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HM17CM4096.pdf
WROTE IN DATA ( 16 BIT MODE ) REF=0, SWAP=0 D 15 D0 WRITE IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2H) D 15 D0 READ IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2H) REF=0, SWAP=1 D 15 D0 WRITE IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2H) D D 15 0 READ IN DATA 0 1 0 0 1 1 1 1 0 0 1 0 0 1 1 1 (4F27H) REF=1, SWAP=0 D 15 D0 WRITE IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2H) D 15 D0 READ IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2H) REF=1, SWAP=1 D 15 D0 WRITE IN DATA 1 1 1 0 0 1 0 0 1 1 1 1 0 0 1 0 (E4F2 ) H D 15 D0 READ IN DATA 0 1 0 0 1 1 1 1 0 0 1 0 0 1 1 1 (4F27H
in „LCD Graphik Display mit µController ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
fontandcolor.h
(81) {0x7F, 0x09, 0x19, 0x29, 0x46}, // R (82) {0x26, 0x49, 0x49, 0x49, 0x32}, // S (83) {0x01, 0x01, 0x7F, 0x01, 0x01}, // T (84) {0x3F, 0x40, 0x40, 0x40, 0x3F}, // U (85) {0x0F, 0x30, 0x40, 0x30, 0x0F}, // V
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AN10897.pdf
for ESD and EMC 50 MΩ to 100 MΩ 330 Ω 1 MΩ 1.5 kΩ high-voltage high supply voltage generator 150 pF DUT 100 pF DUT Vgen V Vgen V 002aae870 002aaf153 Fig 1. Test circuit according to Fig 2. Typical HBM test circuit IEC 61000-4-2 Table 1. Peak current of HBM versus IEC 61000-4-2 ESD standards Applied
in „50 X LM75 an ATMEGA16?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EMV_Design.pdf
for ESD and EMC 50 MΩ to 100 MΩ 330 Ω 1 MΩ 1.5 kΩ high-voltage high supply voltage generator 150 pF DUT 100 pF DUT Vgen V Vgen V 002aae870 002aaf153 Fig 1. Test circuit according to Fig 2. Typical HBM test circuit IEC 61000-4-2 Table 1. Peak current of HBM versus IEC 61000-4-2 ESD standards Applied
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PDF
PMT_handbook_v4E.pdf
8to R11: 300 kΩ C 1 C 2 C3 C 4 C 6 C 8 R12: 150 kΩ R14: 430 kΩ R17: 51 Ω C14 C5 C 7 C9 C1, C2: 4700 pF C 3to C11: 0.01 µF R1 C12 C 13 C10 C 1, C13: 1000 pF C14: 2200 pF C11 SHV-R SIGNAL OUTPUT : BNC-R * The dashed line portions at SHV-R and BNC-R indicate an internal shield (ground). THBV4_0530EA Figure
in „Suche nach geeignetem OpAmp als Impedanzwandler“ · Analoge Elektronik und Schaltungstechnik ·
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WIMA_DC_Link_MKP_4.pdf
5 µ F -- 8 3 µ µFF 3 - 1 0 F 1 20 F 0 µ µ F F 0,001 4 5 6 0,001 4 5 6 10 3 5 7 10 10 10 3 5 7 10 10 f/Hz f/Hz 24 40 Zulässige Stromstärke in Abhängigkeit Ieff Ieff A 45 µF A 120 µF von der Frequenz bei 20
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Datei
TM1637Display.cpp
collector.githubapp.com" name="octolytics-host" /><meta content="github" name="octolytics-app-id" /><meta content="5F5BD41F:2F3F:13D692FD:568AC0A2" name="octolytics-dimension-request_id" /> <meta content="/<user-name>/<repo-name>/blob/show" data-pjax-transient="true" name="analytics-location" /> <meta content
in „7-Segmentanzeige an Atmega32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
Columbia Street Bend, Oregon 97702-1035 Phone: (541) 382-8028 FAX: (541) 388-0364 5 EUROPE 0 Avenue J.F. Kennedy Bât B4 Parc Cadéra NordF-33700 Merignac - FrancePhone: (33) 557921515 FAX: (33) 5 56479761 0 APT20M11JVFR DYNAMIC CHARACTERISTICS Symbol Characteristic Test Conditions MIN TYP MAX UNIT C iss Input Capacitance V GS = 0V 18000 21600 C oss Output Capacitance VDS = 25V 4100 5740 pF C Reverse Transfer Capacitance f = 1 MHz 1350 2025 rss Q 3 V = 10V 690 1035 g Total Gate Charge GS Q Gate-Source Charge V DD = 0.5 VDSS 95 140 nC gs Q gd Gate-Drain ("Miller") Charge ID= ID[Cont.] @
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at90can-v1.1.pdf
4 5 6 3..28V V V 82µ C2 5 D 5 VIN R100 + L + C1 10µ/50V d L1 D1 dnp s A 10µ/50V r 5 0 A DFLS240 P f R 3 2 1 T 5 1 k t R 1 o 5 C3 d D GND GND A IC1 47µ/10V +C7 2 1 C5 VIN SW 4 k 1000µF/16V 150p/10V R 1 2 9 8 EN COMP 7 R 3 5 RT FB 6 C6 3 VCC GND 4 15n/10V B GND GND B Value for R3 (1/fsw - 83ns)/77pF
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irf540n.pdf
ns D td(off) Turn-Off Delay Time ––– 39 ––– RG= 5.1Ω t Fall Time ––– 35 ––– V = 10V, See Fig. 10 R f GS Between lead, D LD Internal Drain Inductance ––– 4.5 ––– 6mm (0.25in.) nH from package G LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 1960 ––– VGS
in „Mosfet vor negativer Spannung / Wechselspannung schützen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRF3205.pdf
Characteristics Fig 4. Normalized On-Resistance Vs. Temperature www.irf.com 3 IRF3205 6000 16 VGS = 0V, f = 1 MHZ ID= 62A Ciss = gs + Cgd, ds SHORTED V VDS = 44V C = C (14 VDS = 27V 5000 rss gd g V = 11V Coss = Cds+ Cgd t12 DS F o (4000 V c Ciss c10 n u i3000 o a - 8 a - C t 6 C2000 Coss a G S 4 1000 G Crss
in „Hohe Ströme aus Akku Entladen ?!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dogm-graphic.c
lcd_current_page = 0; uint8_t lcd_current_column = 0; uint8_t dog_4to8[16] = { 0x00, 0x03, 0x0c, 0x0f, 0x30, 0x33, 0x3c, 0x3f, 0xc0, 0xc3, 0xcc, 0xcf, 0xf0, 0xf3, 0xfc, 0xff }; /****************************************************************************** * Changes the internal cursor by s pages * s
in „LCD Init an Atmega128 hängt sich auf“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ElektronikBauteile.pdf
Gesamt- Pos Anzahl Bezeichnung ArtNr Preis Preis Kommentar 1 7 WIMA Folienkondensator, Rm 5mm, 100nF MKS-2 100N 0,07 € 0,50 € 2 7 WIMA Folienkondensator, Rm 5mm, 330nF MKS-2 330N 0,17 € 1,19 € 3 50 Montageclip für LED 5mm MONTAGERING 5MM 0,02 € 1,00 € 4 5 DC-Kupplung für Hohlstecker, mit Stift 2,1mm
in „[V] - Elektroniksammlung“ · Markt ·
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telos-revb-2004-09-27.pdf
9 0.1u SHT11 L2 6 6 6 6 6 5 5 5 5 5 5 5 5 5 5 4 OPTIONAL VCCin 1 2 DVCC DVCC c s s 2 1 0 I I I T T F Bead 240-1035-1 DVCC c s s / / / M C M T T 2 U U L L A D A . . . / T T / T O O A C ADC4 ADC5 C1 C2 C3 P P P S D X T V 6 S 10uF R T X / 5 . 0.1u 0.1u t P 5 D2 D3 o P S1087 Photodiode S1087-01 Photodiode
in „Mic Amp an 2.4GHz Sender - Störung“ · HF, Funk und Felder ·
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PDF
irf3205.pdf
Characteristics Fig 4. Normalized On-Resistance Vs. Temperature www.irf.com 3 IRF3205 6000 16 VGS = 0V, f = 1 MHZ ID= 62A Ciss = gs + Cgd, ds SHORTED V VDS = 44V C = C (14 VDS = 27V 5000 rss gd g V = 11V Coss = Cds+ Cgd t12 DS F o (4000 V c Ciss c10 n u i3000 o a - 8 a - C t 6 C2000 Coss a G S 4 1000 G Crss
in „Erzeugt ein 9V-Printtrafo mehr als 750V?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irl2203n.pdf
Characteristics Fig 4. Normalized On-Resistance Vs. Temperature www.irf.com 3 IRL2203N 6000 15 V GS = 0V, f = 1MHz D = 60A C iss= Cgs+ Cgd , Cds SHORTED ) 5000 C rss= Cgd V VDS = 24V C oss= Cds+ Cgd e 12 VDS = 15V g F l ( 4000 V e e 9 n C iss r i 3000 o a S p t C e 6 , 2000 C oss a C G , 1000 G 3 V FOR TEST
in „Saito Pro Charger Batterieladegerät - Mikrocontroller ATmel ATTINY26L defekt?“ · Mikrocontroller und Digitale Elektronik ·
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irg4bc30w.pdf
Time — 25 — r Rise Time — 16 — TJ= 25°C ns d(off) Turn-Off Delay Time — 99 150 IC= 12A, VCC = 480V f Fall Time — 67 100 V GE= 15V, RG= 23Ω Eon Turn-On Switching Loss — 0.13 — Energy losses include "tail" Eoff Turn-Off Switching Loss — 0.13 — mJ See Fig. 9, 10, 13, 14 Ets Total Switching Loss — 0.26
in „Ersatz für IGBT G4BC30W“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
infineon-irf1010e-mosfet.pdf
Characteristics Fig 4. Normalized On-Resistance Vs. Temperature www.irf.com 3 IRF1010E 6000 20 VGS = 0V, f = 1 MHZ D = 50A C = C + C , C SHORTED iss gs gd ds V V DS= 48V 5000 Crss= Cgd ( 16 V DS= 30V C = C + C g V DS= 12V oss ds gd l F4000 Ciss o ( V c c 12 t u c3000 o p Coss o a - 8 ,2000 t C G , S 4 1000
in „DC Wandler wiederbeleben“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BFR93.pdf
specified amb Parameter Test condition Symbol Min Typ. Max Unit Transition frequency VCE = 5 V,CI = 30 mA, fT 6 GHz f = 500 MHz Collector-base capacitance VCB = 10 V, f = 1 MHz C cb 0.45 pF Collector-emitter capacitanceV = 5 V, f = 1 MHz C 0.2 pF CE ce Emitter-base capacitance VEB = 0.5 V, f = 1 MHz C eb 1.5 pF Noise figure VCE = 8 V, S = 50 Ω, F 1.6 dB f = 800 MHz, I= 5 mA C VCE = 8 V, S = 50 Ω, F 2.1 dB f = 800 MHz,CI = 25 mA Power gain V = 8 V, I = 25 mA, G 14 dB CE C pe ZS = 50 Ω, L = ZLopt f = 800 MHz
in „Suche Vergleichstyp für 2SC9018 in SMD“ · HF, Funk und Felder ·
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discoveryf4.pdf
MCO of the STM32F103. This frequency cannot be changed, it is fixed at 8 MHz and connected to PH0-OSC_IN of the STM32F407VGT6. Configuration needed: – SB13, SB14 OPEN – R25(aremoved (a) – R68 soldered ● Oscillator onboard
in „Hilfe bei Programmierung STM32F407VG bei TIM1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L4971.pdf
and valuation board circuit. Vi=8V to 55V 5 R 8 1 20K L4971 VO=3.3V/1.5A 3 4 C 1 C7 C 2 7 1 6 L1 220 F 220nF 2.7nF 2 126 H 63V (77120) R 3 C6 R2 100nF D1 C 5 9.1K GI C8 100nF SB360 330 F C 4 R4 22nF D97IN749A L4971 C1=220 F/63V EKE C2=2.7nF V OV) R3(K ) R4(K ) C5=100nF 3.3 0 C6=100nF C7=220nF/63V 5.1
in „L4791 Step-down stirbt - wieso?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SL43-E3-57T_Diode_Schottky_4A_30V_SMD-Gehaeuse_DO214.pdf
otherwise noted) A PARAMETER TEST CONDITIONS SYMBOL SL42 SL43 SL44 UNIT I = 4.0 A TA= 125 °C 0.31 0.35 F TA= 25 °C 0.42 0.44 Maximum instantaneous forward voltage at1) V F V TA= 125 °C 0.37 0.41 IF= 8.0 A T = 25 °C 0.47 0.50 A Maximum DC reverse current at rated DC TA= 25 °C 0.5 blocking voltage1) R mA
in „Schottky diode / Uf kleiner als 0,2V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SL43-E3-57T_Diode_Schottky_4A_30V_SMD-Gehaeuse_DO214.pdf
otherwise noted) A PARAMETER TEST CONDITIONS SYMBOL SL42 SL43 SL44 UNIT I = 4.0 A TA= 125 °C 0.31 0.35 F TA= 25 °C 0.42 0.44 Maximum instantaneous forward voltage at1) V F V TA= 125 °C 0.37 0.41 IF= 8.0 A T = 25 °C 0.47 0.50 A Maximum DC reverse current at rated DC TA= 25 °C 0.5 blocking voltage1) R mA
in „1N5817 Schottky Alternative“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
partlist.txt
50.165 123.5075) R270 QG1 25 MHz DIL14S crystal (11.7475 43.4975) R0 QG2 25 MHz DIL14S crystal (52.705 103.505) R90 R1 10k 0207/7 rcl (38.1 21.59) R270 R2 330 0207/7 rcl (52.3875 57.785) R90 R3 10k M1206 rcl (9.525 20.0025) MR180 R4 10k 0207/7 rcl (49.2125 57.785) R270 R5 10k M1206 rcl (26.035 16.1925) MR180
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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Datei
rfm12.inc
Configuration Setting ldi YH, 0x80 ; Enable Receiver, Enable Tranceiver ldi YL, 0xd8 ; 433MHz, 12,0pF rcall rfm_com_send ; Power Management ldi YH, 0x82 ; Enable Receiver, BaseBandBlock, Synthesizer, Crys. Oszillator (auch für->), ext. Clock, Wake up ldi YL, 0xd8 ; Disable et, Low Bat rcall rfm_com_send
in „RFM12 Statusabfrage“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Tiny_Lighthouse.c
mains frequency and a timer running with the 20ms period with PWM for generating the trigger pulse F_CPU = 1600000 Hz as the Tiny runs in ATTIny15 compatibility mode */ #include <avr/io.h> #include <avr/eeprom.h> #include <avr/interrupt.h> #include <avr/pgmspace.h> #include <util/delay.h> typedef struct
in „LED Fader mit NE555 fadet nicht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.LST
StartTimer(uint16_t us) 62 { 63 1 EA=0; 64 1 TR0=0; 65 1 //TCON=0; 66 1 CKCON |= 0x08; 67 1 //TMOD &= ~0x0F; 68 1 //TMOD |= 0x01; // 16 bit timer 69 1 70 1 // us = 0xFFFF-((us-5)<<2)+3; 71 1 // us = 0x8F00; 72 1 // us = 0xFFDB; 73 1 74 1 // us*4 = us<<2 75 1 //TL0 = us<<2; 76 1 //TH0 = us>>6; 77 1 78 1 TL0
in „CY7C68013A Programm verhält sich merkwürdig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
adc101s051-q1_1_.pdf
IN = 100 kHz, −0.02 dBFS Intermodulation Distortion, Second V = +5.25V A −83 dB IMD Order Terms a = 103.5 kHz, b = 113.5 kHz Intermodulation Distortion, Third Order VA= +5.25V Terms f = 103.5 kHz, f = 113.5 kHz −82 dB a b VA= +5V 11 MHz FPBW -3 dB Full Power Bandwidth VA= +3V 8 MHz ANALOG INPUT CHARACTERISTICS
in „Ausgangsstrom MISO ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MTA_uniVAL_Technical_Data_Sheet_v00__3_.pdf
Natural PBT-GF20 Raw or tin plated PSU Raw 104 2.5 1155 30 Green PBT-GF20 Raw or tin plated PSU Raw 103 4.0 1843 40 Orange PBT-GF20 Raw or tin plated 101 6.0 2880 *Calculated from breaking capacity test. OVERALL DIMENSIONS MELTING TIME AND CURVE 19 4.5 Operating time limits: Melting time graph at 23°C
in „Akkuanwendung Absicherung Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
display_lib.c
, 0x49, 0x3A, // G 71 0x7F, 0x08, 0x08, 0x08, 0x7F, // H 72 0x00, 0x41, 0x7F, 0x41, 0x00, // I 73 0x30, 0x40, 0x40, 0x40, 0x3F, // J 74 0x7F, 0x08, 0x14, 0x22, 0x41, // K 75 0x7F, 0x40, 0x40, 0x40, 0x40, // L 76 0x7F, 0x02, 0x0C
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PDF
AN-1819.pdf
C4532X7R2A225KT TDK 2 C6, C8 0.1 µF, 100V, X7R SMD 0805 GCM21BR72A104KA37L MURATA 2 C7, C20 1 µf, 25V, X7R SMD 0805 GCM21BR71E105KA56L MURATA 2 C9, C10 47 µF, 16V, X5R SMD 1210 ECJ-4YB1C476M PANASONIC 2 C11, C12 0.47 µF, 25V, X7R SMD 0805
in „Bitte um Hilfe beim Layout Buck-Boost LM5118“ · Platinen ·
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Datei
test_O1.asm
RTC_WKUP_IRQHandler 080002d0 w F .text 00000004 ETH_WKUP_IRQHandler 080002d0 w F .text 00000004 SPI2_IRQHandler 080002d0 w F .text 00000004 OTG_HS_EP1_IN_IRQHandler 080002d0 w F .text 00000004 MemManage_Handler 080001f4 g F .text 00000044
in „C++ Exceptions mit gcc-arm-none-eabi“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test_O2.asm
RTC_WKUP_IRQHandler 080002d0 w F .text 00000004 ETH_WKUP_IRQHandler 080002d0 w F .text 00000004 SPI2_IRQHandler 080002d0 w F .text 00000004 OTG_HS_EP1_IN_IRQHandler 080002d0 w F .text 00000004 MemManage_Handler 080001f8 g F .text 00000040
in „C++ Exceptions mit gcc-arm-none-eabi“ · Mikrocontroller und Digitale Elektronik ·
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Datei
BASIC31A.A51
lcall X14a1 lcall X0edb ljmp X0ce7 ; X1015: lcall X0ea6 lcall X194c cjne a,#0ffh,X1020 setb c X101f: ret ; X1020: jnz X1028 clr c setb 24h.4 X1025: ljmp X0ebc ; X1028: anl a,#0bh jz X101f mov dptr,#01743h jnb acc.0,X1035 mov dptr,#017fch X1035: jnb acc.1,X103b mov dptr,#01f88h X103b: ljmp X1887 ; lcall
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Infineon-IPD025N06N-DS-v02_05-EN.pdf
Values Parameter Symbol Unit Note / Test Condition Min. Typ. Max. Input capacitance Ciss - 5200 6500 pF VGS0 V, V =DS V, f=1 MHz Output capacitance Coss - 1200 1500 pF VGS0 V, V =DS V, f=1 MHz Reverse transfer capacitance Crss - 48 96 pF VGS0 V, V =DS V, f=1 MHz Turn-on delay time d(on) - 16 - ns VDD30
in „N-Channel Mosfet gesucht - IPD025N06N“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
AVRootloader.asm
include "ATxmega64A1def.inc" ; ATxmega64A1 ;.include "ATxmega64A3def.inc" ; ATxmega64A3 ;.include "m103def.inc" ; ATmega103 ;.include "tn10def.inc" ; ATtiny10 ;.include "tn11def.inc" ; ATtiny11 ;.include "tn12def.inc" ; ATtiny12 ;.include "tn15def.inc" ; ATtiny15 ;.include "tn22def.inc" ; ATtiny22 ;.include
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Datei
AVRootloader.asm
include "ATxmega64A1def.inc" ; ATxmega64A1 ;.include "ATxmega64A3def.inc" ; ATxmega64A3 ;.include "m103def.inc" ; ATmega103 ;.include "tn10def.inc" ; ATtiny10 ;.include "tn11def.inc" ; ATtiny11 ;.include "tn12def.inc" ; ATtiny12 ;.include "tn15def.inc" ; ATtiny15 ;.include "tn22def.inc" ; ATtiny22 ;.include
in „Bootloader von Hagen - Port toggeln während des Flashens“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Progr.c
anzeigen]"; const char menu_101[] = " Blech 01: "; const char menu_102[] = " Blech 02: "; const char menu_103[] = " Blech 03: "; const char menu_104[] = " Blech 04: "; const char menu_105[] = " Blech 05: "; const char menu_106[] = " Blech 06: "; const char menu_107[] = " Blech 07: "; const char menu_108[] =
in „const char *text in C Struktur zur Laufzeit ändern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
e-dl-ps.txt
-1979-06-v-102/Elektor_1979_06%20-%20V102.pdf" ,"https://archive.org/download/elektor-1979-07-08-v-103-104/Elektor_1979_07-08%20-%20V103-104.pdf" ,"https://archive.org/download/elektor-1979-09-v-105/Elektor_1979_09%20-%20V105.pdf" ,"https://archive.org/download/elektor-1979-10-v-106/Elektor_1979_10%20
in „Elektor-Hefte Jahrgang 1985/86/87“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tasse_tee_48.c
0x8014, 0x2604, 0x1509, 0x2827, 0x924A, 0xB90B, 0x030C, 0x254A, 0xE794, 0xE3C4, 0x8E33, 0x068E, 0x103D, 0x8404, 0x654D, 0x0014, 0x6290, 0xFFFF, 0xFDFF, 0x1B85, 0x75F2, 0xB519, 0x9775, 0x2C96, 0xB158, 0x5F11, 0x5571, 0x0000, 0x6178, 0x35F4, 0xD863, 0x6325, 0x35F1, 0xF763, 0x3585, 0x1012, 0x0D17, 0x5F26
in „RGB Bitmap im MCU in C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FIN41_FIN.pdf
Schaltspiele —/30·10 6 —/30·10 6 —/30·10 6 Elektrische Lebensdauer AC1 Schaltspiele 150 · 10 3 80 · 103 70 · 103 Ansprech-/Rückfallzeit (incl. Prellen) ms 7/8 7/8 7/8 Isolationskoordination EN 61810-5 3,6 kV/3 3,6 kV/3 3,6 kV/3 Spannungfestigkeit Spule/Kontakte (1,2/50µs) 6 kV (8 mm) 6 kV (8 mm) 6 kV
in „MC für Motoransteurung programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
schematic.pdf
MSEL1 94 SDRAM_WE_n 16 CS NC EP4CE10E22C8 27 GND GND 118 62 MSEL0 SDRAM_CAS_n 17 WE 15 SDRAM_DQML f b 41 GND GND 123 134 VCCIO4 56 18 F_TMS SDRAM_RAS_n 18 CAS DQML 39 SDRAM_DQMH g U1B 48 GND GND 131 116 VCCINT VCCIO4 TMS 16 F_TCK R7 4.7k RAS DQMH 28 SDRAM_DQ1 57 GND GND 140 102 VCCINT 47 TCK 20 F_TDO
in „Sequentielle Anweisung: Takt wird nicht richtig verarbeitet“ · FPGA, VHDL & Co. ·
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PDF
Cyclone4_schematic_v200.pdf
MSEL1 94 SDRAM_WE_n 16 CS NC EP4CE10E22C8 27 GND GND 118 62 MSEL0 SDRAM_CAS_n 17 WE 15 SDRAM_DQML f b 41 GND GND 123 134 VCCIO4 56 18 F_TMS SDRAM_RAS_n 18 CAS DQML 39 SDRAM_DQMH g U1B 48 GND GND 131 116 VCCINT VCCIO4 TMS 16 F_TCK R7 4.7k RAS DQMH 28 SDRAM_DQ1 57 GND GND 140 102 VCCINT 47 TCK 20 F_TDO
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PDF
LTC4365_Eval-Board.pdf
Current Limiting, Diode, SOD-80 Central Semi. Corporation, CCLM2000 2 0 C1 (OPT) Capacitor, X5R, 4.7µF, 50V, 20%, 1210 Taiyo Yuden, UMK325BJ475MM-T 3 0 C2 (OPT) Capacitor, Alum, 47µF, 35V, 10%, OSCON-CE-6Sanyo, 35CE47AX 4 0 C3 (OPT) Capacitor, X5R, 10µF, 25V, 10%, 1210 Taiyo Yuden, TMK325BJ106KM 5 2 D1
in „LTC4365 - FAULT-Pin current sink?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
schematic_v200.pdf
MSEL1 94 SDRAM_WE_n 16 CS NC EP4CE10E22C8 27 GND GND 118 62 MSEL0 SDRAM_CAS_n 17 WE 15 SDRAM_DQML f b 41 GND GND 123 134 VCCIO4 56 18 F_TMS SDRAM_RAS_n 18 CAS DQML 39 SDRAM_DQMH g U1B 48 GND GND 131 116 VCCINT VCCIO4 TMS 16 F_TCK R7 4.7k RAS DQMH 28 SDRAM_DQ1 57 GND GND 140 102 VCCINT 47 TCK 20 F_TDO
in „Board EP4CE6E22C8N Altera mit Quartus2 13 ansprechen“ · FPGA, VHDL & Co. ·
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PDF
hy-stm32_schematic.pdf
2 3V3 R16 D1 D2 D3 D4 C7 C10 7 8 PC9 10K 1K 1 1 POWER 1 POWER 1 POWER 1 POWER Title 2 2C8 2C9 2 10uF 8 9 GND PC11 1 R13 2 2 2 2 2 2 10uF 1104 1 1104 9 1 2 2 C11 10 10 10K 1 2 2 2 2 R14 22 2S51 1 0.01uF K K K K Size Number Revision GND GND GND CON10 PD2 1 1 2 2 2 B GND GND 4K7 RST GND GND GND GND GND Date: 3-Apr-2011 Sheet of File: F:\PCB\HY-STM32F103_64P.ddb Drawn By:
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IHW20N120R2.pdf
circuit in Figure E) Power Semiconductors 7 Rev. 1.2 July 06 IHW20N120R2 Soft Switching Series Ciss 1nF E G 240V T O 10V 960V V C R N T I I C M A - A100pF T C A 5V c Coss G ,E G V Crss 0V0nC 50nC 100nC 150nC 10pF 0V 10V 20V Q GE,GATE CHARGE VCE, COLLECTOR -EMITTER VOLTAGE Figure 17. Typical gate charge
in „IGBT Vergleichstyp“ · Mikrocontroller und Digitale Elektronik ·
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bmpm_v2_1c_schematic.pdf
R6D D4 YELLOW LED0 A C 74LVC2T45 100n GND GND <- DIR = GND -> DIR = VCC GND MCU TPWR U3 +3V3 STM32F103CBUx R9 +5V 4k7 10 PA0-WKUP/ADC1_IN0/ADC2_IN0/SYS_WKUP/TIM2_CH1/TIM2_ETR/USART2_CTS PB0/ADC1_IN8/ADC2_IN8/TIM1_CH2N/TIM3_CH3 18 1 iSWDIO_DIR iTMS_DIR 11 19 PWR_BR P7 PA1/ADC1_IN1/ADC2_IN1/TIM2_CH2/
in „MOSFET Ersatztypen für DMG1024 u. DMG1023 gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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MJ2500-3000.pdf
I10,000 TJ=150⋅C N1000 A R T 5000 U N C 500 R 2000 25⋅C A U N 300 C 1000 I C – 200 , 500 L T =25⋅C F M 100 C h S VCE =3.0Vdc 200 –55⋅C V =3.0Vdc E IC=5.0Adc CE h 100 50 50 30 0.01 0.02 0.05 0.1 0.2 0.5 1.0 2.0 5.0 10 103 104 10 106 I ,COLLECTORCURRENT(AMP) f,FREQUENCY(Hz) C Figure 2. DC Current Gain
in „Netzteilschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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K5011627391.pdf
=100 Ω,CL=5pF f=65MHz 35 43 mA VCC =3.3V, RS=CC f=85MHz 39 47 mA Transmitter Supply Worst Cace Pattern TCCW Current RL=100 Ω,CL=5pF f=65MHz 31 38 mA VCC =3.3V, RS=GND f=85MHz 35 42 mA Worst Cace Pattern I Transmitter
in „Handydummy (Attrappe)mit richtigem Display 10Zoll - u.a.Motorola Xoom“ · Mikrocontroller und Digitale Elektronik ·