日B视频 亚洲,啪啪啪网站一区二区,91色情精品久久,日日噜狠狠色综合久,超碰人妻少妇97在线,999青青视频,亚洲一区二卡,让本一区二区视频,日韩网站推荐

用戶名: 密 碼: 忘記密碼? 免費(fèi)注冊(cè)

MAX2170 VHF和L波段輸入端口的S11參數(shù)

2009-09-18 08:06本站整理 佚名我要評(píng)論(0我要收藏

MAX2170 VHF和L波段輸入端口的S11參數(shù)

Abstract: This application note shows how the MAX2170 triple-band (T-DMB, DAB, FM) receiver's input-scattering parameter (S11) is measured for the VHF and L-band inputs.

Overview

The MAX2170 direct conversion to low-IF tuner has an input scattering parameter (S11), which is measured for the VHF and L-band inputs. The calibration plane is at the pin of the IC.

The VHF input consists of a bandpass tracking filter followed by an LNA. The return loss will be good for the desired channel, but will look reflective for the out-of-band channels. As a result, the S11 data will change significantly as the MAX2170 tunes to a new channel. To address this issue, the series 91nH inductor, which is part of the VHF tracking filter, was removed from the input for the S11 measurements (Figure 1). Removing this component changes the tracking filter's shape but allows S11 calibration to the pin of the IC. Note, however, that the 91nH inductor is required for the tracking filter to operate properly. It must be used in the final application.

The L-band input consists of ESD diodes and an LNA. The input will look resistive with some shunt capacitance. The S11 data for this input will not vary when the MAX2170 tunes to a new channel. The L-band input can be modeled as a resistor R = 23.4Ω in series with C = 4.2pF.

Figure 1. Schematic of the VHF and L-band inputs to the MAX2170. The 91nH inductor for the VHF input can be removed for calibration of S11 data.
Figure 1. Schematic of the VHF and L-band inputs to the MAX2170. The 91nH inductor for the VHF input can be removed for calibration of S11 data.

Performance Summary

Table 1 shows S11 data (magnitude and phase) for the VHF and L-band inputs. The RF frequency is changed for each measurement.

Table 1. S11 (Magnitude/Phase) for VHF and L-Band Input
Band Channel Frequency
(MHz)
Pin = -50dBm
Mag Phase
VHF 5A 174.928 0.690 -39.2
9B 204.64 0.729 -31.6
13F 239.2 0.776 -26.1
L LA 1452.96 0.503 -115.4
LL 1471.792 0.479 -116.9
LW 1490.624 0.459 -117.1

Table 2 shows S11 data (real and imaginary) for the VHF and L-band inputs. The RF frequency is changed for each measurement.

Table 2. S11 (Real/Imaginary) for VHF and L-Band Inputs
Band Channel Frequency
(MHz)
Pin = -50dBm
Real Imaginary
VHF 5A 174.928 5.35E-01 -4.37E-01
9B 204.64 6.21E-01 -3.83E-01
13F 239.2 6.97E-01 -3.41E-01
L LA 1452.96 -2.15E-01 -4.55E-01
LL 1471.792 -2.17E-01 -4.27E-01
LW 1490.624 -2.09E-01 -4.09E-01

Test Results

Figure 2. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 174.928MHz.
Figure 2. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 174.928MHz.

Figure 3. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 204.64MHz.
Figure 3. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 204.64MHz.

Figure 4. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 239.2MHz.
Figure 4. The Thevenin equivalent resistance and capacitance for the VHF input when the RF is tuned to 239.2MHz.

Figure 5. S11 magnitude and phase for the VHF input with the MAX2170 tuned to 174.928MHz. Note that this s-parameter data will change if the MAX2170's RF frequency changes.
Figure 5. S11 magnitude and phase for the VHF input with the MAX2170 tuned to 174.928MHz. Note that this s-parameter data will change if the MAX2170's RF frequency changes.

Figure 6. The Thevenin equivalent resistance and capacitance for the L-band input. The Thevenin equivalent circuit looks the same for RF frequencies from 1450MHz to 1500MHz. The average value is R = 23.4O in series with C = 4.2pF.
Figure 6. The Thevenin equivalent resistance and capacitance for the L-band input. The Thevenin equivalent circuit looks the same for RF frequencies from 1450MHz to 1500MHz. The average value is R = 23.4Ω in series with C = 4.2pF.

Figure 7. The Thevenin model of L-band RF input in a 50O system
Figure 7. The Thevenin model of L-band RF input in a 50Ω system

Figure 8. S11 magnitude and phase for the L-band input.
Figure 8. S11 magnitude and phase for the L-band input.

Test Files

The following test files contain S11 data in CITIFILE format for the MAX2170.

File Description
VHF_174.928.d1 VHF input with RF tuned to 174.928MHz
VHF_204.64.d1 VHF input with RF tuned to 204.64MHz
VHF_239.2.d1 VHF input with RF tuned to 239.2MHz
L_5A.d1 L-band input with RF tuned to 1452.96MHz
L_9B.d1 L-band input with RF tuned to 1471.792MHz
L_13F.d1 L-band input with RF tuned to 1490.624MHz
標(biāo)簽
分享到:

(責(zé)任編輯:發(fā)燒友)

發(fā)表評(píng)論,輕松獲取積分:

發(fā)表評(píng)論表單
評(píng)價(jià)[必選]:
用戶名: 驗(yàn)證碼:點(diǎn)擊我更換圖片

請(qǐng)自覺(jué)遵守互聯(lián)網(wǎng)相關(guān)的政策法規(guī),嚴(yán)禁發(fā)布色情、暴力、反動(dòng)的言論。

新河县| 鞍山市| 昌吉市| 龙南县| 镇江市| 水城县| 郸城县| 健康| 庆阳市| 湛江市| 黄大仙区| 定边县| 长寿区| 阜南县| 大兴区| 思茅市| 晋城| 三门县| 汉源县| 奈曼旗| 栖霞市| 双城市| 台山市| 奇台县| 老河口市| 汽车| 乌拉特后旗| 裕民县| 昌乐县| 天峨县| 团风县| 大城县| 鲜城| 西丰县| 闻喜县| 甘孜| 耒阳市| 桃源县| 定南县| 克山县| 佛教|