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MAX100.pdf
provides a differential 50Ω input that allows easy Single 0 0 10000000 mid scale interface to the MAX100. Ended -270 0 00000000 zero scale Data Flow **An offset V , as specified in the DC electrical parameters, may The MAX100 contains an internal T/H amplifier that be present at the input. Compensate
in „Oszilloskop mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Cosel_LEB100F-512.pdf
0 - 5 0-4 Peak7) 0 - 5 0-3.2 Peak5.6 0 - 5 0-2.7 Peak4.7 TOTAL OUTPUT WATTAGE[W] *3 85 Peak 145 ) 100 Peak 172 ) 100 Peak 172 ) 100 Peak 172 ) 100 Peak 172 ) LINE REGULATION[mV] 20max 48max 20max 96max 20max 96max 20max 120max 20max 144max LOAD REGULATION[mV] 40max 100max 40max 150max 40max 150max 40max
in „Schaltnetzteil Cosel LEB100F-512 Fehlersuche“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX4465-MAX4469.pdf
Isolation MAX4469 only, f = 1kHz 85 dB 4 6 Phase Margin Ø M R L 100kΩ 70 degrees 5 Gain Margin R L 100kΩ 20 dB – MAX4465/MAX4467/ M MAX4469, 45 A Slew Rate SR Output step = 4V A V +1 mV/µs X MAX4466/MAX4468, A =
in „Funktioniert denn kein Mikrofon-Vorverstärker?!?“ · Analoge Elektronik und Schaltungstechnik ·
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MAX639-MAX653.pdf
3.12 Dropout Voltage IOUT = 100mA, L = 100µH 0.5 V IOUT = 100mA, L = 100µH 91 MAX639 IOUT = 25mA, L = 470µH 94 IOUT = 100mA, L = 100µH 87 Efficiency MAX640 % IOUT = 25mA, L = 470µH 91 IOUT = 100mA, L = 100µH 85 MAX653 IOUT = 25mA,
in „Spannung am Ausgang eines Converters anlegen“ · Mikrocontroller und Digitale Elektronik ·
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MAX4249-MAX4257.pdf
= 760nVP-P 0.1 V 0 10 100 1k 10k 100k 1s/div 1k 10k 100k 1M 10M FREQUENCY (Hz) FREQUENCY (Hz) MAX4250–MAX4254 MAX4250–MAX4254 MAX4249/MAX4255/MAX4256/MAX4257 TOTAL HARMONIC DISTORTION PLUS NOISE FFT OF DISTORTION AND NOISE FFT
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MAX4194-MAX4197.pdf
I + X O H MAX4196 E T G = +10V/V 4 A 10 1 L 0.001 V G = +1V/V 9 G = +100V/V MAX4195 G = +1000V/V 7 1 0 1 10 100 1k 10k 100k 1 10 100 1k 10k FREQUENCY (Hz) FREQUENCY (Hz) SUPPLY CURRENT vs. SUPPLY VOLTAGE SUPPLY CURRENT
in „ADC nicht sauber sinus auf oszi“ · Mikrocontroller und Digitale Elektronik ·
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LM_4040.pdf
R = 10 mA ± 20 ppm/˚C Voltage Temperature R = 1 mA ± 15 ±100 ± 100 ppm/˚C (max) Coefficient (Note 6) I = 100 µA ± 15 ppm/˚C R ∆VR/∆IR Reverse Breakdown Voltage RMIN ≤ R ≤ 1 mA 0.6 mV Change with Operating 0.8 0.8 mV (max) Current Change (Note 7) 1.1 1.1 mV (max
in „4,096V Referenzspannung“ · Mikrocontroller und Digitale Elektronik ·
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MAX4210-MAX4211.pdf
V SENSEFull-Scale Voltage MAX421_A/B/D/E 150 VSENSE_FS mV (Note 4) MAX421_C/F 100 IN Full-Scale Voltage MAX421_D/E/F, VSENSE= 10mV to (Note 4) VIN_FS 100mV 1 V IN Input Voltage Range MAX421_D/E/F, VSENSE= 10mV to (Note 5) V IN 100mV
in „Überstromschalter für Fensterheber“ · Mikrocontroller und Digitale Elektronik ·
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MAX9812-MAX9813L.pdf
Internal Low-Noise Microphone Bias Supply shutdown mode that cuts the combined supply and 2.3V for MAX9812L/MAX9813L BIAS currents to only 100nA. 4.0V for MAX9812H/MAX9813H The MAX9812 is a single amplifier in a 6-pin SC70 ♦ 100nA Low-Power Shutdown Mode package (2mm x 2.1mm) and the MAX9813 is a dual
in „Richtiger Anschluss einer Elektretkapsel“ · Analoge Elektronik und Schaltungstechnik ·
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Polyswitch_Sicherung.pdf
0.04) C (AHS080 only) 18 AWG AGR:Radial-Leaded Dimensions (millimeters/inches) Part IH* (A) H *(A) V max. I max. R min. R 1ax. Ramax. A B C number R max. R max. (Vdc) (A) (Ω) (Ω) (Ω) (max.) (max.) (typ.) Fig. 1 a AGR400 4.0 3.0 16 100 0.0186 0.061 0.085 8.9 (0.35) 14.1 (0.56) 5.08 (0.2) 2 AGR500 5.0 4.3
in „Tipps für 24V DC Absicherung gesucht ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
cynetik.c
(100); max7219_hex (16, 1); max7219_hex (1, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (2, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (3, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (4, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (5, 2); max7219_hex (0, 3); long_delay (100); max7219
in „VMLAB: 40 kHz wird nicht erreicht und alle anderen Funktionen werden übersprungen“ · Mikrocontroller und Digitale Elektronik ·
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MAX971-MAX984.pdf
to 100kHz 20 µVRMS Hysteresis Input Voltage Range MAX9_1/MAX982/MAX9_3 REF - 0.05 REF V Response Time (High-to-Low TA= +25°C, 100pF load, Overdrive = 10mV 12 Transition) 1MΩ pullup to V+ Overdrive = 100mV
in „Komparator Aufbau - diskret oder über µC?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
cynetik.c
(100); max7219_hex (16, 1); max7219_hex (1, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (2, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (3, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (4, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (5, 2); max7219_hex (0, 3); long_delay (100); max7219
in „VMLAB: Interrupt-Funktion vom Timer wird nicht aufgerufen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX1480A.pdf
= 100pF 15 40 ns Driver Enable to Output High t Figures 6 and 8, C = 100pF, S2 closed 0.2 1.5 µs (MAX1480A only) ZH L Driver Enable to Output Low tZL Figures 6 and 8,LC = 100pF, S1 closed 0.2 1.5 µs (MAX1480A
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Datei
Cynetik.c
(100); max7219_hex (16, 1); max7219_hex (1, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (2, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (3, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (4, 2); max7219_hex (0, 3); long_delay (100); max7219_hex (16, 1); max7219_hex (5, 2); max7219_hex (0, 3); long_delay (100); max7219
in „AD-Wandler im ATmega8535“ · Mikrocontroller und Digitale Elektronik ·
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PDF
maxim_481_483_491.pdf
100pF, S2 closed 8 Driver Enable from Shutdown totZL(SHDN) MAX483/MAX487, Figures 7 and 9, 2000 ns Output Low CL= 100pF, S1 closed 4 Receiver Enable from Shutdown t MAX483/MAX487,Figures 5 and 11, 2500
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PDF
MAX485.pdf
100pF, S2 closed 8 Driver Enable from Shutdown totZL(SHDN) MAX483/MAX487, Figures 7 and 9, 2000 ns Output Low CL= 100pF, S1 closed 4 Receiver Enable from Shutdown t MAX483/MAX487,Figures 5 and 11, 2500
in „Kommunikation mit PC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX1480A-MAX1490B.pdf
ns = 100pF Driver Enable to Output High tZH Figures 6 and 8, L = 100pF, S2 closed 0.2 1.5 µs (MAX1480A Only) Driver Enable to Output Low ZL Figures 6 and 8, L = 100pF, S1 closed 0.2 1.5 µs (MAX1480A Only) Driver
in „[V] 1St. DS1480ACPI DIL Complete, Isolated RS-485/RS-422 Data Interface“ · Markt ·
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PDF
max1481-max1486.pdf
O L U 4.1 T 102 P0.25 T H U O A S O0.20 4.0 98 X 0.15 3.9 1 94 0.10 3.8 -60 -40 -20 0 20 40 60 80 100 -60 -40 -20 0 20 40 60 80 100 -60 -40 -20 0 20 40 60 80 100 4 8 TEMPERATURE (°C) TEMPERATURE (°C) TEMPERATURE (°C) 6 MAX1481/MAX1485 RECEIVER MAX1484/MAX1486 RECEIVER MAX1481/MAX1485 DRIVER PROPAGATION
in „MODBUS Protokoll MSP430“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX481_422.pdf
/E, MAX491C/E 5 15 25 ns M CL1= CL2= 100pF MAX490M, MAX491M 3 15 40 Driver Enable to Output High ZH Figures 7 and 9L C = 100pF, S2 closed 40 70 ns A Driver Enable to Output Low t Figures 7 and 9, C = 100pF,
in „Problem mit MAX481 Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX485.pdf
/E, MAX491C/E 5 15 25 ns M CL1= CL2= 100pF MAX490M, MAX491M 3 15 40 Driver Enable to Output High ZH Figures 7 and 9L C = 100pF, S2 closed 40 70 ns A Driver Enable to Output Low t Figures 7 and 9, C = 100pF,
in „STM32 UART Kommunikation -> Langsamer uC Tod“ · Mikrocontroller und Digitale Elektronik ·
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PDF
503991-da-01-en-RELAIS_24V_5A_G2R_2.pdf
VDC 43.6 275 170% Bifurcated contact 70% max. 15% min. Approx. 0.53 Quick-connect 24 VDC 21.8 1,100 (at 23°C) Fully sealed 48 VDC 11.5 4,170 100 VDC 5.3 18,860 5 VDC 71.4 70 6 VDC 60 100 170% High-sensitivity 12 VDC 30 400 70% max. 15% min. (at
in „Relais an Atmega, Kontrolle Bauteile“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX3030-MAX3033.pdf
°C U 15 U Y Y Y P 40 P P 1.0 A U TA= 0°C U 10 U S S S X 20 0.5 5 3 0 0 0 0 3 0 1 2 3 4 0.1k 1k 10k 100k 1M 10M 100M 0.1k 1k 10k 100k 1M 10M SUPPLY VOLTAGE (V) DATA RATE (bps) DATA RATE (bps) 3 MAX3030E E MAX3030E/MAX3032E MAX3031E/MAX3033E DRIVER PROPAGATION DELAY SUPPLY CURRENT vs. DATA RATE SUPPLY
in „SPI mit RS485-Übertragung: Problem mit zu langen Propagation-Delays“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX1487-MAX491.pdf
/E, MAX491C/E 5 15 25 ns M CL1= CL2= 100pF MAX490M, MAX491M 3 15 40 Driver Enable to Output High ZH Figures 7 and 9L C = 100pF, S2 closed 40 70 ns A X Driver Enable to Output Low ZL Figures 7 and 9L C = 100pF
in „SPI Recihweite über RS422 (MAX490) erhöhen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX491.pdf
/E, MAX491C/E 5 15 25 ns M CL1= CL2= 100pF MAX490M, MAX491M 3 15 40 Driver Enable to Output High ZH Figures 7 and 9L C = 100pF, S2 closed 40 70 ns A X Driver Enable to Output Low ZL Figures 7 and 9L C = 100pF
in „MAX491 -Defekt??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX4238-MAX4239.pdf
Current To either supply 40 mA Output Leakage Current 0 ≤ OUT ≤ VCC, SHDN = GND (Note 2) 0.01 1 µA MAX4238 0.35 Slew Rate VCC = 5V, L = 100pF, V/µs VOUT = 2V step MAX4239 1.6 MAX4238 1 Gain-Bandwidth Product GBWP RL= 10kΩ, CL= 100pF, MHz measured at f = 100kHz MAX4239 6.5 MAX4238 1 Minimum Stable Closed-Loop
in „Meßverstärker für 1/f-Rauschen 0.1 - 10 Hz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET_Treiber.pdf
Temperature 9 IR2125 500 500 ) ) m400 m 400 d d h h Max. r Max. r T300 T 300 g g o Typ. o Typ. e e i200 i 200 o o Min. t Min. t n n S100 S 100 C C 0 0 -50 -25 0 25 50 75 100 125 10 12 14 16 18 20 Temperature (°C) V BS Floating Supply Voltage (V) Figure 16A
in „MOSFET - Treiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Ferritperlen.pdf
) DSS306-55 Series DSS306-55 Series Fig. 2 Fig. 5 0 220 2.54 max. 8.0 max. 20 330 223 ) 103 7.0 max. d 40 ( 222 o 102 Mounting Hole L 60 471 3 x 0.8D. i 25.0 min. e 80 271 F1 n 151 0.6D. I 101 100 5.0 ± 0.5 2.5 ± 0.2 470 120 221 F1 2.5 ± 0.5 0.1 1 10 100 1000 Frequency
in „24Bit Delta-Sigma ADC-Eingang vor ESD und Überspannung schützen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IR2130.pdf
13B.Turn-On RiseTime vs.Voltage 125 125 100 100 ) ) n n e e i 75 i 75 l l Max. F F f f n 50 n 50 Typ. u Max. u T T Typ. 25 25 0 0 -50 -25 0 25 50 75 100 125 10 12 14 16 18 20 Temperature (°C) VBIASSupply Voltage (V) Figure 14A.Turn-Off Fall Time
in „Wie gross muss C für Ladungspumpe IR2130 sein?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Inverter_MAX660.pdf
0 10 0 -3.0 100 0 A A A 350 M M MAX660 M ) 300 ) -3.4 ICL7660 92 A A V T 250 LV = OUT T 1 E ) E E A -3.8 EFF. 84 ( R R L C C 200 U V I Y LV = GND Y U VOUT I P 150 P T -4.2 76 E U U 0.1 O S 100 S ICL7660 LV = OPEN -4.6 MAX660 68 50 0 0.01 -5.0 60 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 0.1 1 10 100 0 20 40 60 80 100 SUPPLY VOLTAGE (V) OSCILLATOR FREQUENCY (kHz) LOAD CURRENT (mA) OUTPUT VOLTAGE DROP OUTPUT VOLTAGE EFFICIENCY
in „Spannungspeaks / Ripple durch Schaltregler. Abhilfe?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX1674-MAX1676.pdf
LX LBI (MAX1676) (MAX1676) R5 R3 OUT 5.0VUT R4 100k CLSEL LOW- (MAX1676) 0.1µF 47µF MAX1675 LBO BATTERY LBI SHDN MAX1676 OUTPUT R4 100k REF FB MAX1674 LOW- GND MAX1675 LBO BATTERY 0.1µF REF MAX1676 OUTPUT R6 GND
in „MAX1674: LED an LBO“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IR2130.pdf
Figure 13B. Turn-On Rise Time vs. Voltage 125 125 100 100 s s ( ( i 75 i 75 l l Max. F F f f n 50 n 50 Typ. u Max. u T T Typ. 25 25 0 0 -50 -25 0 25 50 75 100 125 10 12 14 16 18 20 Temperature (°C) VBIASSupply Voltage (V) Figure 14A. Turn-Off Fall Time
in „Shunt Messung mit IR2130 (BLDC Steuerung)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX856-Stepup.pdf
MINto TMAX , unless otherwise noted. Typical values areAat T = +25°C.) PARAMETER CONDITIONS MIN TYP MAX UNITS MAX856, 3/5 = 0V, 0mA ILOAD 100mA 4.80 5.0 5.20 – MAX856, 3/5 = 3V, 0mA ILOAD 150mA 3.17 3.3 3.43 MAX857, V OUT = 5V, 0mA I LOAD 100mA 4.80 5.0 5.20 Output Voltage 2V VIN 3V – V MAX858, 3/5 =
in „Bitte mal kurz über Schaltplan drüberschauen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX856-Stepup.pdf
MINto TMAX , unless otherwise noted. Typical values areAat T = +25°C.) PARAMETER CONDITIONS MIN TYP MAX UNITS MAX856, 3/5 = 0V, 0mA ILOAD 100mA 4.80 5.0 5.20 – MAX856, 3/5 = 3V, 0mA ILOAD 150mA 3.17 3.3 3.43 MAX857, V OUT = 5V, 0mA I LOAD 100mA 4.80 5.0 5.20 Output Voltage 2V VIN 3V – V MAX858, 3/5 =
in „Verständnisfrage zu Shutdown Feature von Schaltregler MAX856“ · Mikrocontroller und Digitale Elektronik ·
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PDF
max774-max776.pdf
IREF = 0µA MAX77_E 1.4625 1.5 1.5375 V MAX77_M 1.4550 1.5 1.5450 MAX77_C/E 4 10 REF Load Regulation 0µA ≤ IREF≤ 100µA MAX77_M 4 15 mV REF Line Regulation 3V ≤ V+ ≤ 16.5V 40 100 µV/V MAX774, 4V ≤ V+ ≤ 15V, ILOAD =
in „[V] kleines Konvolut ältere DIL / DIP ICs (8€)“ · Markt ·
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PDF
MAX3293-MAX3295.pdf
a high-impedance state (see Table 1). 3 X Low-Power Shutdown 5.6kΩ DE Force DE low to disable the MAX3293/MAX3294/ EN (HOT SWAP) A MAX3295. In shutdown mode, the device consumes a 2mA M maximum of 10µA of supply current. 100µA Hot-Swap Capability M1 M2 Hot-Swap Input When circuit boards are inserted
in „Stromaufnahme eines RS422-Receivers anhand von Datenblatt ermitteln“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX941-MAX944.pdf
= 15pF 40 CLOAD= 15pF V = 5mV VOD= 5mV 60 OD 30 2.5 1 10 100 1000 10,000 -60-40 -20 0 20 40 60 80 100 120140 2 3 4 5 6 TEMPERATURE ( C) SUPPLY VOLTAGE (V) SOURCE CURRENT ( A) OUTPUT LOW VOLTAGE MAX941 TOTAL SUPPLY CURRENT MAX942 TOTAL SUPPLY CURRENT vs. SINK
in „Verstärkung 2V -> 3.3V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX63xx.pdf
120 3 100 4 95 5 2 3 3 A A MAX6341 MAX6325 A MAX6325 M M 90 M ) 110 ) ) d ( 10 d ( E ( 85 O 100 N O MAX6350 T A T 80 E MAX6341 E E E 90 M 1 E R I R 75 L MAX6350 U L P 80 T P R U 0.1 I = 5mA R 70 O SINK 70 65 SOURCE = 5mA 60 0.01 60 10 100 1k 10k 10 100 1k 10k 100k 1M 10 100 1k 10k FREQUENCY (Hz) FREQUENCY (Hz) FREQUENCY (Hz) MAX6325 MAX6341 MAX6350 0.1Hz to 10Hz NOISE 0.1Hz to 10Hz NOISE 0.1Hz to 10Hz NOISE MAX6325-16 MAX6325-17 MAX6325
in „Oszi und DMM selber kalibrieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
001123728-da-01-en-IC_SPREF_SERIE_5V_MAX6350EPA__DIP_8_MAX.pdf
120 3 100 4 95 5 2 3 3 A A MAX6341 MAX6325 A MAX6325 M M 90 M ) 110 ) ) d ( 10 d ( E ( 85 O 100 N O MAX6350 T A T 80 E MAX6341 E E E 90 M 1 E R I R 75 L MAX6350 U L P 80 T P R U 0.1 I = 5mA R 70 O SINK 70 65 SOURCE = 5mA 60 0.01 60 10 100 1k 10k 10 100 1k 10k 100k 1M 10 100 1k 10k FREQUENCY (Hz) FREQUENCY (Hz) FREQUENCY (Hz) MAX6325 MAX6341 MAX6350 0.1Hz to 10Hz NOISE 0.1Hz to 10Hz NOISE 0.1Hz to 10Hz NOISE MAX6325-16 MAX6325-17 MAX6325
in „Frage zur Spannungsreferenz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IR21844.pdf
Delay vs. Temperature vs. SupplyVoltage 120 120 ) 100 s100 n ( ( Max. m 80 i 80 T T s 60 i 60 Typ. R R n 40 Max. o 40 n n u 20 Typ. u 20 T T 0 0 -50 -25 0 25 50 75 100 125 10 12 14 16 18 20 Temperature(C) Supply Voltage(V) Figure 7A. Turn-on Rise Time
in „Simulation IR2183 Halbbrückentreiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CONTROL_IC_IR2109PBF_DIP_8__IR.pdf
. Supply Volta ge www.irf.com 9 IR2109 4 ( ) ( S ) & (PbF) 200 200 ) ) s 150 n 150 ( ( e m T T l l 100 Max. F 100 F f f - Max. - Typ. r r 50 u 50 T T Typ. 0 0 10 12 14 16 18 20 -50 -25 0 25 50 75 100 125 o V Supply Voltage (V) Temperature ( C) BIAS Figure 10A. Turn-off Fall Time Figure 10B. Turn-off
in „1. Schaltung Mosfet Treiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
battery_mm_3474_e.pdf
100 0.4 1 0.1 1 Max.15 10 10 Non Latch MM3474K03VBE 4.25 4.19 3 3.2 80 0.7 1 0.1 1 Max.15 10 10 Latch MM3474K04VBE 4.175 4.1 3 3.2 100 0.5 1 0.1 1 Max.15 10 10 Non Latch MM3474L02VBE 3.75 3.55 2.2 2.7 100
in „Defekte BMS-Platine Rasenmäher-Roboter - Ursachenforschung“ · Platinen ·
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PDF
SMD_Catalog.pdf
-4.1 Max L SC70 4.096V 0.5% shunt V ref ABY LM4040DIX3-4.1 Max L SC70 4.096V 1% shunt V ref ABZ LM4040AIX3-5.0 Max L SC70 5.000V 0.1% shunt V ref AC BCX51-100 Sie P SOT89 45V pnp audio hfe 100 AC BCX51-10 Phi
in „Hilfe bei Bauteilsuche für Mainboard“ · PC Hard- und Software ·
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PDF
datasheetFilter.pdf
CDBM455CL21 T13.0kHzmin. 65T20mV 2.5%max. 5.0%max. CDBC455CLX21 T11.0kHzmin. 75T25mV 2.5%max. 5.0%max. CDB455C24 T4.0kHzmin. 100T40mV 2.0%max. Y Cordless Telephone, CDBM455C24 T4.0kHzmin. 100T40mV 2.0%max. Y TA31136 Communications CDBC455CX24 T4.0kHzmin. 100T40mV 2.0%max. Y Equipment CDB455C27 T4.0kHzmin. 100T40mV 2.0%max. Y Cordless Telephone, CDBM455C27 T4.0kHzmin. 100T40mV 2.0%max. Y TK10487 Communications Equipment CDBC455CX27 T4.0kHzmin. 90T30mV 2.0%
in „Superhet mit einer Loop-Antenne=Empangsspule für KW“ · HF, Funk und Felder ·
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PDF
MAX471_MAX472_MAX.pdf
M VRG1-VRG2 S A % 5 A 0.3 R ( X R 0 I E -5 N 0.2 4 T 7 V -V I -15 RG2 RG1 0.1 2 -25 0 0.1 1 10 100 1000 1mA 10mA 100mA 1A V (mV) ISENSE SENSE MAX471 MAX471 0mA to 100mA TRANSIENT RESPONSE -100mA to +100mA TRANSIENT RESPONSE LOAD 0A CURRENT LOAD 100mA/div CURRENT 50mA/div 0A VOUT 50mV/div VOUT 50mV/div 50mA/div SIGN 50mV/div 100 s/div 100 s/div VCC = 10V, OUT= 2k 1%, SIGN PULL-UP = 50k 1% VCC = 10V,OUT = 2k 1%, SIGN PULL-UP = 50k 1% MAX471 MAX471 START-UP DELAY 0A TO 3A TRANSIENT RESPONSE ILOAD 1A/div V OUT 500mV/div V SHDN
in „Strommessung/OP“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX471-MAX472.pdf
0.4 M VRG1-VRG2 S A % 5 R 0.3 R ( X R 0 S E -5 O 0.2 4 T 7 I -15 VRG2-VRG1 0.1 2 -25 0 0.1 1 10 100 1000 1mA 10mA 100mA 1A I VSENSE (mV) SENSE MAX471 MAX471 0mA to 100mA TRANSIENT RESPONSE -100mA to +100mA TRANSIENT RESPONSE LOAD 0A CURRENT LOAD 100mA/div CURRENT 50mA/div 0A V OUT 50mV/div VOUT 50mV/div 50mA/div SIGN 50mV/div 100 s/div 100 s/div V = 10V, R = 2k 1%, SIGN PULL-UP = 50k 1% VCC = 10V, OUT= 2k 1%, SIGN PULL-UP = 50k 1% CC OUT MAX471 MAX471 START-UP DELAY 0A TO 3A TRANSIENT RESPONSE LOAD 1A/div V 500mV/div VSHDN VOUT
in „strommeßung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX471-MAX472.pdf
0.4 M VRG1-VRG2 S A % 5 R 0.3 R ( X R 0 S E -5 O 0.2 4 T 7 I -15 VRG2-VRG1 0.1 2 -25 0 0.1 1 10 100 1000 1mA 10mA 100mA 1A I VSENSE (mV) SENSE MAX471 MAX471 0mA to 100mA TRANSIENT RESPONSE -100mA to +100mA TRANSIENT RESPONSE LOAD 0A CURRENT LOAD 100mA/div CURRENT 50mA/div 0A V OUT 50mV/div VOUT 50mV/div 50mA/div SIGN 50mV/div 100 s/div 100 s/div V = 10V, R = 2k 1%, SIGN PULL-UP = 50k 1% VCC = 10V, OUT= 2k 1%, SIGN PULL-UP = 50k 1% CC OUT MAX471 MAX471 START-UP DELAY 0A TO 3A TRANSIENT RESPONSE LOAD 1A/div V 500mV/div VSHDN VOUT
in „wie Stromrichtung erkennen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IR2110-DataSheet.pdf
Figure 7B. Turn-On Time vs. V CC /V BS Supply Voltage 250 250 Max. 200 200 s ( s e Typ. ( i 150 i150 y y l e D D Max. n 100 -100 - u Typ. r T T 50 50 0 0 0 2 4 6 8 10 12 14 16 18 20 -50 -25 0 25 50 75 100 125 V DDSupply Voltage (V) Temperature (°C) Figure 7C. Turn-On
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PDF
datasheet-5.pdf
specified Parameter Symbol Limit Values Limit Unit T A= 25 °C Values T = – 25 A to 85 °C min. typ. max. min. max. Open-loop IS 0.25 0.4 0.45 mA current consumption Input offset voltagR, = 50 V – 5.5 5.5 – 7 7 mV G IO Input offset current IIO – 15 15 – 100 100 nA Input current II 40 150 200 nA Semiconductor
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ir2183.pdf
Time vs. SupplyVoltage 8 www.irf.com IR2183(4 )(S & PbF ) 1100 1100 900 900 ) s n ( 700 ( 700 m Max. i Max. d d Typ. e 500 Typ. e 500 D Min. D Min. 300 300 100 100 -50 -25 0 25 50 75 100 125 10 12 14 16 18 20 Temperature(C) Supply Voltage(v) Figure 8A. Deadtime vs. Temperature Figure 8B. Deadtime
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