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MC.pdf
1 mA, down from V 1.60 2.1 CC V Voh, –50 mA, down from V CC 1.75 2.2 Over operating range V Vol, 1 mA 0.05 0.4 Vol, 50 mA 0.36 0.8 Rise/fall time 10% to 90% slew time, into 1 nF 50 ns High-Side Drivers Vol, 1 mA 0.1 0.4 Over operating range V Vol, 50 mA 1.0 1.8 Leakage current Output voltage = 50 V 25 µA Fall time 10% to 90% slew time, 50 mA load 50 ns Oscillator 40 50 60 Frequency kHz Over operating range 35 65 Reference 4.9 5.0 5.1 Output voltage V Over operating range 4.7 5.0 5.3 Load regulation 0 mA to –20 mA load -40 -5 mV Line regulation
in „Ansteuerung BrusslessDC Motor mit MSP430“ · Mikrocontroller und Digitale Elektronik ·
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rej03c0067_r1lp0408c.pdf
ISB1 16 µA 2 to +40°C ISB1 1.0* 10 µA 1 to +25°C ISB1 0.8* 10 µA Output low voltage V 0.4 V I = 2.1 mA OL OL Output high voltage V OH 2.4 V OH = −1.0 mA V OH2 2.6 V OH = −0.1 mA Notes: 1. Typical values
in „atmega mit ext. sram“ · Mikrocontroller und Digitale Elektronik ·
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TIC226.pdf
TC01AE 1000 1000 V VAA= ± 12 V Vsupply GTM VAA= ± 12 V supply I = 0 + + + G + - - InitiatinTM= 100 mA A 100 A - - m - - + t t 100 e e r r u C g 10 g i i l c o a - - 10 IH IL 1 0·1 1 -60 -40 -20 0 20 40 60 80 100 120 -60 -40 -20 0 20 40 60 80 100 120 T - Case Temperature - °C T - Case Temperature - °C
in „Blitzröhre zünden, Optotriac statt Triac möglich?“ · Analoge Elektronik und Schaltungstechnik ·
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2030238.pdf
V). Symbol Parameter Conditions 25 C 40 C to +85 C 40 C to +125 C Unit Min Typ Max Min Max Min Max 74HC573 V IH HIGH-level V CC = 2.0 V 1.5 1.2 - 1.5 - 1.5 - V input voltage V = 4.5 V 3.15 2.4 - 3.15 - 3.15 - V CC V CC = 6.0 V 4.2 3.2
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AXP202_PMU.pdf
Value 7-6 Startup time setting 00: 128mS; 01: 3S; 10: 1S; 11: RW 01 2S. 5-4 Long-press time setting 00: 1S; 01: 1.5S;10: 2S; 11: 2.5S. RW 01 3 Automatic shutdown setting when the key press-time exceeds the RW 1 shutdown time 0: disable; 1: enable 2 PWROK signal delay after the power startup RW 1 0:8mS; 1:64mS 1-0 Shutdown time setting 00: 4S; 01: 6S; 10: 8S; 11: 10S. RW 01 VQ.QW WPPIQPWE CC Confidential Page 37/48 www.x-powers.com AXP202 Single Cell Li-Battery PWM Charger and Power System Management
in „LilyGo T-Watch 2020 v1 Micropython“ · Mikrocontroller und Digitale Elektronik ·
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K5011627391.pdf
TA- VCC 9 48 TA- TB2 9 40 TA+ TD3 10 47 TA+ TB3 10 39 TB- TB2 11 46 TB- GND 11 38 TB+ TB3 12 45 TB+ TB4 12 37 LVDS VCC GND 13 44 LVDS VCC TB5 13 36 LVDS GND TB4 14 43 LVDS GND R/F 14 35 15 42 15 34 TC- TB5 16 41 TC- TB6 16 33 TC+ TD4 17 40 TC+ TC0 17 32 TCLK- R/F TCLK- GND TCLK+ TD5 18 39 TCLK+ TC1 18 31 LVDS GND TB6 19 38 TD- TC2 19 30 PLL GND TC0 20 37 TD+ TC3 20 29 PLL VCC GND 21 36 LVDS GND VCC 21 28 PLL GND TC1 22 35 PLL GND
in „Handydummy (Attrappe)mit richtigem Display 10Zoll - u.a.Motorola Xoom“ · Mikrocontroller und Digitale Elektronik ·
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mcp6004.pdf
18% y s 1225 Samples s c 16% VCM= VSS n n T = -40°C to +125°C D e 14% A e u 12% g z c l H O 10% o / 100 f V V o 8% s ( g o t 6% N e 4% u r p e 2% I Eni 6.1 µVP-P f = 0.1 to 10 Hz P 10 1.E-01 1.E+00 1.E+01 1.
in „Nichtinvertierender Operationsverstärker“ · Analoge Elektronik und Schaltungstechnik ·
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ILQ621GB.pdf
Insulation resistance VIO= 500 V 1012 Ω Channel to channel insulation 500 VAC ILD621 IF= 8.0 mA,CE = 2.4 mA VCEsat 0.4 V ILQ621 Collector emitter saturation voltage ILD621GB IF= 1.0 mA,CE = 0.2 mA VCEsat 0.4 V ILQ621GB Note T = 25 °C, unless otherwise specified. Minimum and maximum values are testing requirements
in „Konstantstrom über Optokoppler treiben“ · Analoge Elektronik und Schaltungstechnik ·
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PCF8574AN.pdf
voltage 0.7 × CC VCC + 0.5 V VIL Low-level input voltage −0.5 0.3 × CC V OH High-level output current −1 mA OL Low-level output current 25 mA T Operating free-air temperature −40 85 °C A 4 POST OFFICE BOX 655•DALLAS, TEXAS 75265 SCPS069C − JULY 2001 − REVISED MAY 2004 electrical characteristics over recommended
in „Adresse PCF8574“ · Mikrocontroller und Digitale Elektronik ·
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PCA9531_5-181573.pdf
configuration for SO16 Fig 3. Pin configuration for TSSOP16 D A terminal 1 1 0 D D index area A A V S 6 5 4 3 1 1 1 1 A2 1 12 SCL LED0 2 11 RESET PCA9531BS LED1 3 10 LED7 LED2 4 9 LED6 5 6 7 8 3 S 4 5 D S D D 002aac520 L V L L Transparent top view Fig 4. Pin configuration for HVQFN16 5.2 Pin description
in „[V] 3St. SMD 8-bit I2C LED Treiber NXP PCA9531D (SO16)“ · Markt ·
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BF998.pdf
N-channel dual-gate MOS-FETs BF998; BF998R MGE812 MGE810 handbook, halfpage handbook, halfpage |yfs VG2-S = 4 V C os (pF) (mS) 24 1.4 3 V 18 1.3 2 V 12 1.2 12 mA 6 1 V 1.1 10 mA 8 mA 0 V 0 1.0 −1 0 V (V) 1 4 6 8 10 12 14 G1 V DS (V) V DS= 8 V; Tamb= 25 C. VG2-S= 4 V; f = 1 MHz; amb= 25 C. Fig.9 Forward
in „Schaltung mit BF998“ · Analoge Elektronik und Schaltungstechnik ·
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01149c.pdf
Operation 1 with Thermal Regulation VAC V • Selectable USB-Port Charge Current: USB 2 V THE - 100 mA maximum (Logic Low) / 500 mA Port USB C IN2 RLED1 3 maximum (Logic High) STAT1 V • Programmable AC-Adapter Charge Current: RLED2 Ac-adapter 4 STAT2 PRO - 15 mA - 1000 mA RLED3 • Two Charge Status Outputs
in „Frage zu AN1149 - Load Sharing Microchip“ · Analoge Elektronik und Schaltungstechnik ·
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Mitsubishi__PM50CL1B120_e.pdf
SWITCHING TIME (tc (o, t(of) CHARACTERISTICS (TYPICAL) (TYPICAL) 1 1 10 V CC= 600V 10 V CC= 600V 7 s 7 s 5 V D= 15V ( 5 V D= 15V ( 4 Tj= 25°C f 4 Tj= 25°C o 3 Tj= 125°C c 3 Tj= 125°C , Inductive load ) Inductive load t 2 toff o 2 t E T 100 M 100 tc(off) 7 T 7 N on H 5 N 5 C 4 H 4 I 3 C 3 W 2 I 2 S W
in „Schablone für Wärmeleitpaste: wie Maße?“ · Mikrocontroller und Digitale Elektronik ·
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R3112x_SERIES_Ricoh.pdf
l l p p u0.3 u0.4 S -40°C S -40°C 0 0 0 1 2 3 4 5 6 7 0 1 2 3 4 5 6 7 Input VoltageIN(V) Input VoltageIN(V) 2) Detector Threshold vs. Temperature R3112x091x R3112x131x e e g 0.98 g 1.42 l l V V 1.40 d 0.96 +VDET d s s
in „IC von Tiefentladungsschutz identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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xc164cm_ds_v1.4_2007_03.pdf
-8F20F 85 °C Flash 2 Kbytes DSRAM, SSC0, SSC1, 2 Kbytes PSRAM CAN0, CAN1 SAK-XC164CM-4F40F -40 to 32 Kbytes 2 Kbytes DPRAM, ASC0, ASC1, SAK-XC164CM-4F20F 125 °C Flash 2 Kbytes PSRAM SSC0, SSC1, CAN0, CAN1 SAF-XC164CM-4F40F -40 to 32 Kbytes 2 Kbytes DPRAM, ASC0, ASC1, SAF-XC164CM-4F20F
in „xc164cm16ff und cc770“ · Mikrocontroller und Digitale Elektronik ·
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MRF89XAM8A.pdf
GRM155R71C224KA 0402 12D C3 1 µF Capacitor, Ceramic, 6.3V, ±10%, X5R, SMT Murata GRM188R60J105KA 0603 01D C4 22 pF Capacitor, Ceramic, 50V, ±5%, UHI-Q NP0, Johanson Technology500R07S220JV4 SMT 0402 C5 1.8 pF Capacitor, Ceramic, 50V, ±0.1 pF, UHIJohanson Technology 500R07S1R8BV4 NP0, SMT 0402 C6 — Designator
in „Was darf man von einer PCB-Antenne erwarten?“ · HF, Funk und Felder ·
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philips_chassis_qfu2.1e_la.pdf
N4 13 0 B4 M1-MD0 M1-MA7 DB49 M3 7 DM 3J1N 3J1P 2 1 3 1 M1-MA14 DB34 N8 14 1 C8 M1-MD5 M1-MA8 N9 8 A M1-MA8 100R 100R C3 DB40 M1-MD6 M1-MA9 M4 C4 DB90 M1-DQS1 3J1Y 3J1R BC 2 C9 M1-MD1 M1-MA10 DB52 H8 9
in „Netzteil Philips LED TV reparieren??“ · Analoge Elektronik und Schaltungstechnik ·
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LT1019.pdf
TJMAX 100°CJAθ = 130°C/W(N) T = 150°C, θ = 150°C/W, θ = 45°C/W TJMAX 100°CJAθ = 130°C/W(S) JMAX JA JC ORDER PART ORDER PART S8 NUMBER NUMBER PART MARKING LT1019AMH-10 LT1019ACH-5 LT1019ACN8-4.5 LT1019AMH-2.5 LT1019ACN8-10 1910 LT1019MH-10 LT1019CH-5 LT1019MH-2.5 LT1019CN8-10 LT1019CN8-4.5
in „Referenz Chip LT1019 / Heizung“ · Analoge Elektronik und Schaltungstechnik ·
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tpp30a-d.pdf
Voltage Output Current Efficiency max. nom. (adjustable) max. typ. 20 W 3.3 VDC (2.97 - 3.63 VDC) 6'000 mA 84 % TPP 30-103A-D TPP 30-105A-D 5 VDC (4.5 - 5.5 VDC) 6'000 mA 87 % TPP 30-109A-D 9 VDC (8.1 - 9.9 VDC) 3'340 mA 88 % TPP 30-112A-D 12 VDC (10.8 - 13.2 VDC) 2'500 mA 91 % TPP 30-115A-D 30 W 15 VDC (13.5 - 16.5 VDC) 2'000 mA 91 % TPP 30-124A-D 24 VDC (21.6 - 26.4 VDC) 1'250 mA 90 % TPP 30-136A-D 36 VDC (32.4 - 39.6 VDC) 840 mA 90 % TPP 30-148A-D 48 VDC (43.2 - 52.8 VDC) 630 mA 92 % Page 1 / 5 www.tracopower.com January 7
in „Komponenten für Low Power Fileserver?“ · PC Hard- und Software ·
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Micro_turbo_expander_design_for_small_scale_ORC_Te.pdf
0.35 0.23 0.67 0.48 0.31 exit 2 0 SES36 – P 000.496 [MPa] n s 0.001 Pa- Ma 1 Ma 1= rame- 0.4 Ma 10.6 Ma =1.8 1 ter Ma 2 0.13 0.20 0.27 0.33 Ψ 3.00 3.27 3.65 4.15 ϕ 0.05 0.06 0.08 0.10 rpms 26565 36477 43836 48678 p /p 0.81 0.64 0.46 0.31 2 0 n s 0.002 Ma 2 0.32
in „Luftzerlegung/Luftverflüssigung auf dem Basteltisch machbar?“ · Offtopic ·
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Datasheet_ADC_LTC2287.pdf
PARAMETER CONDITIONS MIN TYP MAX MIN TYP MAX MIN TYP MAX UNITS VDD Analog Supply (Note 9) ● 2.7 3 3.4 2.7 3 3.4 2.7 3 3.4 V Voltage OV DD Output Supply (Note 9) ● 0.5 3 3.6 0.5 3 3.6 0.5 3 3.6 V Voltage IV Supply Current Both ADCs at f ● 133 150 78 95 50 60 mA DD S(MAX) PDISS Power Dissipation Both ADCs
in „Programmieren des LTC2287 Dual 10-Bit ADCs“ · FPGA, VHDL & Co. ·
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AD7680.pdf
wave input ≤ 10 kHz Throughput Rate 100 kSPS See the Serial Interface section POWER REQUIREMENTS V DD 4.5/5.5 V min/V max IDD Digital ISP = 0 V orDD Normal Mode (Static) 5.2 mA max SCLK on or off. DD= 5.5 V Normal Mode (Operational) 4.8 mA max SAMPLE= 100 kSPS. VDD= 5.5 V; 3.3 mA typ Full Power-Down Mode
in „AD7680 (SPI) + STM32F4Discovery“ · Mikrocontroller und Digitale Elektronik ·
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atmel-flash-speicher.pdf
Current CMOS CE = V - 0.3V to V SB1 CC CC CC Ind. 300 µA ISB2 VCC Standby Current TTL CE = 2.0V to VCC 3 mA (1) Com. 30 mA ICC VCC Active Current f = 5 MHz; OUT = 0 mA Ind. 40 mA V IL Input Low Voltage 0.8 V V IH Input High Voltage 2.0 V V OL Output Low Voltage IOL = 2.1 mA 0.45 V V OH1 Output High Voltage
in „Speicher für Messwerte“ · Mikrocontroller und Digitale Elektronik ·
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TP4067.pdf
300 mV VADPT V CC自适应启动电压 V CC从高至低 4.25 4.35 4.45 V PROG 引脚电平上升 ● 3.40 3.50 3.60 V VMSD 手动停机门限电压 PROG 引脚电平下降 ● 1.90 2.00 2.10 V VASD V -V 闭锁门限电压 V CC从低到高 60 100 140 mV CC BAT V CC从高到低 5 30 50 mV R PROG10K ● 9 11 13 mA ITERM C/10 终止电流门限 R PROG2.2K ● 40 50 60 mA VPROG PROG 引脚电压 R PROG10K,电流模式 ● 0.9 1.0 1.1 V ICHRG CHRG 引脚漏电流 V CHRG5V(待机模式) 0 1 μA VCHRG CHRG 引脚输出低电压 ICHRG5mA 0.3 0.6 V 4.35V ΔVRECHRG 再充电电池 4.20V VFLOATVRECHRG 60 80 100 mV 门限电压 3.70V 170
in „LiFePo4 3,2V Ladegerät“ · Analoge Elektronik und Schaltungstechnik ·
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BC337-D.PDF
CEO) 10 1.0 3.0 10 30 100 0.1 1.0 10 100 1000 VCE COLLECTOR-EMITTER VOLTAGE IC, COLLECTOR CURRENT (MA) Figure 2. Active Region − Safe Operating Area Figure 3. DC Current Gain S L 1.0 1.0 V TJ= 25°C TA= 25°C ( VBE(sat) IC B = 10 G 0.8 0.8 T O S VBE(on) VCE = 1 V V L 0.6 E 0.6 ( I E M A - 0.4 IC= 10 mA 100 mA 300 mA 500 mA L 0.4 O O C V E L 0.2 0.2 C V @ I /I = 10 ,E CE(sat) C B VC 0 0 0.01 0.1 1 10 100 1 10 100 1000 IB, BASE CURRENT (mA) C , COLLECTOR CURRENT (mA) Figure 4. Saturation Region Figure 5. “On
in „Grundlagenproblem Transistor?“ · Analoge Elektronik und Schaltungstechnik ·
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NUD4700-D.PDF
100 450 ) 400 m ) 90 ( 350 p N ( E 300 C R N 80 U 250 I C C E 200 P 70 A A K 150 , E d , 100 C 60 S I 50 50 0 0 1 2 3 4 5 −50 −25 0 25 50 75 100 125 150 VOLTS (V) T A, AMBIENT TEMPERATURE (°C) Figure 3. Capacitance vs Voltage Figure 4. Leakage Current vs Temperature 1.4 1.2 ) 1.2 ) 1.1 ( ( E 1 T @ 1.0 mA E 1 A A L L O 0.8 I @ 350 mA O 0.9 V T V T T A 0.6 T 0.8 S S − 0.4 I @ 750 mA N 0.7 O T O T T V 0.2 V 0.6 0 0.5 −50 −25 0 25 50 75 100 125 150 175 0.25 0.35 0.45 0.55 0.65 0.75 0.85 0.95 1.05 TEMPERATURE
in „28 LEDs ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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M27C256B_10f1.pdf
LCC Pin Connections P C VPP 1 28 VCC 7 1 P U C 1 1 A12 2 27 A14 A A V D V A A A7 3 26 A13 1 32 A6 4 25 A8 A6 A8 A5 5 24 A9 A5 A9 A4 A11 A4 6 23 A11 A3 7 22 G A3 NC M27C256B A2 9 M27C256B 25 G A2 8 21 A10 A1 A10 A1 9 20 E A0 10 19 Q7 A0 E NC Q7 Q0 11 18 Q6 Q1 12 17 Q5 Q0 Q6 17 Q2 13 16 Q4 1 2 S U 3
in „M27C256B zu verkaufen“ · Markt ·
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BF245abc.pdf
MHz − 250 − S gos output conductance VDS = 15 V; VGS = 0; f = 200 MHz − 40 − S y forward transfer admittance V = 15 V; V = 0; f = 1 kHz 3 − 6.5 mS fs DS GS VDS = 15 V; VGS = 0; f = 200 MHz − 6 − mS yrs reverse
in „Welche Steilheit hat ein BF245C?“ · Analoge Elektronik und Schaltungstechnik ·
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74HC4052.pdf
CONDITIONS UNIT MIN. TYP. MAX. MIN. TYP. MAX. VCC supply voltage see Figs 7 and 8 VCC − GND 2.0 5.0 10.0 4.5 5.0 5.5 V VCC − VEE 2.0 5.0 10.0 2.0 5.0 10.0 V VI input voltage GND − V CC GND − VCC V V switch voltage V − V V − V V S EE CC EE CC Tamb operating ambient see DC and AC −40 +25 +85 −40 +25 +85 °C
in „Audiosignale mischen bzw. mehrere Töne überlagern“ · Analoge Elektronik und Schaltungstechnik ·
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74ABT573A_philips_Latch_3_state.pdf
current VCC = 5.5V; VO= 5.5V; V I GND or V CC 5.0 50 50 A 1 IO Output current VCC = 5.5V; VO= 2.5V –40 –180 –40 –180 mA CCH VCC = 5.5V; Outputs High, I = GND or VCC 100 250 250 A CCL Quiescent supply current VCC = 5.5V; Outputs Low, VI= GND or V CC 24 30 30 mA VCC = 5.5V; Outputs 3-State; CCZ VI= GND
in „Latch, aber welches?“ · Mikrocontroller und Digitale Elektronik ·
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EP92A2E-Explore.pdf
V0.1 2.2 Pin Diagram y l _ T 2 1 D S C K I 1 E X _ _ D D D _ _ _ R S + - D + - S + - D + - S n I I I M S VD V P V X E I I I I R R R C A T T A T T A T T A T T A o 6 5 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 8 7 6 5 9 9 9 9 9
in „HDMI-Audio, wie funktioniert es?“ · Mikrocontroller und Digitale Elektronik ·
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PCA9532-1127723.pdf
output current V = 0.4 V OL OL VDD = 2.3 V [3]9 - - mA VDD = 3.0 V [3]12 - - mA [3] VDD = 5.0 V 15 - - mA VOL = 0.7 V V = 2.3 V [3]15 - - mA DD VDD = 3.0 V [3]20 - - mA VDD = 5.0 V [3]25 - - mA ILI input leakage current VDD
in „[V] 3St. 16 Bit I2C/SM Bus LED Treiber PCA9532BS (HVQFN24)“ · Markt ·
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w2465a.pdf
- +10 μA Current CS1 = V IHor CS2 = V IL or OE = VIH orWE = VIL Output Low Voltage V OL IOL= +8.0 mA - - 0.4 V Output High Voltage V OH IOH = -4.0 mA 2.4 - - V Operating Power IDD CS1 = V IL 12 - - 180 mA Supply Current CS2 = V IH I/O = 0 mA 15 - - 150 mA Cycle = MIN Duty = 100% 20 - - 120 mA Standby
in „Welches SRAM für M16C?“ · Mikrocontroller und Digitale Elektronik ·
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tsa5511.pdf
SYMBOL PARAMETER MIN. TYP. MAX. UNIT V positive supply voltage − 5 − V CC CC supply current − 35 − mA f frequency range 64 − 1300 MHz VI input voltage level 80 MHz to 150 MHz 12 − 300 mV 150 MHz to 1 GHz 9 − 300 mV 1 GHz to 1.3 GHz 40 − 300 mV f crystal oscillator frequency 3.2 4.0 4.48 MHz XTAL O open-collector
in „PLL mit TSA5511“ · Mikrocontroller und Digitale Elektronik ·
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AD8132.pdf
SmallSignalFrequencyResponsevs.R F(SeeFigure57) Rev. I | Page 12 of 32 AD8132 25 –30 R = 800Ω G = +10, R = 4.99kΩ L, dm HD3 (VS= +5V) 20 F –40 VO, dm= 2V p-p G = +5, F = 2.49kΩ –50 15 c HD2 (V = ±5V) B S ) 10 (–60 B G = +2, F = 1kΩ N ( I HD3 (V = ±5V) I 5 T–70 S A R G G = +1, F = 499Ω T HD2 (V S +5V) 0 I –80
in „Schutzbeschaltung für ADC“ · Mikrocontroller und Digitale Elektronik ·
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DOKUMENTATION_MSP430-F2013.pdf
= 0 IREF+ reference buffer disabled 0.25 0.4 (see Note 4) ADC10CLK = 5.0 MHz I: -40-85C ADC10ON = 0, REF2_5V = 1, T: -40-105C 3 V mA REFON = 1, REFOUT = 0 ADC10CLK = 5.0 MHz Reference buffer supply ADC10ON = 0, -40-85C 2.2 V/3 V 1.1 1.4 mA current with ADC10SR=0 IREFB,0 RE FO N ,1 RE F2_5V = 0, (see Note 4) REFOUT = 1, 105C 2.2 V/3 V 1.8 mA ADC10SR=0 ADC10CLK = 5.0 MHz ADC10ON = 0, -40-85C 2.2 V/3 V 0.5 0.7 mA Reference buffer supply REFO N = 1, IREFB,1 current with ADC10SR=1 (see Note 4) REF2_5V = 0
in „MSP430 2013 XOUT/XIN ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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datenblatt2.pdf
level, Note 2. 2.0 - V DD V VIL “L” level, Note 2. 0 - 0.8 V Supply current I V = 5V, Note 1. - TBD - mA DD DD (Logic & LCD) Supply current (LCD) 0 Note 1 - TBD - mA Supply voltage VLED03 Forward current 3.8 4.1 4.5 V (LED03 backlight) =10x10=100mA Number of LED chips=2x10=20. Note(1):Thereis toleranceinoptimumLCDdrivingvoltageduringproduction
in „LCD 128x64 Initialisieren“ · Mikrocontroller und Digitale Elektronik ·
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Laborausstattung.pdf
-- - [0000 ... 1999], Iso-Test mit 250 V, 500V oder 1000 V 1 SE-06 AC/DC-Zangenmessgerät --- - 400 mA ... 4 A, 400 mV ... 1000 V, 400 Ohm - 40 MOhm, 40 nF ... 40 uF # Typenbezeichnung Beschreibung I/O F Funktionsbeschreibung 1 Grundig RLC 200 RLC-Messgerät SER - 1 m ... 100 M , 100 nH ... 20 kH, 0,1
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TPS3820-50DBVRQ1G4.pdf
1.001 MR = Open ( I 17 WDI =Open , TA= 25°C A 1 15 ( I V 13 e 0.999 g 11 TPS382x-33-Q1 l V l 0.998 9 o s 7 r T 0.997 u 5 p I 0.996 3 e l a 1 r 0.995 N −40 −15 10 35 60 85 í1 TA − Free-Air Temperature − °C í0.5 0.5 1.5 2.5 3.5 4.5 5.5 6.5 Figure 2. Normalized Input Threshold Voltage vs Free-Air Figure 3.
in „Firmware aus MC9S12 per BDM clonen“ · Fahrzeugelektronik ·
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user.guide.hcmos.pdf
d standard outputs 10 1 2 40 20 50 20 50 50 c bus outputs 15 4 120 60 160 60 120 160 s e fi a o n Philips Semiconductors Product specification User Guide Table 2 Comparison of HCMOS and LSTTL circuits (V CC = 5 V unless stated otherwise
in „Unterschied 74HCxx, 74ACxx, 74LVCxx ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
user.guide.hcmos.pdf
d standard outputs 10 1 2 40 20 50 20 50 50 c bus outputs 15 4 120 60 160 60 120 160 s e fi a o n Philips Semiconductors Product specification User Guide Table 2 Comparison of HCMOS and LSTTL circuits (V CC = 5 V unless stated otherwise
in „74HCT Ausgangsstrom“ · Analoge Elektronik und Schaltungstechnik ·
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Hoa2498_1.pdf
Reflective Sensor Fig. 1 IRED Forward Bias Characteristics Fig. 2 Non-Saturated Switching Time vs gra_073.ds4 Load Resistance gra_079.ds4 100 1000 90 A Pulsed s m 80 - t 70 condition e 100 e 60 T = 80°C i r A t Photodarlington c 50 s r 40 TA= 25°C o a 30 s 10 r e F 20 T A -40°C R Phototransistor 10 0 1 0.8 1.0
in „HOA2498_001 reflective sensor zu verschenken“ · Mikrocontroller und Digitale Elektronik ·
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Hoa2498_1.pdf
Reflective Sensor Fig. 1 IRED Forward Bias Characteristics Fig. 2 Non-Saturated Switching Time vs gra_073.ds4 Load Resistance gra_079.ds4 100 1000 90 A Pulsed s m 80 - t 70 condition e 100 e 60 T = 80°C i r A t Photodarlington c 50 s r 40 TA= 25°C o a 30 s 10 r e F 20 T A -40°C R Phototransistor 10 0 1 0.8 1.0
in „EEproms 24C32 zu verschenken“ · Mikrocontroller und Digitale Elektronik ·
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adc101s051-q1_1_.pdf
See (3) 4 MHz (min) SCLK 10 MHz (max) 200 ksps (min) S Sample Rate See (3) 500 ksps (max) DC SCLK Duty Cycle f = 10 MHz 50 40 % (min) SCLK 60 % (max) ACQ Minimum Time Required for Acquisition 350 ns (max) (4)
in „Ausgangsstrom MISO ADC“ · Mikrocontroller und Digitale Elektronik ·
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LCD_DEM16216.pdf
3.0 mA 1x20, 2x20DMM V = 0V min - 2.5 4.0 mA 0 4x20, 2x40DMM Input voltage V IL 0 - 0.6 V V VIH 2.0 - DD V Output voltage V I = 1.6 mA - - 0.4 V OL OL VOH IOH= 0.2 mA 2.4 - - V LED Lightpipe Current 1x8, 1x16, 2x15DMM LED L+ L- = 5V 20 60 mA 2x20DMM 40 80 mA LED Lightbox Current 1x8, 1x16DMM 40 100 mA 2x16DMM 40 250 mA 1x20, 2x20, 4x20DMM 150 300 mA DRIVE VOLTAGE (Vlcd) IS NOT IDENTICAL FOR LCD Note: 1. Applies to DB0 - DB7, E, RS and R/
in „lcd funkt leider nicht“ · Mikrocontroller und Digitale Elektronik ·
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ULN2003.pdf
for ULN2002, V = 17 V 0.82 1.25 I for ULN2003, V = 3.85 V 0.93 1.35 I Input current (Figure 6.) I mA I(ON) for ULN2004, V = 5 V 0.35 0.5 I V = 12 V 1 1.45 I I Input current (Figure 7.) T = 85°C, I = 500 µA 50 65 µA I(OFF) A C V = 2 V, for ULN2002 CE IC = 300 mA 13 for ULN2003 IC= 200 mA 2.4 I = 250
in „1500V 8A mit MOSFET schalten“ · Analoge Elektronik und Schaltungstechnik ·
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BC639_BCP56_BCX56.pdf
Semiconductors BC639; BCP56; BCX56 80 V, 1 A NPN medium power transistors 8. Package outline 0.45 4.2 0.45 4.2 0.38 3.6 0.38 3.6 0.48 0.40 3 max 0.48 1 0.40 1 2 2 4.8 5.08 4.8 2.54 4.4 4.4 3 1.27 2.54 3 5.2 14.5 5.2 14.5 5.0 12.7 5.0 12.7 Dimensions in mm 04-11-16 Dimensions in mm 04-06-28 Fig 14.
in „Alternative BC327 und 337“ · Analoge Elektronik und Schaltungstechnik ·
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lm393-n.pdf
.1 kΩ (4) 1.3 μs Output Sink Current V IN)=1V, V IN)=0, V ≈O.5 V 6.0 16 mA Saturation Voltage V IN)=1V, V IN)=0, I SINK≤4 mA 250 400 mV Output Leakage Current V IN)=0, V IN)=1V, V =O V 0.1 nA + + (1) At output
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MAX481_422.pdf
7 and 9L C = 15pF, S1 closed 40 70 ns 4 Driver Disable Time from High HZ Figures 7 and 9L C = 15pF, S2 closed 40 70 ns 9 Figures 6 and 10,AX481, MAX485, MAX1487 20 90 200 1 Receiver Input to Output PLH PHL RDIFF= 54Ω, MAX490C
in „Problem mit MAX481 Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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MAX485.pdf
7 and 9L C = 15pF, S1 closed 40 70 ns 4 Driver Disable Time from High HZ Figures 7 and 9L C = 15pF, S2 closed 40 70 ns 9 Figures 6 and 10,AX481, MAX485, MAX1487 20 90 200 1 Receiver Input to Output PLH PHL RDIFF= 54Ω, MAX490C
in „STM32 UART Kommunikation -> Langsamer uC Tod“ · Mikrocontroller und Digitale Elektronik ·