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S8200A_E.pdf
Function Voltage Voltage Voltage Voltage Function [VCU] [VCL] [VDL] [VDU] [VDIOV [VCIOV S-8200AAC-M6T1U 4.225V 4.025V 2.500V 2.900V 0.150V −0.150V Available (1) Unavailable S-8200AAH-M6T1U 4.375V 4.175V 2.300V 2.300V 0.130V −0.100V Available (2) Available S-8200AAY-M6T1U 4.150V 4.050V 2.500V 2.800V 0.160V
in „Li-Ion Ladeschutzschaltung mit S-8200“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
rtc-4543xx_man.pdf
0.9 s Write data setup time tSD 0.1 0.2 s Write data hold time tHD 0.1 0.1 s WR setup time WRS 100 100 ns WR hold time tWRH 100 100 ns DATA output delay time tDATD 0.2 0.4 s DATA output floating time tDZ 0.1 0.2 s Clock input rise
in „RTC 4543 - Uhrzeit lässt sich nicht setzen - Arduino UNO“ · Mikrocontroller und Digitale Elektronik ·
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EFS10.pdf
5,30 2,20 4 6 30 2100 670 210 66 25,50 10,20 4,28 1,85 9 + 35 1652 530 168 54 21,54 8,69 3,71 1,62 l T n 40 1300 420 135 45 18,20 7,40 3,22 1,41 e i 45 1020 317 103 35 14,28 6,02 2,67 1,20 ö L 50 800 240 79 27 11,20 4,90 2,22 1,02 8 9 - D 4 0 1 c t Temperature Humidity Characteristic (EFS-10) o P H 10000
in „Feuchtesensor EFS10 Temperaturkompensation“ · Analoge Elektronik und Schaltungstechnik ·
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156545-da-01-de-Feuchtesensor_EFS10.pdf
5,30 2,20 4 6 30 2100 670 210 66 25,50 10,20 4,28 1,85 9 + 35 1652 530 168 54 21,54 8,69 3,71 1,62 l T n 40 1300 420 135 45 18,20 7,40 3,22 1,41 e i 45 1020 317 103 35 14,28 6,02 2,67 1,20 ö L 50 800 240 79 27 11,20 4,90 2,22 1,02 8 9 - D 4 0 1 c t Temperature Humidity Characteristic (EFS-10) o P H 10000
in „Funktion einer Messschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.h
SDRAM_DEVICE_ADDR /** * @brief Camera frame buffer start address * Assuming LCD frame buffer is of size 480x800 and format ARGB8888 (32 bits per pixel). */ #define CAMERA_FRAME_BUFFER ((uint32_t)(LCD_FRAME_BUFFER + (RK043FN48H_WIDTH * RK043FN48H_HEIGHT * ARBG8888_BYTE_PER_PIXEL))) /** * @brief SDRAM Write read
in „Discovery_STM32F746 Linking Problem“ · Mikrocontroller und Digitale Elektronik ·
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stm32f030f4-956260.pdf
x8/xC Table 11. STM32F030x4/6/8/C pin definitions (continued) Pin number Pin functions r Pin name e t 4 8 2 2 t u P P P P (function after n t Notes F F F O reset) P s Alternate functions Additional functions L L L S I T SPI1_SCK ,2) (3)(5) SPI2_SCK (5), 34 26 - - PB13 I/O FT - I2C2_SCL , - TIM1_CH1N,
in „STM32F030 interne REF ausreichend für 12Bit?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
P33_NEP_2037_2045_V2023_Anhang_2E_Aktual_Apr.pdf
überführt, da hier das Planfeststellungsverfahren eröffnet wurde. Sie wird nun in den Projekten 50HzT-P33 und TTG-P33 dargestellt. e e Trassen- erforderlich in e a r r länge in km Szenario m n d g a / ä a t bn g s - u n e i u d A b t 3 3 3 4 4 4 i t e u O u e 2 2 2 2 2 2 n b M-Nr. L B N NOVA-Typ A B
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Softwar_Tiefpass.pdf
t=T,2T,3T,... handelt. Die Antwort muß daher pragma- tisch gegeben werden: Da die Ausgangsgröße y(t) zum Zeitpunkt t=k· T berechnet werden soll, ist y(k) noch nicht bekannt, daher wird bei y(t) t=(k-1)
in „Tiefpass mit 8051 Assembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX220-MAX249.pdf
MAX220) ........................................20-Pin Wide SO (derate 10.00mW/°C above +70°C)....800mW A R IN(MAX220)................................................20-Pin SSOP (derate 8.00mW/°C above +70°C) ..........640mW T OUT(Except MAX220) (Note 2) ..............................16-Pin CERDIP (derate 10.00mW/°C above +70°C).....800mW M T OUT(MAX220)...............................................18-Pin CERDIP (derate 10.53mW/°C above +70°C).....842mW – Output Voltages Operating Temperature Ranges T OUT..........................
in „avr prog und device- auswahl“ · Mikrocontroller und Digitale Elektronik ·
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max232.pdf
/°C above +70°C)....800mW A R IN(MAX220)................................................20-Pin SSOP (derate 8.00mW/°C above +70°C) ..........640mW T OUT(Except MAX220) (Note 2) ..............................16-Pin CERDIP (derate 10.00mW/°C above +70°C).....800mW M T OUT(MAX220)...............................................18-Pin CERDIP (derate 10.53mW/°C above +70°C).....842mW – Output Voltages Operating Temperature Ranges 0 T OUT........................
in „Trackball dsub9w auf PS2m Belegung?“ · PC Hard- und Software ·
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Bild
LTspice Schaltplan und Simulationsergebnis
thyst.asc thyst.raw V1 5 SINE(0 220 50) R1 D1 D2 D3 D4 S1 MS C1 4m7 V2 4 PULSE(0 5 {10m-t} 1u 1u {t} 10m) .tran 0 800m 100m .param t=2.9m .model SW(Ron=1.0ff Meg Vt=2 Vh=0) W(V(N001,N002)*I(R1)) Interval Start: 0s Interval End: 700ms Average: 2K1.61W Integral: 295.13J 0ms 70ms 140ms 210ms
in „Netzteil EA-PS 7150-04A brummt - Fehler?“ · Analoge Elektronik und Schaltungstechnik · · Screenshots
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PDF
sd_aus_ek_8_9_10.pdf
aktiver Leis Source/Analyzer messgerätLMG95 strom bis zum Dreifachen tungsfaktorkorrektur (PFC) E (t)uE(t) uA(t) A (t) OhmscheLasten und Puls für das QS10.241 undinvierGerätemitpas- i(t) bis zum 2,25-fachen des E RL1 ...RLn siver PFC. Einem Netz- RM RM Nennwerts von 10 A. gerät, dem CS10.241 von DUT
in „EMV bei gekauften Schaltnetzteilen verstehen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUF634_Datasheet.pdf
At T = +25°C , V = ±15V, unless otherwise noted. A S BUF634P, U, T, F LOW QUIESCENT CURRENT MODE WIDE BANDWIDTH MODE PARAMETER CONDITION MIN TYP MAX MIN TYP MAX UNITS INPUT Offset Voltage ±30 ±100 mV vs Temperature
in „OP Ausgang -> Leitung -> AD Messkarte -- Wie\Wo terminieren?“ · Analoge Elektronik und Schaltungstechnik ·
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LM4041.pdf
Dissipation ATe 25§C) (Note 2) Operating Ratings (Notes 1 & 2) M Package 540 mW Temperature Range (T s T s T ) b 40§C s T s a 85§C M3 Package 306 mW min A max A Z Package 550 mW Reverse Current Storage Temperature b 65 C toa 150 C LM4041-1.2 60 mA to 12 mA § § LM4041-ADJ 60 mA to 12 mA Lead Temperature
in „Schutzbeschaltung mittels Shottky Dioden“ · Analoge Elektronik und Schaltungstechnik ·
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tlc5947.pdf
=‘401h) ON ¼ ¼ T‘=‘Internal‘CLK ´ 2048 OUTn OFF (GS‘Data‘=‘800h) ON ¼ ¼ OFF T‘=‘Internal‘CLK ´ 3072 OUTn (GS‘Data‘=‘C00h) ON ¼ ¼ T‘=‘Internal‘CLK ´ 4094 OUTn OFF (GS‘Data‘=‘FFEh) ON OFF T‘=‘Internal‘CLK ´ 4095 OUTn (
in „SPI Timing ATmega8 und TLC5947“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tlc5947.pdf
=‘401h) ON ¼ ¼ T‘=‘Internal‘CLK ´ 2048 OUTn OFF (GS‘Data‘=‘800h) ON ¼ ¼ OFF T‘=‘Internal‘CLK ´ 3072 OUTn (GS‘Data‘=‘C00h) ON ¼ ¼ T‘=‘Internal‘CLK ´ 4094 OUTn OFF (GS‘Data‘=‘FFEh) ON OFF T‘=‘Internal‘CLK ´ 4095 OUTn (
in „SPI Entstören“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ETM12E_03_R8564LC.pdf
Symbol Condition Min. Typ. Max. Unit SCL clock frequency fSCL 400 kHz Start condition set-up time tSU; STA 0.6 µs Start condition hold time tHD; STA 0.6 µs Data set-up time tSU; DAT 100 ns Data hold time tHD; DAT 0 ns Stop condition set-up time tSU; STO 0.6 µs Bus free time between a STOP and START
in „Kompatible zu RX8564LC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ETM12E_03_R8564LC.pdf
Symbol Condition Min. Typ. Max. Unit SCL clock frequency fSCL 400 kHz Start condition set-up time tSU; STA 0.6 µs Start condition hold time tHD; STA 0.6 µs Data set-up time tSU; DAT 100 ns Data hold time tHD; DAT 0 ns Stop condition set-up time tSU; STO 0.6 µs Bus free time between a STOP and START
in „Kompatible zu RX8564LC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ETM12E_03_R8564LC.pdf
Symbol Condition Min. Typ. Max. Unit SCL clock frequency fSCL 400 kHz Start condition set-up time tSU; STA 0.6 µs Start condition hold time tHD; STA 0.6 µs Data set-up time tSU; DAT 100 ns Data hold time tHD; DAT 0 ns Stop condition set-up time tSU; STO 0.6 µs Bus free time between a STOP and START
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ST7920-1.pdf
: DB0 - DB7 - - 100 ns T Data Hold Time Pins: DB0 - DB7 20 - - ns H Interface Mode with LCD Driver(ST7921) TCWH Clock Pulse with High Pins: CL1, CL2 800 - - ns TCWL Clock Pulse with Low Pins: CL1, CL2 800 - - ns T CST Clock
in „DDRAM Adressierung (DG-14032 GLCD)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7920.pdf
: DB0 - DB7 - - 100 ns T Data Hold Time Pins: DB0 - DB7 20 - - ns H Interface Mode with LCD Driver(ST7921) TCWH Clock Pulse with High Pins: CL1, CL2 800 - - ns TCWL Clock Pulse with Low Pins: CL1, CL2 800 - - ns T CST Clock
in „Display mit ST7920 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7920.pdf
: DB0 - DB7 - - 100 ns T Data Hold Time Pins: DB0 - DB7 20 - - ns H Interface Mode with LCD Driver(ST7921) TCWH Clock Pulse with High Pins: CL1, CL2 800 - - ns TCWL Clock Pulse with Low Pins: CL1, CL2 800 - - ns T CST Clock
in „Display mit ST7920 Controller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
st7920_chinese_font_controller.pdf
Pins: DB0 - DB7 20 - - ns H Interface Mode with LCD Driver(ST7921) T CWH Clock Pulse with High Pins: CL1, CL2 800 - - ns T CWL Clock Pulse with Low Pins: CL1, CL2 800 - - ns TCST Clock Setup Time Pins: CL1, CL2 500 - - ns TSU Data Setup Time Pin: D 300 - - ns TDH Data
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PDF
st7920_chinese.pdf
Pins: DB0 - DB7 20 - - ns H Interface Mode with LCD Driver(ST7921) T CWH Clock Pulse with High Pins: CL1, CL2 800 - - ns T CWL Clock Pulse with Low Pins: CL1, CL2 800 - - ns TCST Clock Setup Time Pins: CL1, CL2 500 - - ns TSU Data Setup Time Pin: D 300 - - ns TDH Data
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PDF
MAX232.pdf
.......24-Pin Sidebraze (derate 20.0mW/°C above +70°C)..........A.6W Continuous Power DissipationA(T +70°C) 28-Pin SSOP (derate 9.52mW/°C above +70°C).............762mW 14-Pin Plastic DIP (derate 10.00mW/°C above +70°C)....800mWOperating Temperature Ranges X 16-Pin Plastic DIP (derate 10.53mW/°C above
in „Problem mit RS232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX232.pdf
.......24-Pin Sidebraze (derate 20.0mW/°C above +70°C)..........A.6W Continuous Power DissipationA(T +70°C) 28-Pin SSOP (derate 9.52mW/°C above +70°C).............762mW 14-Pin Plastic DIP (derate 10.00mW/°C above +70°C)....800mWOperating Temperature Ranges X 16-Pin Plastic DIP (derate 10.53mW/°C above
in „Welche Bedeutung....“ · Mikrocontroller und Digitale Elektronik ·
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quantum_mac_sa.31m__sa.33m__and_sa.35m_datasheet.pdf
810, figure Phase Noise (SSB) Type SA.35m / SA.33m SA.31m 514.7E-1, category 24 SA.35m/SA.33m SA.31m t=1 s ≤3E-11 ≤5E-11 (General Minimum 1 Hz <-70 dBc/Hz <-65 dBc/Hz t=10 s ≤1.6E-11 ≤2.5E-11 Integrity Exposure) 10 Hz <-87 dBc/Hz <-85 dBc/Hz No loss of lock t=100 s ≤8E-12 ≤1E-11 100 Hz <-114 dBc/Hz <-
in „Bezugsquelle Rubidium Standard Referenz“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PCF8574.cpp
begin(uint8_t dataPin, uint8_t clockPin, uint8_t val) { _wire = &Wire; if ((dataPin < 255) && (clockPin < 255)) { _wire->begin(dataPin, clockPin); } else { _wire->begin(); } if (! isConnected()) return false; PCF8574
in „Fehler bei PCF8574.h Bibliotheke“ · Mikrocontroller und Digitale Elektronik ·
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ax50424_ds_v1_3.pdf
GND 3 19 IRQ ANTP 4 AX50424 18 TST3 ANTN 5 17 MOSI GND 6 16 MISO VDD 7 15 CLK 8 9 10 11 12 13 14 C T T D N L E N T T N T C S G S Y R S Figure 2: Pinout drawing (Top view) Version 1.3 Datasheet AX50424 10 Specifications 4. Specifications 4.1. Absolute Maximum Ratings Stresses above those listed under
in „WetterDirekt Wetterstation Basteleien“ · HF, Funk und Felder ·
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PDF
MAX220-MAX249.pdf
T2IN T2OUT 4 T2 3 VCC 7 14 T3IN +5V 400kΩ C1+ 8 13 V- T3IN T3OUT TTL/CMOS 14 T3 1 RS-232 V+ 9 12 C2- INPUTS +5V OUTPUTS 400kΩ C1- 10 11 C2+ 15 T4IN T4OUT 20 T4 +5V 400kΩ DIP/SO 19 T5IN T5OUT 16 T5 N.C.
in „16 Wide SO Gehäuseform SMD-IC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SKKH_15_Thyristormodul_Datasheet.pdf
IRMS W1/W3 Tamb= 45 °C; P 13A/100 21 / 3 x 12 A ITSM Tvj 25 °C; 10 ms 320 A Tvj 125 °C; 10 ms 280 A i t T = 25 °C; 8,3 ... 10 ms 510 A2s vj 2 Tvj= 125 °C; 8,3 ... 10 ms 390 A s t T = 25 °C I = 1 A gd vj G SKKT SKKH diG/dt = 1 A/ s 1 s tgr VD = 0,67 V DRM 1 s Features (di/dcr Tvj 125 °C 100 A/ s • Heat
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isec05poster_pq11_a3.pdf
Bipolar transistors JFETs k B i =ωC ⇒ large dynamic range at a large bandwidth u = 4k TR n g g n B BB 8k T m Johnson noise from cabling becomes negligible 2eI C u = B in= n 2e kT h g m in= 2eI g u = × fe n I e C C g T = 2/3ω T We have some promising 4.2K results SSM2220, MAT03, AD797: regularly used n TRACECh1
in „Meßverstärker für 1/f-Rauschen 0.1 - 10 Hz“ · Analoge Elektronik und Schaltungstechnik ·
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AD8253.pdf
,C =100pFL 1400 1200 1000 SETTLED TO 0.001% ) s800 ( E SETTLED TO 0.01% I T600 400 4 200 3 20mV/DIV 20µs/DIV 6 0 0 4 2 4 6 8 10 12 14 16 18 20 3 9 STEP SIZE (V) 0 Figure43.Small-SignalResponse, Figure46.SettlingTimevs.StepSize,G=10,R =10kΩ L G=100,R L=2kΩ,C =1L0pF 2000 1800 SETTLED TO 0.001% 1600 1400 SETTLED TO 0.01% )1200 n ( E000 I T800 600 400 0 8 200 20mV/DIV 20µs/DIV 6 0 0 0 2 4 6 8 10 12 14 16 18 20 8 STEP SIZE (V) 6 0 Figure44.Small-SignalResponse,G=1000,R =2kΩ,C =100pF L L Figure47.SettlingTimevs.StepSize,G=100,R =10kΩ L Rev
in „2 Fragen zur Verstärkerschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MCP1640.pdf
to the SW IN pin. The SW pin carries inductor current and can be asonnect the input voltage source tINV . The input high as 800 mA peak. The integrated N-Channel switch source should be decoupled to GND with a 4.7 µF drain and integrated P-Channel switch source are inter-nimum capacitor. nally connected
in „ESP32-C6 an 18650 Akku betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EG4S20_integrated_SDRAM.pdf
delay (different banks) 10 - t.RCD RAS# to CAS# delay (same bank) 18 - t.RP Precharge to refresh/row activate command (same bank) 15 - t.RAS Row activate precharge time (same bank) 35 100000 t.CK Clock cycle time 5 - t.AC Access time from CLK (positive edge) - 4.5 ns t.OH Data output hold time 2 - t.CH Clock high time 2 - t.CL Clock low time 2 - t.IS Data/Address/Control input set-up time 1.5 - t.IH Data/Address/Control input hold time 1 - t.LZ Data output low impedance
in „SDRAM Burst lesen ohne Unterbrechung über Column, Row und Banks hinaus“ · FPGA, VHDL & Co. ·
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PDF
LT1300.pdf
170 80 V OUT= 3.3V 86 L = 10µH 165 VOUT = 5V 70 84 160 ) 82 ) µ 60 ) VIN= 3V µ155 E ( 80 VIN= 2.5V T N 50 Y E 150 I N 78 V = 2V R 145 + I 76 IN U V = 3.3V I 40 I T 140 OUT I E 74 U N 30 I 135 H 72 I 20 70 130 10 68 125 66 120 0 1 10 100 1000 1.41.6 1.8 2.0 2.2 2.4 2.6 2.8 3.0 3.2 3.4 0 1 2 3 4 5 6 7
in „Regulierte 3.3v spannung bei 3.7v batterie?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
en.DM00088500.pdf
x8/xC Table 11. STM32F030x4/6/8/C pin definitions (continued) Pin number Pin functions r Pin name e t 4 8 2 2 t u P P P P (function after n t Notes F F F O reset) P s Alternate functions Additional functions L L L S I T SPI1_SCK ,2) (3)(5) SPI2_SCK (5), 34 26 - - PB13 I/O FT - I2C2_SCL , - TIM1_CH1N,
in „Controller IC für digitale RGBW LED-Streifen“ · Mikrocontroller und Digitale Elektronik ·
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E-cap_2011.pdf
4,000 12 x 25 200 1,800 3,600 500 5,000 200 1,800 3,600 12 x 30 200 1,200 2,400 200 1,600 3,200 12 x 35 200 1,000 2,000 500 3,000 12 x 40 200 1,000 2,000 500 3,000 13 x 20 200 1,800 3,600 500 5,000 200 1,800 3,600 13 x 25
in „TFT Monitor Elkos“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TL783.pdf
DISSIPATION DERATING CURVE 2000 24 W W m 1800 Derating Factor = 16 mW/⋅C – – R θJA ⌠62.5⋅C/W n i 1600 t 20 a p i s i 1400 i 16 D r e 1200 w w o P 1000 s 12 s u o 800 u n t n n 8 o 600 C C m u 400 u Derating Factor = 250 mW/⋅C m i 4 Above 70⋅C x 200 a RθJC ⌠4⋅C/W M M 0 0 25 50 75 100 125 150 25 50 75 100
in „LM337 mit Zenerdiode hochlegen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Understanding-Diode-Reverse-Recovery-and-Its-Effect-on-Switching-Losses.pdf
t B is defined as the time switching losses and their impact are significant. between the peak of the reverse current and the time For a normal diode, tB is much smaller than tA. where the current falls to zero (or a pre-defined low For a soft recovery diode, tis larger than t . For a B A level). The sum of t And t iB called the reverse given reverse recovery time, t RR (= tA+ t )B the recovery time, RR. equation above shows that the semiconductor The switching power dissipation
in „Warum sind Brushlessmotoren so klein??“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Platinfuchs_IIa_Schematic-and-Layout.pdf
2N7002F pp3t-B D 7 T5 V V V 15,73V 6 BC846C pp2t-B pp2t-B C12 C13 6 22µF 22µF S 16V 16V C28 C29 R18 pp2t-A pp2t-A 100nF R19 10µF 2,2R 47K 6,3V R20 R21 R22 R23 GND GND 620K 620K 620K 620K *GND* *GND* *GND* *GND* *
in „Platinfuchs IIa: Isolierter, bidirektionaler 45W DC/DC Wandler zum Laden/Entladen eines Liion-Akkus“ · Projekte & Code ·
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PDF
Vishay_Diode_Marking.pdf
GL41A white gray BYM10-50 white gray GL41B white red BYM10-600 white green GL41D white orange BYM10-800 white blue GL41G white yellow BYM11-100 red red GL41J white green BYM11-1000 red violet GL41K white blue BYM11-200 red orange GL41M white violet 2nd Band BYM11-400 red yellow GL41T white white 1st Band
in „Unbekanntes Bauteil“ · Mikrocontroller und Digitale Elektronik ·
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PDF
marking.pdf
GL41A white gray BYM10-50 white gray GL41B white red BYM10-600 white green GL41D white orange BYM10-800 white blue GL41G white yellow BYM11-100 red red GL41J white green BYM11-1000 red violet GL41K white blue BYM11-200 red orange GL41M white violet 2nd Band BYM11-400 red yellow GL41T white white 1st Band
in „Suche Datenblatt zu S422“ · Mikrocontroller und Digitale Elektronik ·
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PDF
marking.pdf
GL41A white gray BYM10-50 white gray GL41B white red BYM10-600 white green GL41D white orange BYM10-800 white blue GL41G white yellow BYM11-100 red red GL41J white green BYM11-1000 red violet GL41K white blue BYM11-200 red orange GL41M white violet 2nd Band BYM11-400 red yellow GL41T white white 1st Band
in „Suche die Bezeichnung eines Bauteils“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
88912_Marking_Diodes_Vishay-061201.pdf
GL41A white gray BYM10-50 white gray GL41B white red BYM10-600 white green GL41D white orange BYM10-800 white blue GL41G white yellow BYM11-100 red red GL41J white green BYM11-1000 red violet GL41K white blue BYM11-200 red orange GL41M white violet 2nd Band BYM11-400 red yellow GL41T white white 1st Band
in „Bauteil identifizieren diode, SMC, "G DE 47"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm2679-adj.pdf
+353 93 24 459 Renco Electronics Phone (800) 645-5828 FAX (516) 586-5562 www.national.com 16 L M Capacitor Selection Guides 6 7 Table 2. Input and Output Capacitor Codes 9 Surface Mount Capacitor AVX TPS Series Sprague 594D Series Kemet T495
in „Schaltregler Schaltplan und Layout Kontrolle“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tps63031_buckboost.pdf
CONDITIONS MIN NOM MAX UNIT Supply voltage at VIN, VINA 1.8 5.5 V Operating free air temperature ranAe, T –40 85 °C Operating virtual junction temperature rJnge, T –40 125 °C 2 Submit Documentation Feedback Copyright © 2008–2012, Texas Instruments Incorporated Product Folder Link(s): TPS63030 TPS63031 TPS63030
in „TPS63031 Beschaltungs-Frage“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tps63031.pdf
CONDITIONS MIN NOM MAX UNIT Supply voltage at VIN, VINA 1.8 5.5 V Operating free air temperature ranAe, T –40 85 °C Operating virtual junction temperature rJnge, T –40 125 °C 2 Submit Documentation Feedback Copyright © 2008–2012, Texas Instruments Incorporated Product Folder Link(s): TPS63030 TPS63031 TPS63030
in „Seltsames SMD-Pad“ · Platinen ·
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PDF
TPS63031.pdf
CONDITIONS MIN NOM MAX UNIT Supply voltage at VIN, VINA 1.8 5.5 V Operating free air temperature ranAe, T –40 85 °C Operating virtual junction temperature rJnge, T –40 125 °C 2 Submit Documentation Feedback Copyright © 2008, Texas Instruments Incorporated Product Folder Link(s): TPS63030 TPS63031 TPS63030
in „Spannungspeaks / Ripple durch Schaltregler. Abhilfe?“ · Analoge Elektronik und Schaltungstechnik ·
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LMD18200_-_HBr__cke.pdf
Linearity 1A s IOUT s 3A (Note 7) g 6 g 9 % Undervoltage Lockout Outputs turn OFF 9 V (min) 11 V (max) T JW Warning Flag Temperature Pin 9s 0.8V, Le 2 mA 145 § V FON) Flag Output Saturation Voltage TJ e TJW L Ie 2 mA 0.15 V IF(OFF) Flag Output Leakage VF e 12V 0.2 10 mA (max) T JSD Shutdown Temperature
in „LMD18200 current sense Charakteristik. Erfahrung?“ · Analoge Elektronik und Schaltungstechnik ·