ddd, fgfg

coolkillyou

不错啊。比那些无聊的发什么软件能不能装的s问题有意义多了。

zhuzhu1983

有高手能给解释一下么？看起来比较乱啊  谢了！[em03][em03]

chap

虽然看不懂多少,但也下来了,将来慢慢学,
总之谢谢版主的无私精神

ranlk

还没有来得及看,先顶一下

lahidea

看来不脚踏实地都不行啊！[em10]

xbtxbt

系列1有4个不会，系列2有1个不会，会做的错了3个

xbtxbt

混频器的那个有点模棱两可，没说清楚，貌似哪个答案都可以说的，题目没有说约束条件

dragonnj

谢谢，下了慢慢看

googoo

系列二 10. Two equal amplitude tones have a power of +10 dBm, and generate a pair of equal amplitude 3rd-order intermodulation products at -20 dBm. What is the 2-tone, 3rd-order intercept point (IP3) of the system?
b) +25 dBm

2-tone, 3rd-order intermod products increase 3 dB in power for every 1 dB increase in tones that produce them. That means the intermods increase in power at a rate of 2 dB per 1 dB relative to the tone power. The 2-tone, 3rd-order intercept point is defined as the theoretical point where the two original tones and the two 3-rd-order products would have equal power (not possible in real systems due to saturation limits).

If the two original tones have a power of +10 dBm and the 3rd-order products have a power of -20 dBm, then the intercept point will be at +10 dBm + [(+10) - (-20)]/2 dB = +10 dBm + 15 dB = +25 dBm.

好像题目不清楚哦，
按这个解释，默认了系统增益为0dB
否则应该是25+0.5*Gain[/COLOR]

googoo

系列1
9. What are the minimum and maximum combined VSWR limits at an interface characterized by a 1.25:1 VSWR and a 2.00:1 VSWR?
a) 1.75:1 (min), 2.25:1 (max)
b) 1.60:1 (min), 2.50:1 (max)
c) 0.75:1 (min), 3.25:1 (max)

谁能用公式验证一下,觉得空口无凭……[/COLOR]

ceci

很实用的帖子,楼主不收分文无私的共享给大家.
真是个德才兼备的好人呀!

cellmax

呵呵,我原先没看过这些题目.不过原先去一个叫syntronic的公司去面试,他们给的题目和这个差不多,大家如果收到这家公司的面试通知的话,先把这些题做一遍就行了.我是因为仪器使用没通过被拒绝了.他们的头目说用矢网测待p1db是最准的,我不太明白.待遇好象也没那么好,在望京[em01]

pure

不顶没人性了
赞！！！！！！！！！！！

demeli

下次面试也许会用到喔

nokia_2010

难得一见的好贴呀！[em14][em14][em14][em14][em14][em14][em14][em14][em14][em14][em14][em21][em21][em21][em23][em23][em23][em23]