參數(shù)資料
型號: 38C1
廠商: Mitsubishi Electric Corporation
英文描述: DIODE ZENER SINGLE 200mW 24Vz 0.05mA-Izt 0.05 0.05uA-Ir 18.2 SOD-323 3K/REEL
中文描述: 單芯片8位CMOS微機
文件頁數(shù): 44/59頁
文件大?。?/td> 1063K
代理商: 38C1
SINGLE-CHIP 8-BIT CMOS MICROCOMPUTER
MITSUBISHI MICROCOMPUTERS
38C1 Group
44
(3) Oscillator concerns
In order to obtain the stabilized operation clock on the user system
and its condition, contact the oscillator manufacturer and select
the oscillator and oscillation circuit constants. Be careful espe-
cially when range of voltage or/and temperature is wide.
Also, take care to prevent an oscillator that generates clocks for a
microcomputer operation from being affected by other signals.
Keeping oscillator away from large current signal lines
Install a microcomputer (and especially an oscillator) as far as
possible from signal lines where a current larger than the toler-
ance of current value flows.
G
Reason
In the system using a microcomputer, there are signal lines for
controlling motors, LEDs, and thermal heads or others. When a
large current flows through those signal lines, strong noise oc-
curs because of mutual inductance.
Installing oscillator away from signal lines where potential levels
change frequently
Install an oscillator and a connecting pattern of an oscillator
away from signal lines where potential levels change frequently.
Also, do not cross such signal lines over the clock lines or the
signal lines which are sensitive to noise.
G
Reason
Signal lines where potential levels change frequently (such as
the CNTR pin signal line) may affect other lines at signal rising
edge or falling edge. If such lines cross over a clock line, clock
waveforms may be deformed, which causes a microcomputer
failure or a program runaway.
Keeping oscillator away from large current signal lines
Installing oscillator away from signal lines where potential
levels change frequently
Fig. 48 Wiring for the V
PP
pin of One Time PROM
Fig. 47 Wiring for a large current signal line/
Wiring of signal
lines where potential levels change frequently
X
I
X
O
V
S
N
U
T
S
M
M
i
c
r
o
c
o
m
p
u
t
e
r
Mutual inductance
Large
current
GND
X
I
X
O
V
S
N
U
T
S
C
N
T
R
D
o
n
o
t
c
r
o
s
s
N.G.
(4) Analog input
The analog input pin is connected to the capacitor of a voltage
comparator. Accordingly, sufficient accuracy may not be obtained
by the charge/discharge current at the time of A-D conversion
when the analog signal source of high-impedance is connected to
an analog input pin. In order to obtain the A-D conversion result
stabilized more, please lower the impedance of an analog signal
source, or add the smoothing capacitor to an analog input pin.
(5) Difference of memory type and size
When Mask ROM and PROM version and memory size differ in
one group, actual values such as an electrical characteristics, A-D
conversion accuracy, and the amount of -proof of noise incorrect
operation may differ from the ideal values.
When these products are used switching, perform system evalua-
tion for each product of every after confirming product
specification.
(6) Wiring to V
PP
pin of One Time PROM version
Connect an approximately 5 k
resistor to the V
PP
pin the shortest
possible in series and also to the V
SS
pin.
Note:
Even when a circuit which included an approximately 5 k
resistor is used in the Mask ROM version, the microcom-
puter operates correctly.
G
Reason
The V
PP
pin of the One Time PROM version is the power source
input pin for the built-in PROM. When programming in the built-in
PROM, the impedance of the V
PP
pin is low to allow the electric
current for writing flow into the built-in PROM. Because of this,
noise can enter easily. If noise enters the V
PP
pin, abnormal in-
struction codes or data are read from the built-in PROM, which
may cause a program runaway.
C
N
V
S
S
/
V
P
P
V
SS
About 5k
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