參數(shù)資料
型號(hào): MCP654-E/ST
廠商: Microchip Technology
文件頁(yè)數(shù): 20/66頁(yè)
文件大?。?/td> 0K
描述: IC OP AMP 50MHZ 14 TTSOP
標(biāo)準(zhǔn)包裝: 96
系列: mCal 技術(shù)
放大器類(lèi)型: 通用
電路數(shù): 4
輸出類(lèi)型: 滿(mǎn)擺幅
轉(zhuǎn)換速率: 30 V/µs
增益帶寬積: 50MHz
電流 - 輸入偏壓: 6pA
電壓 - 輸入偏移: 200µV
電流 - 電源: 6mA
電流 - 輸出 / 通道: 150mA
電壓 - 電源,單路/雙路(±): 2.5 V ~ 5.5 V
工作溫度: -40°C ~ 125°C
安裝類(lèi)型: 表面貼裝
封裝/外殼: 14-TSSOP(0.173",4.40mm 寬)
供應(yīng)商設(shè)備封裝: 14-TSSOP
包裝: 管件
2009-2011 Microchip Technology Inc.
DS22146C-page 27
MCP651/1S/2/3/4/5/9
EQUATION 4-7:
The maximum ambient to junction temperature rise
(
TJA) and junction temperature (TJ) can be calculated
using the maximum expected package power (PPKG),
ambient temperature (TA) and the package thermal
resistance (
JA) found in Table 1-4:
EQUATION 4-8:
The worst-case power de-rating for the op amps in a
particular package can be easily calculated:
EQUATION 4-9:
Several techniques are available to reduce
TJA for a
given package:
Reduce
JA
- Use another package
- Improve the PCB layout (ground plane, etc.)
- Add heat sinks and air flow
Reduce max(PPKG)
- Increase RL
- Decrease CL
- Limit IOUT using RISO (see Figure 4-9)
- Decrease VDD
4.4
Improving Stability
4.4.1
CAPACITIVE LOADS
Driving large capacitive loads can cause stability
problems for voltage feedback op amps. As the load
capacitance increases, the feedback loop’s phase
margin decreases and the closed-loop bandwidth is
reduced. This produces gain peaking in the frequency
response, with overshoot and ringing in the step
response. See Figure 2-30. A unity gain buffer (G = +1)
is the most sensitive to capacitive loads, though all
gains show the same general behavior.
When driving large capacitive loads with these op
amps (e.g., > 20 pF when G = +1), a small series
resistor at the output (RISO in Figure 4-9) improves the
feedback loop’s phase margin (stability) by making the
output load resistive at higher frequencies. The
bandwidth will be generally lower than the bandwidth
with no capacitive load.
FIGURE 4-9:
Output Resistor, RISO
Stabilizes Large Capacitive Loads.
Figure 4-10 gives recommended RISO values for
different capacitive loads and gains. The x-axis is the
normalized load capacitance (CL/GN), where GN is the
circuit’s noise gain. For non-inverting gains, GN and the
Signal Gain are equal. For inverting gains, GN is
1+|Signal Gain| (e.g., -1 V/V gives GN =+2V/V).
FIGURE 4-10:
Recommended RISO Values
for Capacitive Loads.
After selecting RISO for your circuit, double check the
resulting frequency response peaking and step
response overshoot. Modify RISO’s value until the
response is reasonable. Bench evaluation and
simulations with the MCP651/1S/2/3/4/5/9 SPICE
macro model are helpful.
4.4.2
GAIN PEAKING
Figure 4-11 shows an op amp circuit that represents
non-inverting amplifiers (VM is a DC voltage and VP is
the input) or inverting amplifiers (VP is a DC voltage
and VM is the input). The capacitances CN and CG
represent the total capacitance at the input pins; they
include the op amp’s Common mode input capacitance
(CCM), board parasitic capacitance and any capacitor
placed in parallel.
P
PK G
P
OA
k
1
=
n
=
Where:
n = Number of op amps in package (1 or 2)
T
JA
P
PKGJA
=
T
J
T
A
T
JA
+
=
P
PKG
T
Jmax
T
A
JA
--------------------------
Where:
TJmax = Absolute maximum junction
temperature (°C)
TA = Ambient temperature (°C)
RISO
VOUT
CL
MCP65X
RG
RF
RN
1
10
100
1.E-11
1.E-10
1.E-09
1.E-08
Normalized Capacitance; CL/GN (F)
Re
c
o
m
en
d
ed
R
ISO
(
)
GN = +1
GN +2
10p
100p
1n
10n
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