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Datei
Fehlersuche_Grafana2.txt
pi@raspberrypi:/var/log/grafana $ ls -la insgesamt 20 drwxr-xr-x 2 grafana grafana 4096 Dez 21 18:30 . drwxr-xr-x 12 root root 4096 Dez 22 06:25 .. -rw-r----- 1 grafana grafana 10623 Dez 21 21:48 grafana.log -rw-r----- 1 grafana grafana
in „Hargassner / Rennergy Touchtronic Netzwerkanbindung/Visualisierung“ · Haus & Smart Home ·
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PDF
irlz34n.pdf
See Fig. 10 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 ––– 880 ––– VGS = 0V C Output Capacitance ––– 220 ––– pF V = 25V oss DS Crss Reverse Transfer Capacitance –––
in „IRLZ34N anschliessen ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS_IRLZ44N-IR.pdf
1.1Ω, See Fig. 10 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 C Input Capacitance 1700 V = 0V iss GS Coss Output Capacitance 400 pF VDS = 25V C Reverse Transfer Capacitance 150 = 1.0MHz, See Fig. 5 rss
in „IRLZ44N Logic Level? Welcher Parameter?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf3205.pdf
10 R f GS Between lead, D LD Internal Drain Inductance ––– 4.5 ––– 6mm (0.25in.) nH G from package LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 3247 ––– VGS = 0V Coss Output Capacitance ––– 781 ––– VDS = 25V Crss Reverse Transfer Capacitance ––– 211
in „Erzeugt ein 9V-Printtrafo mehr als 750V?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irl2203n.pdf
Fig. 10 L Internal Drain Inductance ––– 4.5 ––– Between lead, D D 6mm (0.25in.) nH G from package LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 3290 ––– VGS = 0V Coss Output Capacitance ––– 1270 ––– VDS= 25V Crss Reverse Transfer Capacitance ––– 170
in „Saito Pro Charger Batterieladegerät - Mikrocontroller ATmel ATTINY26L defekt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRLZ44N-IR_Reichelt.pdf
1.1Ω, See Fig. 10 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 C Input Capacitance 1700 V = 0V iss GS Coss Output Capacitance 400 pF VDS = 25V C Reverse Transfer Capacitance 150 = 1.0MHz, See Fig. 5 rss
in „PWM-Drehzahlregelung Wasserpumpe mit DC bürstenloser Motor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irfp260n.pdf
10V f GS Between lead, D LD Internal Drain Inductance ––– 5.0 ––– 6mm (0.25in.) nH G from package LS Internal Source Inductance ––– 13 ––– and center of die contact S Ciss Input Capacitance ––– 4057 ––– VGS = 0V C Output Capacitance ––– 603 ––– pF V = 25V oss DS Crss Reverse Transfer Capacitance –––
in „Strom bei 50 A begrenzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irl2203npbf.pdf
4.5V, See Fig. 10 L Internal Drain Inductance 4.5 Between lead, D D 6mm (0.25in.) nH G from package LS Internal Source Inductance 7.5 and center of die contact S Ciss Input Capacitance 3290 VGS = 0V Coss Output Capacitance 1270 VDS= 25V Crss Reverse Transfer Capacitance 170 pF = 1.0MHz, See Fig. 5 EAS
in „IRL2203N defekt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Infineon-IRFZ44N-DataSheet-v01_01-EN.pdf
. 10 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 ––– 1470 ––– VGS = 0V C Output Capacitance ––– 360 ––– V = 25V oss DS Crss Reverse Transfer Capacitance ––– 88
in „Mosfet IRFZ44N 12V schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLIZ44N_IR.pdf
1.1Ω, See Fig. 10 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 C Input Capacitance 1700 V = 0V iss GS C oss Output Capacitance 400 VDS = 25V C Reverse Transfer Capacitance 150 pF = 1.0MHz, See Fig. 5 rss
in „Toggle Schaltung mit NE555 schaltet ein, aber nicht aus“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
infineon-irf1010e-mosfet.pdf
See Fig. 10 Between lead, D LD Internal Drain Inductance ––– 4.5 ––– nH 6mm (0.25in.) from package G LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 3210 ––– VGS = 0V Coss Output Capacitance ––– 690 ––– VDS= 25V Crss Reverse Transfer Capacitance ––– 140
in „DC Wandler wiederbeleben“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A_Design_of_High_Speed_and_Real-time_DSO_Based_on_FPGA.pdf
t250MH~!*Itf 39 04.24*:lGJ1OOMH~!*00 39 04.26~2B:1FFT~~*R~ 41 04.27 ~~fi'l~j~u10B4FFT~'~J5FB®ii~ 42 05.1GPlB-~gff\~Äj~1~o 44 05.2GPI~IJP-J1!00 46 05.3LlJ~ICO 47 05.4LJ}~J~"00 48 05.5TJJ~ICI~ 48 05.61t1mt:J!BT }~1J.0 49 05.7:~1f~FBT}M1i:0 49 05.8 HJ jIC~I 50 05.9SHJ j1iO 50 05.10ABjf:7",O 51 05.11ABlJ~1J~~ 52 05.12GPI~ IJJJAM~*ml~ 53 05.13t~t:J1iR 53 06.1~jB*1!HfPCB;f& 54 06.2r~'16rt&1.t:IC~ 55 06.3~fi!f~L~JmJt&:R~ 55 06.4fi*"*J:!:'!&1~A !:~t~ 56 06.5tj(tJJdfFPGA*t&I'tJ!t&11.!l 57 06.6!WAr).BVrj·FPG~~<!&J!i
in „Oszilloskop - SoC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TEA1716T.pdf
OCR/OCP-HBC (pin SNSCURHBC) V ocr(HBC) HBC overcurrent regulation voltage positive level; HS on + HS-LS +0.45 +0.50 +0.55 V non-overlap time negative level; LS on + LS-HS 0.55 0.50 0.45 V non-overlap time Vocp(HBC) HBC overcurrent protection voltage positive level; HS on + HS-LS +1.6 +1.75 +1.9 V non-overlap time negative level; LS on + LS-HS 1.9 1.75 1.6 V non-overlap time bstc(SNSCURHBC)max maximum boost V SNSBOOST = 1.8 V compensation current on source current; VSNSCURHBC = 0.5 V - 175 - A pin SNSCURHBC sink current; VSNSCURHBC
in „Reparatur Schaltnetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
top247.pdf
SOURCE or CONTROL Pin). + + 2 MΩ VUV= R LSx UV 2 MΩ VOV = IOVx RLS For Value Shown For Values Shown R LS VUV= 100 VDC R LS VOV = 450 VDC DC DC 22 kΩ Input Input 30 kΩ Voltage Voltage 1N4148 D M D L CONTROL CONTROL 6.2 V C C S - S - PI-2510-040501 PI-2620-040501 Figure 19. Line-Sensing for Overvoltage Only
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
top247.pdf
SOURCE or CONTROL Pin). + + 2 MΩ VUV= R LSx UV 2 MΩ VOV = IOVx RLS For Value Shown For Values Shown R LS VUV= 100 VDC R LS VOV = 450 VDC DC DC 22 kΩ Input Input 30 kΩ Voltage Voltage 1N4148 D M D L CONTROL CONTROL 6.2 V C C S - S - PI-2510-040501 PI-2620-040501 Figure 19. Line-Sensing for Overvoltage Only
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
U13843EU3V0AN00.pdf
1A08 1A10 1000 Divider RV1xx) Panel Select AA800000 8 46 46 46 5 LCD Panel ControlAA800002 0 5 5 5 E05 (Note 2) Power Mode AA800004 xxxx xxxx 1 1 xxxx Control MCLK Enable AA800006 1 1 1 1 1 VCLK Enable AA800008 1 1 1 1 1 Video FIFO/ AA80000A 8 8 8 8 8 Memory Interface Pixel Adjustment/AA80000C F0 F0 A0
in „Controller für Graphik LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
cm6206_2_3.pdf
VOL_CF_, VOL_LFE_, VOL_LS_, VOL_RS_, VOL_SL_, VOL_SR_. The volume control is in linear scale. 7.2 ADC Volume Control Note: VOL_*_ stands for VOL_REC_L_ and VOL_REC_R_. The volume control is in log scale. USB Request Data USB
in „USB Stereo Eingang Mikro oder line-in“ · Mikrocontroller und Digitale Elektronik ·
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PDF
cm6206_2_3.pdf
VOL_CF_, VOL_LFE_, VOL_LS_, VOL_RS_, VOL_SL_, VOL_SR_. The volume control is in linear scale. 7.2 ADC Volume Control Note: VOL_*_ stands for VOL_REC_L_ and VOL_REC_R_. The volume control is in log scale. USB Request Data USB
in „PC Sound-Hardware: CD-Laufwerk“ · PC Hard- und Software ·
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PDF
CM6206_Datasheet__v2.3_1_.pdf
VOL_CF_, VOL_LFE_, VOL_LS_, VOL_RS_, VOL_SL_, VOL_SR_. The volume control is in linear scale. 7.2 ADC Volume Control Note: VOL_*_ stands for VOL_REC_L_ and VOL_REC_R_. The volume control is in log scale. USB Request Data USB
in „USB-Soundkarte zu einem Spannungslogger umbauen, wie die Eingänge schützen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TC1797_UM_v1.1.pdf
32-Bit TC1797 32-Bit Single-Chip Microcontroller User’s Manual V1.1 2009-05 Microcontrollers Edition 2009-05 Published by Infineon Technologies AG 81726 Munich, Germany © 2009 Infineon Technologies AG All Rights Reserved. Legal Disclaimer The information given in this document
in „TC1797 - keine Datenblätter?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel_32uc.pdf
TDO 17 PB31 42 PA17 67 VDDIO 92 TDI 18 RESET_N 43 PA18 68 VDDIO 93 PC04 19 PA00 44 PA19 69 GND 94 PC05 20 PA01 45 PA20 70 PB02 95 PB15 21 GND 46 VBUS 71 PB03 96 PB16 22 VDDCORE 47 VDDIO 72 PB04 97 VDDCORE 13 AT32UC3A Table 6-1. TQFP100 Package Pinout 23 PA02 48 DM 73 PB05 98 PB17 24 PA03 49 DP 74 PB06
in „V: ATMEL 32UC3A0512-U“ · Markt ·
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Datei
lcd_io1.h
driver you can select from 4 different I/O modes. 1) MODE 2 - 2 pin I/O mode with an additional 74LS174 (Lcd reading not possible). 2) MODE 3 - I2C connection with the use of a PCF8574 (Lcd reading or not can be selected). 3) MODE 6 - 6 or 7 pin I/O mode (6 pin when reading is not needed, 7 if lcd reading
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Datei
lcd_io1.h
driver you can select from 4 different I/O modes. 1) MODE 2 - 2 pin I/O mode with an additional 74LS174 (Lcd reading not possible). 2) MODE 3 - I2C connection with the use of a PCF8574 (Lcd reading or not can be selected). 3) MODE 6 - 6 or 7 pin I/O mode (6 pin when reading is not needed, 7 if lcd reading
in „LCD I2C Bibliothek“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Metex_M3610D-3650D_text.pdf
PTE.LTD B 80 JACK TERMINAL M-3850 ea ILSHIM PRECISION CO. KOREA HHI SAMSUNG DISPLAY DEVICES 81 LC.D, LS - 0725A ea 1 CO. LTD. KOREA 82 L.C.D. BASE MS-9150 ea 1 DAEHAN PRECISION CO. .LTD 83 WINDOW M-3610D ea 1 DAEHAN PRECISION CO. .LTD 84 GROUND POLE M - 36CR ($6 X 4.0) ea 1 ILSHIM PRECISION CO. 85 SHIELD
in „Voltcraft M-3610D (Metex) reparieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ad420_datasheet.pdf
Current Output 16-Bit Resolution and Monotonicity VCC 60.012% Max Integral Nonlinearity VLL REFERENCE 60.05% Max Offset (Trimmable) 4kV 40V 60.15% Max Total Output Error (Trimmable) REF OUT AD420 BOOST Flexible Serial Digital Interface (3.3 MBPS) On-Chip Loop Fault Detection REF IN DATA OUT CLOCK On-Chip 5
in „Suche AD420 in SMD Format“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT91SAM7A3-EK.pdf
LED 1 SI 100K PA10 SPI1_SPCK 2 SCK 100NF DS5 PA7 SPI1_NPCS3 4 CS GND 7 MN5F YELLOW S11 C JPG 13/09/05 12 13 10 11 PB15 3V3 3 5 B JPG 10/03/05 S10 RESET WP A INIT EDIT JPG 08/12/04 MN5E R11 100K S12 REV MODIF. DES. DATE VER. DATE 74ALVC04 74ALVC04 WRITE PROTECT NRST NORMALLY OPEN AT91SAM7A3-EK SCALE 1
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Acrich2-Applicationnote.pdf
0.77 67.05 8 1.52 32.00 7 0.67 58.85 7 1.31 27.46 6 0.53 50.40 6 1.10 22.97 5 0.48 42.05 5 0.91 18.35 4 0.39 33.49 4 0.72 Table. 6 Recommended Rset Values, DT3001B IC version Voltage[V] Current [mA] Power [W] Rset
in „Surge Schutzbeschaltung am Netz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ChargePump_LM2664_40mA.pdf
pumped to V+. Since the anode 1 2 2 of C2is connected to ground, the output at the cathode of C equ2ls −(V+) when there is no load current. The output voltage drop when a load is added is determined by the parasitic resistance (R ds(on)of the MOSFET switches and the ESR of the capacitors) and the charge
in „Geregelte negative Spannung mit LM2664 und LP2980 - geht das überhaupt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1806121835_TOPPOWER-Nanjing-Extension-Microelectronics-TP5602_C80366.pdf
VIO 经分压电阻取 VIlmt 恒流设置电压有效范围 0 1 V 得 I VOUT(4.8V)最大电流 R =8.2mΩ,VIlmt=0.1V 2.8 3 3.2 A OUT MAX S Iout_LS 轻载停机电流门限 L=2.2uH(随电感正相关) 20 50 100 mA Fup 升压振荡频率 250 300 400 KHz DMAX 最大占空比 85% DMIN 最小占空比 0% 功率 NMOS1 逐周期限流 VLMTn 设计值 0.22 0.25 0.28 V 电压 电量 LED 显示周期 2.5 3 3.5 S Tdisp TP5602B 电量 LED 显示 长亮 S 周期 Tnoload
in „Prozessor mit Akkuzelle versorgen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
antenna-impedance-models.pdf
Foster’s 2nd Canonical Form with Small Losses Added Example Dipole C∞ = 5.44 pF C1 = 42.9 pF C2 = 5.05 pF C3 = 1.92 pF L0 = ∞ L1 = 24.9 µH L2 = 22.8 µH L3 = 21.4 µH R1 = 72.2 Ω R2 = 106 Ω R3 = 122 Ω Fits dipole impedance best near resonances Reference: Ramo, Whinnery, and Van Duzer, Fields and Waves in
in „Endstufe für schwankende Lastimpedanz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUK962R5-60E_NMOS.pdf
BUK962R5-60E N-channel TrenchMOS logic level FET 1 003aaf570 Zth(j-mb) = 0.5 (K/W) -1 0.2 10 0.1 0.05 p 10-2 P T 0.02 t t single shot p -3 T 10 10-6 10-5 10-4 10-3 10-2 10-1 t (s) 1 p Fig. 5. Transient thermal impedance from junction to mounting base as a function of pulse duration. 10. Characteristics
in „Kann der NMOS so kaputt gehen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LY_T670_EN.pdf
= f(t ); D: Duty cycle; T = 25 °C F p S 3 OHL01686 10 tP IF D =tP IF mA T T D =0.005 0.01 0.02 0.05 0.1 102 0.2 5 0.5 DC 1 10 -5 -4 -3 -2 -1 0 1 d 10 10 10 10 10 10 s 10 u tp i n c i D Version 1.2 | 2019-07-22 9 LY T670 Dimensional Drawing 9) 3.0(0.118) 2.1(0.083) 2.6(0.102) 1.7(0.067) 2.3(0.091)
in „Lämpchen bei CD Wechsler tauschen von rot auf bernsteinfarben“ · Platinen ·
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PDF
ARM_Procedure_Call_Standard_for_the_ARM_Architecture_V2.1.pdf
Clarifications. Compatible extensions. 1.1.2 Change History Issue Date By Change 1.0 30 October 2003 LS First public release. th 2.0 24 March 2005 LS Second public release. th 2.01 5 July 2005 LS Added clarifying remark following Table 5 – word-sized enumeration contains are int if possible (§7.1.3). 2.02
in „C und C++ kompatibilität“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CPU08RM.pdf
;positive or both neg. COMA ;Else one's complement A and X COMX ADD #1 ;Add 1 for 2's complement ;(LS byte) PSHA ;Save LS byte of result TXA ;Transfer unsigned MS byte of ;result ADC #0 ;Add carry result to complete ;2's complement TAX ;Return to X PULA ;Restore LS byte of result EXIT RTS ;Return * CPU08
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PDF
ISl6298.pdf
= 100kΩ C 0.25 R IREF E C 200 G 0.20 E R G 150 V IREF= 0 V H 0.15 VIREF= 0 V A C H 100 0.10 C 50 0.05 0 0.00 0 20 40 60 80 100 4.3 4.5 4.7 4.9 5.1 5.3 5.5 5.7 5.9 6.1 6.3 6.5 TEMPERATURE ( C) INPUT VOLTAGE (V) FIGURE 5. CHARGE CURRENT vs AMBIENT TEMPERATURE FIGURE 6. CHARGE CURRENT vs INPUT VOLTAGE 4
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PDF
AES-S6MB-LX9-G_SCH_RevC.PDF
3 4 5 6 U_04 - FPGA Bank 0 04 - FPGA Bank 0.SchDoc CLOCK_Y3 A A U_10 - FPGA 10_100 Ethernet PHY U_05 - FPGA Bank 1 10 - FPGA 10_100 Ethernet PHY.SchDoc 05 - FPGA Bank 1.SchDoc FPGA_ETH_RX_CLK FPGA_ETH_RX_CLK CLOCK_Y2 FPGA_ETH_RX_D0 FPGA_ETH_RX_D0 FPGA_ETH_RX_D1 FPGA_ETH_RX_D1 FPGA_ETH_RX_D2 FPGA_ETH_RX_D2
in „Pulse Generator nicht genau genug, brauche Hilfe“ · FPGA, VHDL & Co. ·
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PDF
K9F1G08U0B.pdf
. . #1 #48 + - + - 2 0 ) 0 . 5 1 0 . . 0(0 X A 0 2 0 8 . 4 . 84 1 0 1 0 0 9 . 0 0 0 #24 #25 1.00±0.05 0.05 MIN 0.039±0.002 0.002 Y 18.40±0.10 7 5 3 1.20 MAX T 0 . 0 0 0.047 5 1 0.724 ±0.004 + 0 + - . . 2 5 0 0 . 0 0~8° 0 0 0.45~0.75 ( 0.50 ) 0.018~0.030 0.020 4 www.DataSheet4U.com K9F1G08U0B FLASH MEMORY
in „stm32 sd-card und Nand flash“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irl2203ns.pdf
dt = 100A/fs on Forward Turn-On Time Intrinsic turn-on time is negligible (turn-on is dominated by LS+LD) Notes: This is a typical value at device destruction and represents Repetitive rating; pulse width limited by operation outside rated limits. max. junction temperature. ( See fig. 11 ) This is a
in „FETs - 5V steuerspannung - selbstleitend selbstsperrend“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RequiresAcrobat6-5.pdf
See Fig. 10 Between lead, D LD Internal Drain Inductance ––– 4.5 ––– nH 6mm (0.25in.) G from package LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 1800 ––– VGS = 0V C Output Capacitance ––– 350 ––– pF V = 25V oss DS Crss Reverse Transfer Capacitance ––
in „Power Mosfet Hexfet wie ansteuern ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irlr2905_1_.pdf
––– RD= 1.1, See Fig. 10 D L InternalDrainInductance ––– 4.5 ––– nH Betweenlead, D 6mm(0.25in.) G LS InternalSourceInductance ––– 7.5 ––– frompackage and center of die contact S C iss InputCapacitance ––– 1700 ––– VGS = 0V Coss OutputCapacitance ––– 400 ––– pF VDS= 25V Crss ReverseTransferCapacitance
in „Motortreiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRF8736.pdf
dt = 300A/µs ton Forward Turn-On Time Intrinsic turn-on time is negligible (turn-on is dominated by LS+LD) 2 www.irf.com IRF8736PbF 1000 1000 TOP 10V TOP 10V ) 5.0V ) 5.0V ( 100 4.5V ( 4.5V n 3.5V n 100 3.5V e 3.0V e 3.0V u 10 2.5V u 2.5V C BOTTOM 2.3V C BOTTOM 2.3V c c u u o 1 o 10 o o - - a 0.1 a r
in „IRF8736 - Was haltet Ihr davon?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRF3205S.pdf
See Fig. 10 4.5 Between lead, D LD Internal Drain Inductance ––– ––– 6mm (0.25in.) nH G from package LS Internal Source Inductance ––– 7.5 ––– and center of die contact S C iss Input Capacitance ––– 3247 ––– VGS = 0V C oss Output Capacitance ––– 781 ––– VDS = 25V C rss Reverse Transfer Capacitance –––
in „Mosfet Treiber TC4426 + IRF IRF3205S (Ersatz gesucht)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLU2905.pdf
––– RD= 1.1, See Fig. 10 D L InternalDrainInductance ––– 4.5 ––– nH Betweenlead, D 6mm(0.25in.) G LS InternalSourceInductance ––– 7.5 ––– frompackage and center of die contact S C iss InputCapacitance ––– 1700 ––– VGS = 0V Coss OutputCapacitance ––– 400 ––– pF VDS= 25V Crss ReverseTransferCapacitance
in „High Power LED Driver“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRF_1404_S.pdf
= 95A d(off) Turn-Off Delay Time ––– 72 ––– RG= 2.5 f Fall Time ––– 26 ––– R D 0.21 Between lead, LS Internal Source Inductance ––– 7.5 ––– nH and center of die contact Ciss Input Capacitance ––– 7360 ––– VGS= 0V Coss Output Capacitance ––– 1680 ––– VDS= 25V Crss Reverse Transfer Capacitance ––– 240
in „Geiger Counter Sparkfun“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irl1404.pdf
–– 37 ––– R = 0.25Ω f D L Internal Drain Inductance 4.5 Between lead, D D ––– ––– nH 6mm (0.25in.) LS Internal Source Inductance ––– 7.5 ––– from package G and center of die contact S Ciss Input Capacitance ––– 6590 ––– VGS = 0V C Output Capacitance ––– 1710 ––– pF V = 25V oss DS Crss Reverse Transfer
in „Geiger Counter Sparkfun“ · Mikrocontroller und Digitale Elektronik ·
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PDF
74hc595.PDF
TO6 V M54HC595F1R M74HC595M1R . PIN ANDFUNCTION COMPATIBLE M74HC595B1R M74HC595C1R WITH LSTTL 54/74LS595 PIN CONNECTIONS(top view) DESCRIPTION SHIFT54/REGISTERS/OUTPUTh speedLATCHES-BIT(3- STATE) fabricated in silicon C MOS technology. It has the same high speed performance of LSTTL combined with true
in „7 Segment Anzeige - SAA1064 + 4stellige Anzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dvm45_Rev2.2.pdf
RBI F 150 R10 11 V+ BUFF-OUT 6 47k 3 LT G 14R12 10M 0,1µF 1 V- INT-OUT 4 3 150 R24 STROBE 26 2 SN74LS47N 1k8 24 DIGI-GND T6 3 27 BC337 1 R20 ANA-COM O/R 28 8 7 6 5 B GND U/R GND GND 150 ON B GNDA GNDA GNDA GNDA GNDA +5V ICL7135CJI C3 R5 C4 2 1 2 3 4 X3-5 5 1µ/63 S JP4 27 1 2 3 4 MSTBA5 R11 R19 4 3 2
in „Projekt DVM 4,5 Digit aus Standardbauteilen mit automatischer Bereichsumschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irf_1404.pdf
R D 0.21 Between lead, D LD Internal Drain Inductance ––– 4.5 ––– nH 6mm (0.25in.) from package G LS Internal Source Inductance ––– 7.5 ––– and center of die contact S Ciss Input Capacitance ––– 7360 ––– VGS= 0V Coss Output Capacitance ––– 1680 ––– pF VDS= 25V Crss Reverse Transfer Capacitance ––– 240
in „Pulsschweisgerät mit Auto Batt Schaltungs Verbesserung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLB8748PBF.PDF
dt = 200A/µs ton Forward Turn-On Time Intrinsic turn-on time is negligible (turn-on is dominated by LS+LD) 2 www.irf.com IRLB8748PbF 1000 1000 VGS VGS TOP 10V TOP 10V 9.0V 9.0V A 5.5V A 5.5V t 4.5V t 4.5V e 4.0V e 4.0V u 100 3.5V u100 3.5V C BOTTOM 3.0V C BOTTOM 3.0V e e u u o o 3.0V - - - - i 10 3.0V
in „Funktionsprüfung MOSFET IRL B8748PbF“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTC_2400_24Bit-ADC.pdf
3.2 3.3 0 1 2 3 4 5 0 1 2 3 4 5 INPUT VOLTAGE (V) INPUT VOLTAGE (V) INPUT VOLTAGE (V) 2400 G04 2400 G05 2400 G06 Negative Input Extended Total Positive Input Extended Total Unadjusted Error (5V Supply) Unadjusted Error (5V Supply) Offset Error vs Reference Voltage 10 6 10 V = 5V V = 5V V = 5V VCC = 5V
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