參數(shù)資料
型號(hào): DS80C400-FNY+
廠商: Maxim Integrated Products
文件頁數(shù): 12/97頁
文件大?。?/td> 0K
描述: IC MCU 75MHZ 16MB HP 100-LQFP
產(chǎn)品培訓(xùn)模塊: Lead (SnPb) Finish for COTS
Obsolescence Mitigation Program
標(biāo)準(zhǔn)包裝: 90
系列: 80C
核心處理器: 8051
芯體尺寸: 8-位
速度: 75MHz
連通性: 1 線,CAN,EBI/EMI,以太網(wǎng),SIO,UART/USART
外圍設(shè)備: 電源故障復(fù)位,WDT
輸入/輸出數(shù): 64
程序存儲(chǔ)器容量: 64KB(64K x 8)
程序存儲(chǔ)器類型: ROM
RAM 容量: 1K x 8
電壓 - 電源 (Vcc/Vdd): 1.62 V ~ 3.6 V
振蕩器型: 外部
工作溫度: -40°C ~ 85°C
封裝/外殼: 100-LQFP
包裝: 托盤
配用: DS80C400-KIT#-ND - EVAL KIT FOR DS80C400
其它名稱: DS80C400+FNY
DS80C400+FNY+
DS80C400+FNY+-ND
DS80C400+FNY-ND
DS80C400 Network Microcontroller
2 of 97
ABSOLUTE MAXIMUM RATINGS
Voltage Range on Any Input Pin Relative to Ground……………....………………………………………..-0.5V to +5.5V
Voltage Range on Any Output Pin Relative to Ground……....……………………………………..-0.5V to (VCC3 + 0.5V)
Voltage Range on VCC3 Relative to Ground…………………………………………………………………..-0.5V to +3.6V
Voltage Range on VCC1 Relative to Ground…………………………………………………………………..-0.3V to +2.0V
Operating Temperature Range………………………………………………………………………………..-40°C to +85°C
Junction Temperature……………………………………………………………………………………………..+150°C max
Storage Temperature Range………………………………………………………………………………...-55°C to +160°C
Soldering Temperature………………………………………………………….See IPC/JEDEC J-STD-020 Specification
Stresses beyond those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stress ratings only,
and functional operation of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is
not implied. Exposure to absolute maximum rating conditions for extended periods can affect device reliability.
DC ELECTRICAL CHARACTERISTICS (Note 1)
(VCC3 = 3.0V to 3.6V, VCC1 = 1.8V ±10%, TA = -40°C to +85°C.)
PARAMETER
SYMBOL
MIN
TYP
MAX
UNITS
VCC3
Supply Voltage (VCC3) (Note 2)
VCC3
3.0
3.3
3.6
V
Power-Fail Warning (VCC3) (Note 3)
VPFW3
2.85
3.00
3.15
V
Power-Fail Reset Voltage (VCC3) (Note 3)
VRST3
2.76
2.90
3.05
V
Active Mode Current (VCC3) (Note 4)
ICC3
16
35
mA
Idle Mode Current (VCC3) (Note 4)
IIDLE3
7
15
mA
Stop Mode Current (VCC3) (Not 4)
ISTOP3
1
10
A
Stop Mode Current, Bandgap Enabled (VCC3) (Note 4)
ISPBG3
100
150
A
VCC1
Supply Voltage (VCC1) (Note 2)
VCC1
1.62
1.8
1.98
V
Power-Fail Warning (VCC1) (Note 5)
VPFW1
1.52
1.60
1.68
V
Power-Fail Reset Voltage (VCC1) (Note 5)
VRST1
1.47
1.55
1.63
V
Active Mode Current (VCC1) (Note 4)
ICC1
27
50
mA
Idle Mode Current (VCC1) (Note 4)
IIDLE1
20
40
mA
Stop Mode Current (VCC1) (Note 4)
ISTOP1
0.2
10
mA
Stop Mode Current, Bandgap Enabled (VCC1) (Note 4)
ISPBG1
0.2
10
mA
Input Low Level
VIL1
0.8
V
Input Low Level for XTAL1, RST, OW
VIL2
1.0
V
Input High Level
VIH1
2.0
V
Input High Level for XTAL1, RST, OW
VIH2
2.4
V
Output Low Current for Port 1, 3–7 at VOL = 0.4V
IOL1
6
10
mA
Output Low Current for Port 0, 2, TX_EN, TXD[3:0], MDC, MDIO,
RSTOL
, ALE, PSEN, and Ports 3–7 (when used as any of the following:
A21–A0, WR, RD, CE0-7, PCE0-3) at VOL = 0.4V (Note 6)
IOL2
12
20
mA
Output Low Current for OW, OWSTP at VOL= 0.4V
IOL3
10
16
mA
Output High Current for Port 1, 3–7 at VOH = VCC3 - 0.4V (Note 7)
IOH1
-75
-50
A
Output High Current for Port 1, 3–7 at VOH= VCC3 - 0.4V (Note 8)
IOH2
-8
-4
mA
Output High Current for Port 0, 2, TX_EN, TXD[3:0], MDC, MDIO,
RSTOL
, ALE, PSEN, and Ports 3–7 (when used as any of the following:
A21–A0, WR, RD, CE0-7, PCE0-3) at VOH = VCC3 - 0.4V (Notes 6, 9)
IOH3
-16
-8
mA
Input Low Current for Port 1–7 at 0.4V (Note 10)
IIL
-50
-20
-10
A
Logic 1-to-0 Transition Current for Port 1, 3–7 (Note 11)
ITL
-650
-400
A
Input Leakage Current, Port 0 Bus Mode, VIL = 0.8V (Note 12)
ITH0
20
50
200
A
Input Leakage Current, Port 0 Bus Mode, VIH = 2.0V (Note 12)
ITL0
-200
-50
-20
A
Input Leakage Current, Input Mode (Note 13)
IL
-15
0
15
A
RST Pulldown Resistance
RRST
50
100
200
k
Note 1: Specifications to -40°C are guaranteed by design and not production tested.
Note 2: The user should note that this part is tested and guaranteed to operate down to VCC3 = 3.0V and VCC1 = 1.62V, while the reset
thresholds for those supplies, VRST3 and VRST1 respectively, may be above or below those points. When the reset threshold for a given
supply is greater than the guaranteed minimum operating voltage, that reset threshold should be considered the minimum operating
point since execution ceases once the part enters the reset state. When the reset threshold for a given supply is lower than the
guaranteed minimum operating voltage, there exists a range of voltages for either supply, (VRST3 < VCC3 < 1.62V) or (VRST1 < VCC1 <
3.0V), where the processor’s operation is not guaranteed, and the reset trip point has not been reached. This should not be an issue in
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