参数资料
型号: ADUC834BSZ
厂商: Analog Devices Inc
文件页数: 46/80页
文件大小: 0K
描述: IC ADC DUAL16/24BIT W/MCU 52MQFP
产品培训模块: Process Control
标准包装: 1
系列: MicroConverter® ADuC8xx
核心处理器: 8052
芯体尺寸: 8-位
速度: 12.58MHz
连通性: EBI/EMI,I²C,SPI,UART/USART
外围设备: POR,PSM,PWM,温度传感器,WDT
输入/输出数: 34
程序存储器容量: 62KB(62K x 8)
程序存储器类型: 闪存
EEPROM 大小: 4K x 8
RAM 容量: 2.25K x 8
电压 - 电源 (Vcc/Vdd): 2.7 V ~ 5.25 V
数据转换器: A/D 3x16b,4x24b; D/A 1x12b
振荡器型: 内部
工作温度: -40°C ~ 125°C
封装/外壳: 52-QFP
包装: 托盘
产品目录页面: 738 (CN2011-ZH PDF)
REV. A
–50–
ADuC834
P1.2 to P1.7
The remaining Port 1 pins (P1.2–P1.7) can only be configured as
analog input (ADC) or digital input pins. By (power-on) default,
these pins are configured as analog inputs, i.e., ‘1’ written in the
corresponding Port 1 register bit. To configure any of these pins
as digital inputs, the user should write a ‘0’ to these port bits to
configure the corresponding pin as a high impedance digital
input. Figure 39 illustrates this function. Note that there are no
output drivers for Port 1 pins, and they therefore cannot be
used as outputs.
READ
LATCH
INTERNAL
BUS
WRITE
TO LATCH
READ
PIN
D
CL
Q
LATCH
P1.x
PIN
TO ADC
Figure 39. P1.2 to P1.7 Bit Latch and I/O Buffer
Port 2
Port 2 is a bidirectional port with internal pull-up resistors directly
controlled via the P2 SFR. Port 2 also emits the high order
address bytes during fetches from external program memory
and middle and high order address bytes during accesses to the
24-bit external data memory space.
As shown in Figure 40, the output drivers of Ports 2 are switch-
able to an internal ADDR bus by an internal CONTROL signal
for use in external memory accesses (as for Port 0). In external
memory addressing mode (CONTROL = 1), the port pins
feature push/pull operation controlled by the internal address
bus (ADDR line). However unlike the P0 SFR during external
memory accesses, the P2 SFR remains unchanged.
In general-purpose I/O port mode, Port 2 pins that have 1s written
to them are pulled high by the internal pull-ups (Figure 38) and,
in that state, they can be used as inputs. As inputs, Port 2 pins
being pulled externally low will source current because of the
internal pull-up resistors. Port 2 pins with 0s written to them
will drive a logic low output voltage (VOL) and will be capable
of sinking 1.6 mA.
CONTROL
READ
LATCH
INTERNAL
BUS
WRITE
TO LATCH
READ
PIN
D
CL
Q
LATCH
DVDD
ADDR
P2.x
PIN
DVDD
INTERNAL
PULL-UP*
*SEE FIGURE 38 FOR
DETAILS OF INTERNAL PULL-UP
Figure 40. Port 2 Bit Latch and I/O Buffer
Port 3
Port 3 is a bidirectional port with internal pull-ups directly
controlled via the P3 SFR.
Port 3 pins that have 1s written to them are pulled high by the
internal pull-ups and in that state they can be used as inputs. As
inputs, Port 3 pins being pulled externally low will source current
because of the internal pull-ups. Port 3 pins with 0s written to
them will drive a logic low output voltage (VOL) and will be
capable of sinking 1.6 mA.
Port 3 pins also have various secondary functions described in
Table XXV. The alternate functions of Port 3 pins can only be
activated if the corresponding bit latch in the P3 SFR contains a 1.
Otherwise, the port pin is stuck at 0.
Table XXV. Port 3, Alternate Pin Functions
Pin
Alternate Function
P3.0
RxD (UART Input Pin)
(or Serial Data I/O in Mode 0)
P3.1
TxD (UART Output Pin)
(or Serial Clock Output in Mode 0)
P3.2
INT0 (External Interrupt 0)
P3.3
INT1 (External Interrupt 1)
P3.4
T0 (Timer/Counter 0 External Input)
PWMCLK (PWM External Clock)
P3.5
T1 (Timer/Counter 1 External Input)
P3.6
WR (External Data Memory Write Strobe)
P3.7
RD (External Data Memory Read Strobe)
Port 3 pins have the same bit latch and I/O buffer configurations
as the P1.0 and P1.1 as shown in Figure 41. The internal pull-up
configuration is also defined by that in Figure 38.
READ
LATCH
INTERNAL
BUS
WRITE
TO LATCH
READ
PIN
D
CL
Q
LATCH
DVDD
P3.x
PIN
INTERNAL
PULL-UP*
*SEE FIGURE 38
FOR DETAILS OF
INTERNAL PULL-UP
ALTERNATE
OUTPUT
FUNCTION
ALTERNATE
INPUT
FUNCTION
Figure 41. Port 3 Bit Latch and I/O Buffer
Additional Digital I/O
In addition to the port pins, the dedicated SPI/I
2C pins (SCLOCK
and SDATA/MOSI) also feature both input and output functions.
Their equivalent I/O architectures are illustrated in Figure 42
and Figure 44, respectively, for SPI operation and in Figure 43
and Figure 45 for I
2C operation.
Notice that in I
2C mode (SPE = 0), the strong pull-up FET
(Q1) is disabled leaving only a weak pull-up (Q2) present. By
contrast, in SPI mode (SPE = 1), the strong pull-up FET (Q1)
is controlled directly by SPI hardware, giving the pin push/pull
capability.
In I
2C mode (SPE = 0), two pull-down FETs (Q3 and Q4)
operate in parallel in order to provide an extra 60% or 70% of
current sinking capability. In SPI mode, however, (SPE = 1), only
one of the pull-down FETs (Q3) operates on each pin resulting
in sink capabilities identical to that of Port 0 and Port 2 pins.
On the input path of SCLOCK, notice that a Schmitt trigger
conditions the signal going to the SPI hardware to prevent false
triggers (double triggers) on slow incoming edges. For incoming
signals from the SCLOCK and SDATA pins going to I
2C hard-
ware, a filter conditions the signals in order to reject glitches of
up to 50 ns in duration.
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