APPLICATIONS INFOR
參數(shù)資料
型號(hào): LTC1066-1CSW#TRPBF
廠商: Linear Technology
文件頁數(shù): 2/20頁
文件大?。?/td> 0K
描述: IC FILTR 8TH ORDR LOWPASS 18SOIC
標(biāo)準(zhǔn)包裝: 1,000
濾波器類型: 貝塞爾,低通開關(guān)電容器
頻率 - 截止或中心: 50kHz
濾波器數(shù): 1
濾波器階數(shù): 8th
電源電壓: 4.75 V ~ 16 V,±2.375 V ~ 8 V
安裝類型: 表面貼裝
封裝/外殼: 18-SOIC(0.295",7.50mm 寬)
供應(yīng)商設(shè)備封裝: 18-SOIC
包裝: 帶卷 (TR)
LTC1066-1
10
10661fa
APPLICATIONS INFORMATION
WU
U
DC PERFORMANCE
The DC performance of the LTC1066-1 is dictated by the
DC characteristics of the input precision op amp.
1. DC input voltages in the vicinity of the filter’s half of the
total power supply are processed with exactly 0dB (or
1V/ V) of gain.
2. The typical DC input voltage ranges are equal to:
VIN = ±5.8V, VS = ±7.5V
VIN = ±3.6V, VS = ±5V
VIN = ±1.4V, VS = ±2.5V
With an input DC voltage range of VIN = ±5V, (VS =
±7.5V), the measured CMRR was 100dB. Figure 1
shows the DC gain linearity of the filter exceeding the
requirements of a 14-bit, 10V full scale system.
3. The filter output DC offset VOS(OUT) is measured with the
input grounded and with dual power supplies. The
VOS(OUT) is typically ±0.1mV and it is optimized for the
filter connection shown in the test circuit figure. The
filter output offset is equal to:
VOS(OUT) = VOS (op amp A) –IBIAS × RF = 0.1mV (Typ)
4. The VOS(OUT) temperature drift is typically 7V/°C
(TA > 25°C), and – 7V/°C (TA < 25°C).
5. The VOS(OUT) temperature drift can be improved by
using an input resistor RIN equal to the feedback resis-
tor RF, however, the absolute value of VOS(OUT) will
increase. For instance, if a 20k resistor is added in series
with pin 3 (see Test Circuit), the output VOS drift will be
improved by 2
V/°C to 3V/°C, however, the VOS(OUT)
may increase by 1mV(MAX).
6. The filter DC output offset voltage VOS(OUT) is indepen-
dent from the filter clock frequency (fCLK ≤ 250kHz).
Figures 2 and 3 show the VOS(OUT) variation for three
different power supplies and for clock frequencies up to
5MHz. Both figures were traced with the LTC1066-1
soldered into the PC board. Power supply decoupling is
very important, especially with
±7.5V supplies. If nec-
essary connect a small resistor (20
) between pins 5
and 18, and between pins 10 and 4, to isolate the
precision op amp supply pin from the switched
capacitor network supply (see the Test Circuit).
INPUT VOLTAGE (VDC)
–6 –5
–3
–1
1
3
5
V
IN
V
OUT
(
V)
75
50
25
0
–25
–50
–75
–100
–125
2
1066-1 F01
–4
–2
0
46
VS = ±7.5V
TA = 25°C
fCLK = 1MHz
fC = 20kHz
Figure 1. DC Gain Linearity
CLOCK FREQUENCY (MHz)
0
0.5
1.5
2.5
3.5
4.5
FILTER
OUTPUT
OFFSET
VOLTAGE
CHANGE
(mV)
0.2
0
–0.2
–0.4
–0.6
–0.8
–1.0
–1.2
4.0
1066-1 F03
1.0
2.0
3.0
5.0
VS = ±2.5V
VS = ±5V
VS = ±7.5V
TA = 25°C
fCLK/fC = 50:1
CLOCK FREQUENCY (MHz)
0
0.5
1.5
2.5
3.5
4.5
FILTER
OUTPUT
OFFSET
VOLTAGE
CHANGE
(mV)
0.2
0.1
0
–0.1
–0.2
–0.3
–0.4
–0.5
–0.6
–0.7
–0.8
4.0
1066-1 F02
1.0
2.0
3.0
5.0
VS = ±2.5V
VS = ±5V
VS = ±7.5V
LINEAR PHASE
TA = 25°C
fCLK/fC = 100:1
Figure 2. Output Offset Change vs Clock
(Relative to Offset for fCLK = 250kHz)
Figure 3. Output Offset Change vs Clock
(Relative to Offset for fCLK = 250kHz)
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