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PDF
IRF3205.pdf
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 V 2 0 0 1 10 100 0 20 40 60 80 100 120 Q G Total Gate Charge (nC) VDS , Drain-to-Source
in „Hohe Ströme aus Akku Entladen ?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRFP_3703.pdf
Effective Transient Thermal Impedance, Junction-to-Case www.irf.com 5 IRFP3703 15V 6000 I J D m TOP 31A 5000 54A L DRIVER g BOTTOM 76A VDS e n 4000 R D.U.T h G +VDD n IAS - A l 20V v000 tp 0.01 A e l P000 e Fig 12a. Unclamped Inductive Test Circuit g 1000 , S A E 0 25 50 75 100 125 150 175 V (BR)DSS Starting
in „[Projekt] Einstellbares Netzteil 12V/60A auf 0,5-2,5V/250A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A100_IRF3415_IF.pdf
IRF3415PbF 6000 V = 0V, f = 1MHz 20 I = 22A CGS = C + C C SHORTED D Ciss= Cgs gd , ds ) V DS = 120V 5000 rss gd ( V DS = 75V Coss= Cds + Cgd e 16 V DS = 30V ) a p o ( 4000 V c e 12 a Ciss u c 3000 o a - a - 8 C t C 2000 Coss a , Crss S 4 1000 G V FOR TEST CIRCUIT 0 SEE FIGURE 13 1 10 100 0 0 40 80 120
in „Suche IR 513H“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irf3205.pdf
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 V 2 0 0 1 10 100 0 20 40 60 80 100 120 Q G Total Gate Charge (nC) VDS , Drain-to-Source
in „Erzeugt ein 9V-Printtrafo mehr als 750V?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
irfp260n.pdf
SHORTED V VDS = 160V 7000 C = C ( VDS = 100V rss gd g VDS = 40V 6000 Coss = ds + gd l 12 F o ( Ciss V c5000 c a u c4000 S 8 p o a Coss - ,3000 t C G 2000 , 4 Crss S V 1000 0 0 0 50 100 150 200 1 10 100 1000 Q , Total Gate Charge (nC) V , Drain-to-Source Voltage (V) G DS Fig 5. Typical Capacitance Vs. Fig
in „Strom bei 50 A begrenzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
bc847_p.pdf
collector - 6 V IC collector current (DC) - 100 mA I peak collector current single pulse; - 200 mA CM tp≤ 1 ms I peak base current single pulse; - 100 mA BM tp≤ 1 ms P tot total power dissipation T amb≤ 25 °C SOT23 [1]- 250 mW [1] SOT323 - 200 mW SOT416 [1]- 150 mW SOT883 [2] [-] 250 mW SOT54 [1]- 500 mW
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PDF
NXP_BC846_BC546_Series.pdf
open collector - 6 V C collector current - 100 mA I peak collector current single pulse; - 200 mA CM tp≤ 1 ms I peak base current single pulse; - 200 mA BM tp≤ 1 ms P total power dissipation T ≤ 25 °C [1] tot amb SOT23 - 250 mW SOT323 - 200 mW SOT416 - 150 mW SOT54 - 500 mW Tj junction temperature - 150
in „Und wieder eine kleine lustige Teilesucherei Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Weidezaun_S03_4093.pdf
D6 R10 10000uF 16V 16x30 2PC 2,80€/2 1,2-1,9_1,4J@1222000uF 16V 18x40 2PC 3,81€/2 2,6-4,2_3,2J@12VT TP1-100 2 9 HT7350-1 30V 2,5-5uA 5V 250mA TO92 SOT89 Ali, HT7550-1 n00mAIC2 SM4007 0,2+Ub6W 6800uF 16V 16x25mm LowESR -40/105°C (6800uF 25V 16x30 2PCS 3,41€/2) TP m 5 LP2950CT 30V 20uA TO92 1uF 5V+LEDrd
in „Weidezaun gegen Schnecken mit Netztrafo und Rohr DN160 für Hobbygärtner“ · Projekte & Code ·
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PDF
A500_EA0FP481-43SW-DB.pdf
180°; n1=3: 270°; 0 Benutzerwerte für Analogkanal nr=1..2 einstellen. 0 Jeweils 2 Analogwerten (0..5000mV) wird ein Benutzerwert max. Anzeigenumfang =0.00 Benutzerwerte / ESC V E nr Format NU 4 1/2 Stellen 19999 + Dezimalpunkt('.' oder ',') + evtl. Vorzeichen '-' zugeordnet. Skalierung einstellen String
in „eDIPTFT43 Ansteuerungsarten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
reni_v0.67.c
| +--- used (right) connector // | | | // v | v // +----\ v /----+ // | \-----/ | // | AUX | // | TP I/O | // | | // | O ML10 O | // | EC10 | // \ / // \ O / // \ USB / // +---------+ // A // | // +---------- USB connector // // // The PC sends commands down to the DX10 interface via pipe 0x01 and reads
in „Schreiben eines USB-Treibers mit libusb-win32“ · Softwareentwicklung ·
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PDF
Wirbelstromverluste_J_Biela_2011.pdf
,6 0.01A IP,Im,6= 0.029A ) IP,6= 0.03A p 0 p p # IP,Re,7 0.56A IP,Im,7= 0.39A ) IP,7= 0.68A Z (1+D)Tp/2 ◆ ✓ ◆ I P,AV G+ 4I P 4I P t cos 2⇡ ⌫t dt IP,Re,8 0.011A IP,Im,8= 0.01A ) IP,8= 0.014A Tp/2 2 DT p2 T p I = 0.27A I = 0.82A ) I = 0.86A "Z ✓ ◆ ✓ ◆ P,Re,9 P,Im,9 P,9 2 DT p2 4I P 4IP 2⇡ IP,Im,⇠= IP,AV G + t sin ⌫t dt+ Tp 0 2 DT p2 Tp 8 Z (1+D)T /2 ◆ ✓ ◆ # p 4I P 4I P 2⇡ I P,AV G+ 2 DT p2 t sin Tp ⌫t dt ] 4 q Tp/2 A Fourierapprox. 2 2 [ 0 ) I P,⇠= IP,Re,⌫+ IP,Im,⌫ (1.105) o S mit -4 ⇣ ⌘ U1N2 U 2 DTp/2 4I P N 2 N1 -8 N
in „Skineffekt 20A bei 5kHz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BJTransistor_2N2222A.pdf
25 ns toff turn-off time − 250 ns ts storage time − 200 ns tf fall time − 60 ns Note 1. Pulse test: tp≤ 300 s; δ ≤ 0.02. ndbook, full pagewidth VBB VCC RB RC V oscilloscopeprobe) o (probe) oscilloscope 450 450 V i R2 DUT R1 MLB826 Vi= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325
in „DC DC Verstärkung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRF4905.pdf
, C SHORTED D iss gs gd ds ) 6000 Crss = Cgd ( V DS = -44V Coss = Cds + Cgd e16 V = -28V ) a DS F 5000 o ( C iss V c e12 n 4000 r i C o a oss - p 3000 t C t 8 , a C 2000 G C rss ,S G4 1000 - FOR TEST CIRCUIT 0 A 0 SEE FIGURE 13 A 1 10 100 0 40 80 120 160 200 -VDS , Drain-to-Source Voltage (V) Q G Total
in „Frage zu Push Pull Abwärtswandler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2N2222_2222A.pdf
25 ns toff turn-off time − 250 ns ts storage time − 200 ns tf fall time − 60 ns Note 1. Pulse test: tp≤ 300 s; δ ≤ 0.02. ndbook, full pagewidth VBB VCC RB RC V oscilloscopeprobe) o (probe) oscilloscope 450 450 V i R2 DUT R1 MLB826 Vi= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325
in „Transistor mit Basistrom im µA-Bereich schalten?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2n2222-datasheet.pdf
25 ns toff turn-off time − 250 ns ts storage time − 200 ns tf fall time − 60 ns Note 1. Pulse test: tp≤ 300 s; δ ≤ 0.02. ndbook, full pagewidth VBB VCC RB RC V oscilloscopeprobe) o (probe) oscilloscope 450 450 V i R2 DUT R1 MLB826 Vi= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325
in „Oszi v. SUN Motortester zeigt nur kurz einen Punkt.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ths7316.pdf
93F7554 J8 31-5329-72RFX 15 J4, J5 2 CONNECTOR, RCA, JACK, R/A (CUI) RCJ-32265 (DIGI-KEY) CP-1446-ND 16 TP1, TP2, TP3 3 TEST POINT, RED (KEYSTONE) 5000 (DIGI-KEY) 5000K-ND 17 TP4, TP5 2 TEST POINT, BLACK (KEYSTONE) 5001 (DIGI-KEY) 5001K-ND 18 U1 1 IC, THS7316 D (TI) THS7316D 19 4 STANDOFF, 4-40 HEX, 0.625
in „Videopfad - LM1881 -Sync-Problem“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MC39I_AT_COMMANDS.pdf
(refer command AT+CSCS Select TE character set); type of address given by <tosca> <scts> GSM 03.40 TP-Service-Centre-Time-Stamp in time-string format (refer <dt>) <st> GSM 03.40 TP-Status in integer format <toda> GSM 04.11 TP-Destination-Address Type-of-Address octet in integer format (when first character
in „DTMF mit GSM Modem auswerten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ths4509.pdf
10 86.6 4 3 Vocm XFMR_ADT1−1WT 100 15 13 C2 R2 9 14 16 VEE R10 open 69.8 R6 open J7 348 VEE TP2 TP3 C14 C11 0.1 F 0.1 F Figure 93. THS4509 EVAL1 EVM Schematic Figure 94. THS4509 EVAL1 EVM Layer 1 through Layer 4 Copyright © 2005–2008, Texas Instruments Incorporated Submit Documentation Feedback
in „Pipeline A/D-Wandler ADS5240 Verständnisproblem Analoge Eingangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Weidezaun_S03_4093.pdf
D6 R10 10000uF 16V 16x30 2PC 2,80€/2 1,2-1,9_1,4J@1222000uF 16V 18x40 2PC 3,81€/2 2,6-4,2_3,2J@12VT TP1-100 VA-Wabendraht 0,5mm 1kg ca.700m 14,95€ 2 9 HT7350-1 30V 2,5-5uA 5V 250mA TO92 SOT89 Ali, HT7550-1 n00mAIC2 SM4007 0,2+Ub6W 6800uF 16V 16x25mm LowESR -40/105°C (6800uF 25V 16x30 2PCS 3,41€/2) TP
in „Weidezaun gegen Schnecken mit Netztrafo und Rohr DN160 für Hobbygärtner“ · Projekte & Code ·
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PDF
6N137.pdf
.) = 2.0V) 0 Level) 6N137, HCPL-2630 (RL= 350Ω) (Note 10) 10,000 M HCPL-2601, HCPL-2631 (Fig. 14) 5000 10,000 i / HCPL-2611 |VCM | = 400V 10,000 15,000 L Common Mode Transient (R = 350Ω) (I = 7.5 mA, V (Max.) = 0.8V |CM | 10,000 V/µs o L F OL L i Immunity (at Output Low 6N137, HCPL-2630 |VCM | = 50V (Peak) c Level) G HCPL-2601, HCPL-2631 (T A 25°C)(Note 11)(Fig. 14) 5000 10,000 t HCPL-2611(T A 25°C) |VCM | = 400V 10,000 15,000 e p o c u p e s 3 www.fairchildsemi.com Single-channel: 6N137, HCPL-2601, HCPL-2611 Dual-Channel: HCPL-2630, HCPL-2631 Rev. 1.0.3 i g Transfer
in „Optokoppler mit TTL/Schmitt-Trigger?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HCPL-263.pdf
.) = 2.0V) 0 Level) 6N137, HCPL-2630 (RL= 350Ω) (Note 10) 10,000 M HCPL-2601, HCPL-2631 (Fig. 14) 5000 10,000 i / HCPL-2611 |VCM | = 400V 10,000 15,000 L Common Mode Transient (R = 350Ω) (I = 7.5 mA, V (Max.) = 0.8V |CM | 10,000 V/µs o L F OL L i Immunity (at Output Low 6N137, HCPL-2630 |VCM | = 50V (Peak) c Level) G HCPL-2601, HCPL-2631 (T A 25°C)(Note 11)(Fig. 14) 5000 10,000 t HCPL-2611(T A 25°C) |VCM | = 400V 10,000 15,000 e p o c u p e s 3 www.fairchildsemi.com Single-channel: 6N137, HCPL-2601, HCPL-2611 Dual-Channel: HCPL-2630, HCPL-2631 Rev. 1.0.3 i g Transfer
in „Logic Gate Optocoupler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A500_6N137.pdf
.) = 2.0V) 0 Level) 6N137, HCPL-2630 (RL= 350Ω) (Note 10) 10,000 M HCPL-2601, HCPL-2631 (Fig. 14) 5000 10,000 i / HCPL-2611 |VCM | = 400V 10,000 15,000 L Common Mode Transient (R = 350Ω) (I = 7.5 mA, V (Max.) = 0.8V |CM | 10,000 V/µs o L F OL L i Immunity (at Output Low 6N137, HCPL-2630 |VCM | = 50V (Peak) c Level) G HCPL-2601, HCPL-2631 (T A 25°C)(Note 11)(Fig. 14) 5000 10,000 t HCPL-2611(T A 25°C) |VCM | = 400V 10,000 15,000 e p o c u p e s 3 www.fairchildsemi.com Single-channel: 6N137, HCPL-2601, HCPL-2611 Dual-Channel: HCPL-2630, HCPL-2631 Rev. 1.0.3 i g Transfer
in „Optokoppler Verstärkung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
vish_ILQ2.pdf
CONDITION SYMBOL MIN. TYP. MAX. UNIT Common mode rejection, output high V = 50 V , R = 1 k I = 0 mA CM 5000 V/μs CM P-P L F H Common mode rejection, output low VCM = 50 VP-P, RL= 1 k F = 10 mA CM L 5000 V/μs Common mode coupling capacitance CCM 0.01 pF TYPICAL CHARACTERISTICS (T = 25 °C, unless otherwise
in „Optokoppler SPS 24V zu 5V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
asus-p701-unlocked.pdf
7. Change USB ESD diode for EMI request 2007/04/24 1. PC8054, PR6075 /X to N/A 8. Add Floating GND TP_GND and Spring TP1 & TP2 for EMI request ~ 2. Attansic L2 change to Atheros L2(pin to pin) 9. Change PM_VCOREL1, PM_VCOREL2 default level 3. LC1, LC33 /CAP/X to N/A 10. Add PQ48 to controll +3V_PE to
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PDF
P4SMA_LIF.PDF
Diodes Surface Mount – 400W > P4SMA series Soldering Parameters Reflow Condition -FBEoGSFF▯BTTFNCMZ t TP p -Temperature Min (T ) 150°C s(min) Ramp-up CTito Tl Zone Pre Heat -Temperature Max (T ) 200°C TL L P s(max) ) tL -Time (min to max) (t ) ▯▯▯o▯▯▯▯▯TFDT (Ts(max) s u Average ramp up rate (LiquidusTemp
in „Warum noch KFZ-Relais?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
CAPTURE.TXT
driver version 2.4.2 PPP BSD Compression module registered NET: Registered protocol family 24 PPPoL2TP kernel driver, V0.17 PPTP driver version 0.8.1 block2mtd: version $Revision: 1.1.1.1 $ nf_conntrack version 0.5.0 (256 buckets, 2048 max) ip_tables: (C) 2000-2006 Netfilter Core Team, Type=Restricted
in „Plunder von Pollin:WMDR-143N“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AM700_SM.pdf
CR11 R23 TP1 R28 TP4 C11 B Gain P5 C31 L3 CR12 J8 R41 CR13 R2 R3 U11 2 R40 R9 R19 C R34 R33 BRT 5 CR1 R12 R42 R15 R R11 R25 U7 C16 TP8 R10 U4 CR3 2 R8 8 R5 R35 C C TP9 TP9 R4 C22 C17 C5 R24 C4 R17 P1 8 R51 R43 TP8 R22 TP3 R R20 CR8 R27 R45 CR2 R44 CR9 0 CR5 CR4 TP3 R39 C C28 1 R38 GOffset TP10 TP10 U10 C R32 R31 TP5 R14 5 G Gain R TP7 2 R7 U6 1 TP5 R47 C C C L2 U13 1 C15 TP7 3 C C3 P2 C R16 CR6 R21 TP2 C33 CR7 R26 9
in „Tektronix AM700“ · Mikrocontroller und Digitale Elektronik ·
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PDF
uniTFT050-A.pdf
weißeLED-Beleuchtung EA uniTFT050-A Resistiver Touch,TFT 800x480Pixel,weißeLED-Beleuchtung EA uniTFT050-TP Kapazitiver Multitouch,TFT 800x480Pixel,weißeLED-Beleuchtung EA uniTFT050-TC ZUBEHÖR EA QUICKuni050-TP Quick-Startresistiv:A uniTFT050-TP undProgrammierboardEA 93998(siehe unten) Quick-Startkapa- EA
in „Probleme mit übertragung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_uniTFT_050-A.pdf
weißeLED-Beleuchtung EA uniTFT050-A Resistiver Touch,TFT 800x480Pixel,weißeLED-Beleuchtung EA uniTFT050-TP Kapazitiver Multitouch,TFT 800x480Pixel,weißeLED-Beleuchtung EA uniTFT050-TC ZUBEHÖR EA QUICKuni050-TP Quick-Startresistiv:A uniTFT050-TP undProgrammierboardEA 93998(siehe unten) Quick-Startkapa- EA
in „Display am Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PSPICE_MITSCHRIFT_ALLES_SS20908.pdf
4V 0 500n 500n {tp} {T}) RL1 2 0 1k RL2 3 0 1k E1 50 0 table {V(2,3)} = (0,0) (0.001,15) * *PWM-Signal fuer die jeweils zweite Halbperiode* * VS2 8 0 sin(0 14V {nennfreq} {tp}) VD2 91 0 PULSE(0 15V 0 {pulsb} {pulsb} 1u {1/takt}) S3 8 10 92 0 Schalter S4 91 9 92 0 Schalter VP2 92 0 PULSE(0 4V {tp} 500n 500n {tp} {T}) RL3 10 0 1k RL4 9 0 1k E2 120 0 table {V(10,9)} = (0,0) (0.001,15) .model Schalter vswitch (ron=1e-3 roff=1e9) * .ENDS PSpice – Vorlesung im SS 2008 ; Dipl.-Ing. Udo Schürmann Seite
in „Pspice Simulation“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FCPF11N60B.pdf
vs. Source Current and Temperature 6000 12 C = C + C (C = shorted) Coss ds+ gd ds V DS00V CrssCgd 5000 10 VDS250V ] VDS400V 4000 [ 8 ] g [ C l e oss V n 3000 e 6 i r c * 1. V= 0 V o p 2000 C iss 2. f = 1 MHz - 4 C t G C ,S 2 1000 rss G V * NoteD: I =11A 0 0 10-1 100 101 0 5 10 15 20 25 30 35 40 45 VDS
in „Kühlkörper Dimensionieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRF3205Z.pdf
Current www.irf.com 3 IRF3205ZS/L 6000 20 VGS = 0V, f = 1 MHZ ID= 66A Ciss = gs + gd, CdsSHORTED 5000 C = C V VDS = 44V rss gd e 16 VDS= 28V Coss = ds + gd g VDS= 11V F l ( 4000 V e Ciss e 12 n u i 3000 o a - a - 8 C 2000 t C G , G 4 1000 Coss V Crss 0 0 0 20 40 60 80 100 120 1 10 100 V , Drain-to-Source
in „Geiger Counter Sparkfun“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRLR7843C.pdf
Thermal Impedance, Junction-to-Case www.irf.com 5 IRLR/U7843CPbF 15V 6000 ) J ID ( TOP 8.6A L DRIVER g5000 V DS e 9.6A n BOTTOM 12A e RG D.U.T + h4000 - VDD n AS A l 20GS v3000 p 0.01 A s u Fig 12a. Unclamped Inductive Test Circuit P2000 l i S1000 V (BR)DSS S A tp E 0 25 50 75 100 125 150 175 Starting T
in „H-Brücke - 30A - MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET.pdf
l 12 V = 20V F 25000 o DS ( Ciss e c r n 20000 o i - 8 a t a 15000 e C a C G 10000 ,S 4 Coss G V 5000 Crss 0 0 0 50 100 150 200 250 300 350 400 450 1 10 100 QG Total Gate Charge (nC) V DS , Drain-to-Source Voltage (V) Fig 5. Typical Capacitance vs. Drain-to-Source Voltage Fig 6. Typical Gate Charge
in „LeistungsMosfet Kühlfläche als Drain-Anschluss nutzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FQB34P10.pdf
Current and Temperature 6500 12 Ciss gs gd dshorted) 6000 Coss ds gd 5500 Crss gd VDS-20V C ]10 V DS50V 5000 oss [ 4500 C e VDS-80V F iss t 8 [4000 ※ Notes: o s 1.GS=0V V c3500 2.f=1MHz c t3000 u 6 c C o p2500 rss - a2000 a 4 C G 1500 ,S 1000 VG2 - 500 ※ Note:D =-33.5A 0 10-1 10 10 0 0 20 40 60 80 100 VDSDrain-SourceVoltage
in „DC/DC Wandler Vin 15-50V, Vout 12V 9A!“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Sensirion_Humidity_SHT21_Datasheet_V4.pdf
Current, IDD 6 measuring 200 300 330 µA SHT21 Tape & Reel 1500 1-100645-01 sleep mode Tape & Reel 5000 1-100694-01 0.5 1.2 µW Power Dissipation 6 measuring 0.6 0.9 1.0 mW average 8bit 3.2 µW This datasheet is subject to change and may be amended Heater VDD = 3.0 V 5.5mW, DT = + 0.5-1.5°C without prior
in „Rechnung mit dem PIC16F“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B57164K_ENG_TDS.pdf
B57164K0104+000 150 k 2005 4600 ±3% B57164K0154+000 220 k 2007 4830 ±3% B57164K0224+000 330 k 2006 5000 ±3% B57164K0334+000 470 k 2006 5000 ±3% B57164K0474+000 + = Resistance tolerance J = ±5% K = ±10% Please read Cautions and warnings and Page 3 of 30 Important notesat the end of this document. Temperature
in „2,2 kOhm NTC-Widerstände“ · Markt ·
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PDF
40146F.pdf
. Typ. Max. Units TE Basic pulse element 260 400 620 130 200 310 μs TBP PWM bit pulse width 3 3 TE TP Preamble duration 28 28 TE TS Sync Pulse duration 10 10 TE TH Header duration 10 10 TE THOP Hopping code duration 96 96 TE TFIX Fixed code duration 105 105 TE TG Guard Time 18 34 TE ⎯ Total Transmit
in „Fehlersuche Funksender Zentralverriegelung Toyota Yaris“ · Fahrzeugelektronik ·
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PDF
182853-da-01-en-kmi_151t_drehzahlmesser.pdf
rotational speed sensor KMI15/1 handbook, halfpage MRA960 ICC T V CC 14 mA SENSOR V CC R C 7 mA L L tp GND MRA961 t t δ = --- 100% T Fig.6 Output signal as a function of time. Fig.7 Test and application circuit. APPLICATION INFORMATION 1 MRA968 MRA967 handbook, halfpage handbook, halfpage t ICC ( s) (
in „Drehzahlmesser für Drehbank“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KMI_151T.pdf
rotational speed sensor KMI15/1 handbook, halfpage MRA960 ICC T V CC 14 mA SENSOR V CC R C 7 mA L L tp GND MRA961 t t δ = --- 100% T Fig.6 Output signal as a function of time. Fig.7 Test and application circuit. APPLICATION INFORMATION 1 MRA968 MRA967 handbook, halfpage handbook, halfpage t ICC ( s) (
in „Fragen zur Magnetkraft?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
kmi_151t.pdf
rotational speed sensor KMI15/1 handbook, halfpage MRA960 ICC T V CC 14 mA SENSOR V CC R C 7 mA L L tp GND MRA961 t t δ = --- 100% T Fig.6 Output signal as a function of time. Fig.7 Test and application circuit. APPLICATION INFORMATION 1 MRA968 MRA967 handbook, halfpage handbook, halfpage t ICC ( s) (
in „Signal am Zündkabel abgreifen ?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KMI15.pdf
rotational speed sensor KMI15/1 handbook, halfpage MRA960 ICC T V CC 14 mA SENSOR V CC R C 7 mA L L tp GND MRA961 t t δ = --- 100% T Fig.6 Output signal as a function of time. Fig.7 Test and application circuit. APPLICATION INFORMATION 1 MRA968 MRA967 handbook, halfpage handbook, halfpage t ICC ( s) (
in „KMI15/1 Drehzahlsensor reagiert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pm2521ocr.pdf
ON NO C806(+)+10V +0,5V? C806(+)+5V ? CB06(+) >+5V<+10V? : C H E C K V655 C H E C A801 VOLTAGE ON TP1 NO VOLTAGE ON TP1 NO VOLTAGE ON TP4 NO VOLTAGE ON NO ~10v +05V ? =105V wsee“14V ? ~6V...-95V ? A802-2 O M V ? : ba ECK V804, CHECK v805 CHECK V80 CHECK A801 A801 VOLTAGE ON TP2 NO VOLTAGE CATHODE YES
in „Pjilips PM2519“ · Markt ·
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PDF
MAC97A8.PDF
lead length = 4 mm; Figure 1 7.1 Transient thermal impedance 103 003aaa029 Zth(j-a) (K/W) 102 10 P tp t 1 10-5 10-4 10-3 10-2 10-1 1 10 p (s) . Fig 1. Transient thermal impedance from junction to ambient as a function of pulse duration. 9397 750 07917 © Philips Electronics N.V. 2001. All rights reserved
in „µC 5V -> Triac 16VAC schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
W5500_ds_v110e.pdf
sending LCP echo request. The unit of time is 25ms. Ex) in case that PTIMER is 200, 200 * 25(ms) = 5000(ms) = 5 seconds PMAGIC (PPP Link Control Protocol Magic number Register) [R/W] [0x001D] [0x00] PMAGIC configures the 4bytes magic number to be used in LCP echo request. Ex) PMAGIC = 0x01 0x001D 0x01
in „Schaltung W5500“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1170.pdf
OR LESS. Shutdown Mode Supply Current Error Amplifier Transconductance V Cin Characteristics 200 5000 300 180 4500 g = I (C PIN) m V (FB PIN) 200 VFB= 1.5V (CURRENT INTO C PIN) 160 o4000 A m ) (140 (3500 A 100 T T = 150°C C T E120 J A3000 E 0 R100 C2500 R T = 25°C C U U J Y 80 N2000 N–100 P C P U 60
in „Bei Schaltregler nur Minimum- und Maximum-PowerSwitchStrom angegeben“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
journalctl.txt
(v01 LENOVO TP-7U 00003240 LNVO 00000001) Mär 31 15:34:29 T400 kernel: ACPI: BOOT 0x00000000BDB59F38 000028 (v01 LENOVO TP-7U 00003240 LTP 00000001) Mär 31 15:34:29 T400 kernel: ACPI: ASF! 0x00000000BDB59F60 0000A0 (v16 LENOVO TP-7U 00003240 PTL 00000001) Mär 31 15:34:29 T400 kernel: ACPI: SSDT 0x00000000BDB8D1FA 000568 (v01 LENOVO TP-7U 00003240 INTL 20050513) Mär 31 15:34:29 T400 kernel: ACPI: TCPA 0x00000000BD907000 000032
in „ArchLinux mountet Bootpartition nicht“ · PC Hard- und Software ·
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adxl202_beschl.sensor_analog.pdf
capacitor that consists of independent V fixed plates and central plates attached to the moving mass. The TP fixed plates are driven by 180° out of phase square waves. An This pin is to be left open; make no connections of any kind to this pin. acceleration will deflect the beam and unbalance the differential
in „Differenzverstärkerschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
CoolTerm_Capture__FritzAVM_1V8.CoolTermSettings__2026-06-27_08-52-21-633.txt
T1] Bridge firewalling registered [ 2.478999][ T1] KOAM is loaded successfully. [ 2.483488][ T1] l2tp_core: L2TP core driver, V2.0 [ 2.488265][ T1] l2tp_ip: L2TP IP encapsulation support (L2TPv3) [ 2.493423][ T1] l2tp_netlink: L2TP netlink interface [ 2.499334][ T1] l2tp_eth: L2TP ethernet pseudowire support (L2TPv3) [ 2.504728][ T1] l2tp_ip6: L2TP IP encapsulation support for IPv6 (L2TPv3) [ 2.511483][ T1] 8021q: 802.1Q VLAN Support v1.8 [ 2.518534][ T1] Registering SWP/SWPB emulation handler [ 2.523216][ T1] SBL Boot Info Version 1204
in „FRITZ!Box 7490 Bootloop“ · Mikrocontroller und Digitale Elektronik ·
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DW-65054-dg_at_2006--10_r17a.pdf
CMGS=? Shows if the command is supported. Parameters: <mr>: <mr> Description Integer type GSM 03.40 TP-Message-Reference in integer format <length>: <length> Description Integer type Value indicating in PDU mode (AT+CMGF=”0”), the length of the actual TP data unit in octets. The RP layer SMSC address
in „Wie mit GPRS über AT Commands verbinden?“ · Mikrocontroller und Digitale Elektronik ·