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AD8314ARM-REEL

更新时间: 2024-01-14 08:56:54
品牌 Logo 应用领域
亚德诺 - ADI 电信集成电路电信电路光电二极管控制器
页数 文件大小 规格书
16页 277K
描述
100 MHz-2500 MHz 45 dB RF Detector/Controller

AD8314ARM-REEL 技术参数

是否无铅: 含铅是否Rohs认证: 符合
生命周期:Active零件包装代码:TSSOP
包装说明:TSSOP,针数:8
Reach Compliance Code:compliantECCN代码:EAR99
HTS代码:8542.39.00.01风险等级:5.01
JESD-30 代码:S-PDSO-G8JESD-609代码:e3
长度:3 mm湿度敏感等级:1
功能数量:1端子数量:8
最高工作温度:85 °C最低工作温度:-40 °C
封装主体材料:PLASTIC/EPOXY封装代码:TSSOP
封装形状:SQUARE封装形式:SMALL OUTLINE, THIN PROFILE, SHRINK PITCH
峰值回流温度(摄氏度):260认证状态:Not Qualified
座面最大高度:1.1 mm标称供电电压:3 V
表面贴装:YES电信集成电路类型:TELECOM CIRCUIT
温度等级:INDUSTRIAL端子面层:Matte Tin (Sn)
端子形式:GULL WING端子节距:0.65 mm
端子位置:DUAL处于峰值回流温度下的最长时间:40
宽度:3 mmBase Number Matches:1

AD8314ARM-REEL 数据手册

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AD8314  
Filter Capacitor  
3
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
V
= 3V  
S
The video bandwidth of both V_UP and V_DN is approximately  
3.5 MHz. In CW applications where the input frequency is much  
higher than this, no further filtering of the demodulated signal  
will be required. Where there is a low-frequency modulation of  
the carrier amplitude, however, the low-pass corner must be  
reduced by the addition of an external filter capacitor, CF (see  
Figure 28). The video bandwidth is related to CF by the equation  
R
= 52.3⍀  
T
2
؎1dB DYNAMIC RANGE  
1
0
1
Video Bandwidth =  
–1  
–2  
–3  
2 π × 4.4 kΩ × (10 pF + CF )  
Operating in Controller Mode  
؎3dB DYNAMIC RANGE  
INTERCEPT  
–50 –40  
INPUT AMPLITUDE – dBV  
Figure 30 shows the basic connections for operation in the con-  
troller mode and Figure 31 shows a block diagram of a typical  
controller mode application. The feedback from V_UP to VSET is  
broken and the desired setpoint voltage is applied to VSET from  
the controlling source (often this will be a DAC). VDN will rail  
high (2.2 V on a 3.3 V supply, 1.9 V on a 2.7 V supply) when  
the applied power is less than the value corresponding to the set-  
point voltage. When the input power slightly exceeds this value,  
VDN would, in the absence of the loop via the power amplifier  
gain pin, decrease rapidly toward ground. In the closed loop,  
however, the reduction in VDN causes the power amplifier to re-  
duce its output. This restores a balance between the actual power  
level sensed at the input of the AD8314 and the demanded value  
determined by the setpoint. This assumes that the gain control  
sense of the variable gain element is positive, that is, an increas-  
ing voltage from V_DN will tend to increase gain. The output  
swing and current sourcing capability of V_DN are shown in  
Figures 19 and 20.  
0
–70  
–60  
(–47dBm)  
–30  
–20  
–10  
(+3dBm)  
0
Figure 29. VUP and Log Conformance Error vs. Input  
Level vs. Input Level at 900 MHz  
Transfer Function in Terms of Slope and Intercept  
The transfer function of the AD8314 is characterized in terms of  
its Slope and Intercept. The logarithmic slope is defined as the  
change in the RSSI output voltage for a 1 dB change at the input.  
For the AD8314, slope is nominally 21.5 mV/dB. So a 10 dB  
change at the input results in a change at the output of approxi-  
mately 215 mV. The plot of Log-Conformance (Figure 29) shows  
the range over which the device maintains its constant slope. The  
dynamic range can be defined as the range over which the error  
remains within a certain band, usually ±1 dB or ±3 dB. In  
Figure 29, for example, the ±1 dB dynamic range is approxi-  
mately 50 dB (from –13 dBV to –63 dBV).  
The intercept is the point at which the extrapolated linear  
response would intersect the horizontal axis (Figure 29). Using  
the slope and intercept, the output voltage can be calculated for  
any input level within the specified input range using the equation:  
0.1F  
52.3⍀  
V
RFIN  
8
7
6
5
INPUT  
VSET  
1
2
3
4
VPOS  
V DN  
S
VUP = VSLOPE × (PIN – PO)  
V
VDN  
ENBL  
S
AD8314  
where VUP is the demodulated and filtered RSSI output, VSLOPE  
is the logarithmic slope, expressed in V/dB, PIN is the input sig-  
nal, expressed in decibels relative to some reference level (either  
dBm or dBV in this case) and PO is the logarithmic intercept,  
expressed in decibels relative to the same reference level.  
V UP  
VSET  
FLTR  
COMM  
C
F
For example, at an input level of –40 dBV (–27 dBm), the  
output voltage will be  
Figure 30. Basic Connections for Operation in Controller  
Mode  
V
OUT = 0.020 V/dB × (–40 dBV – (–63 dBV )) = 0.46 V  
dBV vs. dBm  
POWER  
The most widely used convention in RF systems is to specify power  
in dBm, that is, decibels above 1 mW in 50 . Specification of  
log amp input levels in terms of power is strictly a concession to  
popular convention; they do not respond to power (tacitly “power  
absorbed at the input”), but to the input voltage. The use of dBV,  
defined as decibels with respect to a 1 V rms sine wave, is more pre-  
cise, although this is still not unambiguous because waveform is  
also involved in the response of a log amp, which, for a complex  
input (such as a CDMA signal), will not follow the rms value  
exactly. Since most users specify RF signals in terms of power—  
more specifically, in dBm/50 —we use both dBV and dBm in  
specifying the performance of the AD8314, showing equivalent  
dBm levels for the special case of a 50 environment. Values in  
dBV are converted to dBm re 50 by adding 13.  
AMPLIFIER  
RF INPUT  
DIRECTIONAL  
COUPLER  
GAIN  
C
F
CONTROL  
VOLTAGE  
V UP V DN  
VSET  
DAC  
FLTR  
AD8314  
RFIN  
52.3⍀  
Figure 31. Typical Controller Mode Application  
REV. 0  
–10–  

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