參數(shù)資料
型號(hào): 74LVC4245A
廠商: NXP Semiconductors N.V.
元件分類: 模擬專用變換器
英文描述: 3-state,Octal dual supply translating transceiver
中文描述: 3態(tài),八路雙電源轉(zhuǎn)換收發(fā)器
文件頁數(shù): 2/16頁
文件大小: 90K
代理商: 74LVC4245A
1999 Jun 15
2
Philips Semiconductors
Product specification
Octal dual supply translating transceiver; 3-state
74LVC4245A
FEATURES
In accordance with JEDEC
standard no. 8-1A
Wide supply voltage range:
3 V port: 1.5 to 3.6 V
5 V port: 1.5 to 5.5 V
CMOS low power consumption
Direct interface with TTL levels
Control inputs accept voltages up
to 5.5 V.
DESCRIPTION
The 74LVC4245A is a high-performance, low-power, low-voltage, Si-gate
CMOS device, superior to most advanced CMOS compatible TTL families.
The 74LVC4245A is an octal dual supply translating transceiver featuring
non-inverting 3-state bus compatible outputs in both send and receive
directions. It is designed to interface between a 3 and 5 V bus in a mixed 3/5 V
supply environment.
The 74LVC4245A features an output enable (OE) input for easy cascading and
a send/receive (DIR) input for direction control. (OE) controls the outputs so
that the buses are effectively isolated.
In suspend mode, when V
CCA
is zero, there will be no current flow from one
supply to the other supply. The A-outputs must be set 3-state and the voltage
on the A-bus must be smaller than V
diode
(typ. 0.7 V). V
CCA
V
CCB
(except in
suspend mode).
QUICK REFERENCE DATA
GND = 0 V; T
amb
= 25
°
C; t
r
= t
f
2.5 ns.
Note
1.
C
PD
is used to determine the dynamic power dissipation (P
D
in
μ
W).
P
D
= C
PD
×
V
CC2
×
f
i
+
Σ
(C
L
×
V
CC2
×
f
o
) where:
f
i
= input frequency in MHz;
f
o
= output frequency in MHz;
C
L
= output load capacitance in pF;
V
CC
= supply voltage in Volts;
Σ
(C
L
×
V
CC2
×
f
o
) = sum of the outputs.
SYMBOL
PARAMETER
CONDITIONS
TYPICAL
UNIT
t
PHL
/t
PLH
propagation delay
A
n
to B
n
B
n
to A
n
input/output capacitance
A port
A
n
to B
n
B
n
to A
n
B port
A
n
to B
n
B
n
to A
n
C
L
= 50 pF
V
CCA
= 5.0 V
V
CCB
= 3.3 V
4.0
4.0
10.0
ns
ns
pF
C
I/O
C
PDA
V
I
= GND to V
CC
; note 1
V
I
= GND to V
CC
; note 1
7.8
27.9
pF
pF
C
PDB
V
I
= GND to V
CC
; note 1
V
I
= GND to V
CC
; note 1
26
10.4
pF
pF
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