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mdlm7301.pdf
87 84 V Input Common-Mode Voltage Range CMRR ≥ 65 dB 5.1 V CM −0.1 V AV Large Signal Voltage Gain RL = 10 k 71 14 V/mV V = 4.0V 10 min O PP VO Output Swing RL = 10 k 0.07 0.12 V 0.15 max 4.93 4.88 V 4.85 min = RL 2 k 0.14 0.20 V 0.22 max 4.87 4.80 V 4.78 min ISC Output Short Circuit Current Sourcing
in „Problem mit OP als Spannungsfolger vor ADC“ · Analoge Elektronik und Schaltungstechnik ·
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72204di.pdf
IN OUT IN OUT ulators with 1A maximum out- COM C1 COM RL two 7812 regulators are connected putcurrentaresimpletodesign, C2 in parallel. thanks to 78xx three-terminal C + The two 7812s operate inde- voltage regulators, at output COM pendently, and each delivers
in „7812 parallel schalten“ · Analoge Elektronik und Schaltungstechnik ·
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ADUC7019_7020_7021_7022_7024_7025_7026_7027_7028.pdf
0xFFFF0420 PLL AND 0x0328 T1CON 2 R/W 0x0000 77 0xFFFF0404CILLATOR CONTROL 0x032C T1CLRI 1 W 0xFF 78 0xFFFF0370 WATCHDOG 0x0330 T1CAP 4 R/W 0x00000000 78 TIMER 0x0340 T2LD 4 R/W 0x00000000 78 0xFFFF0360 0xFFFF0350 0x0344 T2VAL 4 R 0xFFFFFFFF 78 WTIMERP 0x0348 T2CON 2 R/W 0x0000 78 0xFFFF0340 0x034C
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HCS-3602_schematics_opt.pdf
IKV 270K 270K s * s * RLYI R2S C22 SW! ME-23-12PS Ql 10 220pF/250V C3 16A +12V 4700pF C4 t ~ N M 6 0 Rl6 1RI *S 4700pF " S1W25NM60 330K Rl9 L4 250VAC 250VAC r 1% * 1%0K VCC I s 3.3uH RS R6 DS LI 270 10 RS Rl7 R20 Cl7 ESID C23 • C24 ,I * s 10 330K * 330K 220pF/250V 470uF/16V 22uF 1.6mH s 1% 1% R27 +/-25%
in „Manson HCS-3602 HCS-3600 Reparatur“ · Analoge Elektronik und Schaltungstechnik ·
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LM2595.pdf
-S DO3308-104 L12 68 0.58 67143990 67144360 RL-5470-6 RL1500-68 PE-53812 PE-53812-S DO3308-683 L13 47 0.70 67144000 67144380 RL-5470-7 RL1500-47 PE-53813 PE-53813-S DO3308-473 L14 33 0.83 67148340 67148450 RL-1284-33-43 RL1500-33 PE-53814 PE-53814
in „Schaltregler 9-18V input 14-V output“ · Analoge Elektronik und Schaltungstechnik ·
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LM2595.pdf
-S DO3308-104 L12 68 0.58 67143990 67144360 RL-5470-6 RL1500-68 PE-53812 PE-53812-S DO3308-683 L13 47 0.70 67144000 67144380 RL-5470-7 RL1500-47 PE-53813 PE-53813-S DO3308-473 L14 33 0.83 67148340 67148450 RL-1284-33-43 RL1500-33 PE-53814 PE-53814
in „5 Volt 1A fürs auto passiv gekühlt gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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IMG_20160201_0001.pdf
lc, 1.,, {*,u o TGroundle o- o 6 c12 oa I I R10 lF I I i3 I I I I ln 20.. I I I I -TI R-in ,, l.r rl I l1 99 ,,rLj I t rl I Uft s\\i 3 (nro crol--- R2 ct lcrz $) ,d.) }( J 4 I h r\ s GlassWare Audio Design parentheses TypiCal Paft ValUeS 0 denorertrommendedvatues -1 -l 12AX7 2Ar7-12AXt Ar 7 6Nl P-6NlP.'t2AX7.12AU7 B+ Voltage 250V-4O0V(ggSV) Heater Volta=e 12.6V 12.6V400v (335v) Rl= 47k' 47k', R2R3= 470-2k(1k1mA) 100 470(2006mA) R5= 2K1W1k(178)' 2K01W00(178)' R6,8,15,1923= 100-1k(3@) 100-lk(300) R7,9= 300-ik(4703.5mA) 300-1k(2006mA) H10= 93.1k 83.2k F12= 2lkA4or 20k/CF 100k 813
in „Kondensatoren für Aikido RIAA“ · Analoge Elektronik und Schaltungstechnik ·
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13_FAI_H11L2M_01.pdf
Min Typ Max Units Supply Current I = 10mA, V = 5V I All 1.6 5.0 mA F CC CC(on) Output Voltage, low RL=270Ω,V CC=5V, IF=F(on)max. VOL All 0.2 0.4 V H11L1M 1.6 Turn-On Threshold Current RL=270Ω, V CC = 5V IF(on) H11L2M 10.0 mA H11L3M 5.0 Turn-Off Threshold Current RL=270Ω, V CC = 5V IF(off) All 0.3 1.0 mA Hysteresis Ratio RL=270Ω, V CC = 5V F(off) F(on) All 0.50 0.75 0.90 AC Characteristics Test Conditions Symbol Device Min Typ Max Units SWITCHING SPEED RL=270Ω, V CC = 5V, F =F(on) Turn-On time T =25°C on All 4 µs A RL=270Ω
in „24VDC per Optokoppler an µC“ · Mikrocontroller und Digitale Elektronik ·
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13_FAI_H11L2M_01.pdf
Min Typ Max Units Supply Current I = 10mA, V = 5V I All 1.6 5.0 mA F CC CC(on) Output Voltage, low RL=270Ω,V CC=5V, IF=F(on)max. VOL All 0.2 0.4 V H11L1M 1.6 Turn-On Threshold Current RL=270Ω, V CC = 5V IF(on) H11L2M 10.0 mA H11L3M 5.0 Turn-Off Threshold Current RL=270Ω, V CC = 5V IF(off) All 0.3 1.0 mA Hysteresis Ratio RL=270Ω, V CC = 5V F(off) F(on) All 0.50 0.75 0.90 AC Characteristics Test Conditions Symbol Device Min Typ Max Units SWITCHING SPEED RL=270Ω, V CC = 5V, F =F(on) Turn-On time T =25°C on All 4 µs A RL=270Ω
in „Logic-Level-MOSFET über Optokoppler???“ · Analoge Elektronik und Schaltungstechnik ·
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TS912_mit_Spice-Modell.pdf
oΩ, V = 1.2 V to 1.8 V) 3 10 Avd T ≤T ≤T 2 V/mV min amb max High level output voltage (V = 1 V) id RL = 100 kΩ 2.95 R = 10 kΩ 2.9 2.96 L V RL= 600 Ω 2.3 2.6 V OH RL= 100 Ω 2 T ≤T ≤T min amb max RL= 10 kΩ 2.8 R = 600 Ω 2.1 L Low level output voltage (V = -1 V) id RL = 100 kΩ 50 RL= 10 kΩ 30 70 R = 600
in „Eingangswiderstand TS912 zwecks Berechnung Kompensationskondensator“ · Analoge Elektronik und Schaltungstechnik ·
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ts912.pdf
oΩ, V = 1.2 V to 1.8 V) 3 10 Avd T ≤T ≤T 2 V/mV min amb max High level output voltage (V = 1 V) id RL = 100 kΩ 2.95 R = 10 kΩ 2.9 2.96 L V RL= 600 Ω 2.3 2.6 V OH RL= 100 Ω 2 T ≤T ≤T min amb max RL= 10 kΩ 2.8 R = 600 Ω 2.1 L Low level output voltage (V = -1 V) id RL = 100 kΩ 50 RL= 10 kΩ 30 70 R = 600
in „Projekt: SerialComCNC Serielles Frontend für CNC GRBL mit ATMega“ · Projekte & Code ·
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PDF
ts912.pdf
oΩ, V = 1.2 V to 1.8 V) 3 10 Avd T ≤T ≤T 2 V/mV min amb max High level output voltage (V = 1 V) id RL = 100 kΩ 2.95 R = 10 kΩ 2.9 2.96 L V RL= 600 Ω 2.3 2.6 V OH RL= 100 Ω 2 T ≤T ≤T min amb max RL= 10 kΩ 2.8 R = 600 Ω 2.1 L Low level output voltage (V = -1 V) id RL = 100 kΩ 50 RL= 10 kΩ 30 70 R = 600
in „Projekt: SerialComCNC Serielles Frontend für CNC GRBL mit ATMega“ · Projekte & Code ·
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an920-d.pdf
onsemi.com 3 AN920/D 30 Q1 L ) TA= 25°C +Vin +V out A 10 V CC= 40 V ( n VCC = 5 V MC34063 D1 + C R r 3.0 μA78S40 o L C g 1.0 g a a. Step−Down V out V in C 0.3 ,g L Ic 0.1 Ichg= dischg +V +V in out D1 0.03 MC34063 + 0 0.2 0.4 0.6 0.8 1.0 μA78S40 Q1 C o RL VCLS , Current−Limit Sense Voltage (V) Figure 6. Timing
in „MC34063 als Step Up arbeitet nicht“ · Analoge Elektronik und Schaltungstechnik ·
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AN920-D.pdf
onsemi.com 3 AN920/D 30 Q1 L ) TA= 25°C +Vin +V out A 10 V CC= 40 V ( n VCC = 5 V MC34063 D1 + C R r 3.0 μA78S40 o L C g 1.0 g a a. Step−Down V out V in C 0.3 ,g L Ic 0.1 Ichg= dischg +V +V in out D1 0.03 MC34063 + 0 0.2 0.4 0.6 0.8 1.0 μA78S40 Q1 C o RL VCLS , Current−Limit Sense Voltage (V) Figure 6. Timing
in „Spannungsregelung mit Step-Up/Down Regler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HCPL-0500.pdf
Device Min. Typ.** Max. Units Test Conditions Fig. Note Propagation PHL* 6N135 0.2 1.5 s T A 25°C RL= 4.1 k 5, 6, 8, 9 Delay Time HCPL-0500 2.0 11 to Logic Low HCNW135 at Output 6N136 0.2 0.8 T A 25°C RL= 1.9 k HCPL-2502 HCPL-4502/3 HCPL-0501 HCPL-0452/3 1.0 HCNW136 HCNW4502/3 Propagation PLH* 6N135 1.3 1.5 s T A 25°C RL= 4.1 k 5, 6, 8, 9 Delay Time to HCPL-0500 2.0 11 Logic High at HCNW135 Output 6N136 0.6 0.8 T A 25°C RL= 1.9 k HCPL-2502 HCPL-4502/3 HCPL-0501 HCPL-0452/3 1.0 HCNW136 HCNW4502/3 Common Mode |CM H 6N135
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15121.pdf
Device Min. Typ.** Max. Units Test Conditions Fig. Note Propagation PHL* 6N135 0.2 1.5 s T A 25°C RL= 4.1 k 5, 6, 8, 9 Delay Time HCPL-0500 2.0 11 to Logic Low HCNW135 at Output 6N136 0.2 0.8 T A 25°C RL= 1.9 k HCPL-2502 HCPL-4502/3 HCPL-0501 HCPL-0452/3 1.0 HCNW136 HCNW4502/3 Propagation PLH* 6N135 1.3 1.5 s T A 25°C RL= 4.1 k 5, 6, 8, 9 Delay Time to HCPL-0500 2.0 11 Logic High at HCNW135 Output 6N136 0.6 0.8 T A 25°C RL= 1.9 k HCPL-2502 HCPL-4502/3 HCPL-0501 HCPL-0452/3 1.0 HCNW136 HCNW4502/3 Common Mode |CM H 6N135
in „Optokoppler HCPL 4504/4503/4502“ · Mikrocontroller und Digitale Elektronik ·
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1501.pdf
2 c2 3;88 1 180 .$6B94 .$6443 .$953? 9$B534 , 1 6& ;: / .$F.3 .$FF.F .$?3G3 9$FBGG 78; : :; / 7 , 7 :7;: 8 1 ! 80 8 : 80 :: , 81 ,/ 1! 8 ,/J 1RL L1 (actual) 2 f C c1 C 1(actual) 2 f RC 2RL L2 (actual) 2 f C c C 2(actual) 2 2 f CL 0 1 < / 80 : / 4 1 ! ,7 7 ,, 78 8 80 ;8 ;8 80 :8 1▯ , /
in „Suche Schaltplan für PWM Endstufe“ · Mikrocontroller und Digitale Elektronik ·
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OPA128KM.pdf
90 120 dB ±1 ±100 ±1 ±32 ±1 ±32 ±1 ±32 V/V NOISE Voltage: f = 10Hz 92 92 92 92 nV/√Hz O fO= 100Hz 78 78 78 78 nV/√Hz fO= 1kHz 27 27 27 27 nV/√Hz f = 10kHz 15 15 15 15 nV/√Hz O fB= 10Hz to 10kHz 2.4 2.4 2.4 2.4 Vrms fB= 0.1Hz to 10Hz 4 4 4 4 Vp-p Current:Bf = 0.1Hz to 10Hz 4.2 3 2.3 3 fA, p-p fO= 0.1Hz
in „OPA 128 KM - veraltet?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM4250.PDF
A e 25§C 3 mV 5 mV IOS TA e 25§C 3 nA 10 nA I T e 25 C 7.5 nA 50 nA bias A § Large Signal Voltage RL e 100 kX, A e 25§C 100k e e Gain VO g 10V, RL 10 kX 100k Supply Current T e 25§C 10 mA 90 mA A Power Consumption TA e 25§C 300 mW 2.7 mW V OS RS s 100 kX 4 mV 6 mV e a IOS TA 125§C 25 nA 25 nA TA e b
in „Appliaktion mit DDR OPV B176“ · Analoge Elektronik und Schaltungstechnik ·
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TIC263_BOU.pdf
Repetitive peak V = Rated V I = 0 T = 110°C ±2 mA DRM off-state current D DRM G C V supply +12 V† RL= 10 Ω p(g)> 20 µs 15 50 Gate trigger V = +12 V† R = 10 Ω t > 20 µs -30 -50 IGT supply L p(g) mA current V supply -12 V† RL= 10 Ω p(g)> 20 µs -20 -50 V = -12 V† R = 10 Ω t > 20 µs 32 supply L p(g) V supply +12 V† RL= 10 Ω p(g)> 20 µs 0.8 2 Gate trigger V = +12 V† R = 10 Ω t > 20 µs -0.8 -2 VGT supply L p(g) V voltage V supply -12 V† RL= 10 Ω p(g)> 20 µs -0.8 -2 V = -12 V† R = 10 Ω t > 20 µs 0.8 2 supply L p(g) VT
in „Mit welchen Bauteil 230V / 16A über µC regeln?“ · Mikrocontroller und Digitale Elektronik ·
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TIC263_BOU.pdf
Repetitive peak V = Rated V I = 0 T = 110°C ±2 mA DRM off-state current D DRM G C V supply +12 V† RL= 10 Ω p(g)> 20 µs 15 50 Gate trigger V = +12 V† R = 10 Ω t > 20 µs -30 -50 IGT supply L p(g) mA current V supply -12 V† RL= 10 Ω p(g)> 20 µs -20 -50 V = -12 V† R = 10 Ω t > 20 µs 32 supply L p(g) V supply +12 V† RL= 10 Ω p(g)> 20 µs 0.8 2 Gate trigger V = +12 V† R = 10 Ω t > 20 µs -0.8 -2 VGT supply L p(g) V voltage V supply -12 V† RL= 10 Ω p(g)> 20 µs -0.8 -2 V = -12 V† R = 10 Ω t > 20 µs 0.8 2 supply L p(g) VT
in „Hilfe zum Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TIR-A.asm
2094h 03d5 0606 ld b,06h 03d7 dd7e0c ld a,(ix+0ch) 03da dd4e12 ld c,(ix+12h) 03dd cb27 sla a 03df cb11 rl c 03e1 cb27 sla a 03e3 cb11 rl c 03e5 cb27 sla a 03e7 cb11 rl c 03e9 dd7700 ld (ix+00h),a 03ec dd7106 ld (ix+06h),c 03ef dd23 inc ix 03f1 10e4 djnz 03d7h 03f3 c9 ret 03f4 215820 ld hl,2058h 03f7 115920
in „Z80/UA880D mit 28C64 startet nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mitsubishi_igbt_note_e.pdf
Mar. 2014 Mitsubishi IGBT Modules NF▯ ▯series Application Note Using IGBT Module ▯ 10 100 CM200TL/RL-24NF CM150TL/RL-24NF ) CM100TL/RL-24NF ) CM200TL/RL-24NF l CM75TL/RL-24NF s u u J J 10 CM100TL/RL-24NF ( m CM75TL/RL-24NF n ( o E E 1 CM150TL/RL-24NF o l g g i h c CM50TL/RL-24NF i 1 i w CM50TL/RL-24NF
in „E-Mobilitaet - wie sieht der Antrieb eigentlich technisch aus?“ · Fahrzeugelektronik ·
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PDF
tlc274.pdf
9.2 VICR (see Note 5) –0.2 Full range to V 8.5 25°C 8 8.5 VOH High-level output voltage VID= 100 mV, RL= 10 kΩ 0°C 7.8 8.5 V 70°C 7.8 8.4 25°C 0 50 VOL Low-level output voltage VID= –100 mV, OL = 0 0°C 0 50 mV 70°C 0 50 25°C 10 36 AVD Large-signal differential voltage VO = 1 V to 6 V, RL= 10 kΩ 0°C 7.5
in „Beschaltung von Photodioden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
683405.pdf
10V INPUT PULSE F IC RL 10% INPUT OUTPUT OUTPUT PULSE 90% RBE r f t t on off AdjustIFto produceC = 2 mA Figure 11. SwitchingTimeTest Circuit andWaveforms ©2005 Fairchild Semiconductor Corporation www.fairchildsemi.com 4NXXM
in „optokoppler_Eingangsspannung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOS4066_SMD4066_STM.pdf
VC= V SS = – 5V, Feedthrough Vis(p-p) = 5V Frequency(switch (sine wave centured on 1 MHz off) 0V) RL= 1k - 50 dB Crosstalk VC (A) = VDD = + 5V Frequency VC(B) = V SS = – 5V V (A) = 5Vp-p, is 8 MHz 50 source RL= 1k pd Propagation Delay RL= 200k (signal input to VC = V DD, VSS= GND, 5 20 40 signal output
in „Varkaufe V4066D“ · Markt ·
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PDF
4066.pdf
VC= V SS = – 5V, Feedthrough Vis(p-p) = 5V Frequency(switch (sine wave centured on 1 MHz off) 0V) RL= 1k - 50 dB Crosstalk VC (A) = VDD = + 5V Frequency VC(B) = V SS = – 5V V (A) = 5Vp-p, is 8 MHz 50 source RL= 1k pd Propagation Delay RL= 200k (signal input to VC = V DD, VSS= GND, 5 20 40 signal output
in „Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Farnell_1330644_LT1364.pdf
VS= 2.5V to 15V 88 dB A Large-Signal Voltage Gain V = 12V, R = 1k 15V 3.6 V/mV VOL OUT L VOUT= 10V, RL= 500 15V 2.4 V/mV VOUT= 2.5V, RL= 500 5V 2.4 V/mV VOUT= 2.5V, RL= 150 5V 1.5 V/mV VOUT= 1V, RL= 500 2.5V 2.0 V/mV VOUT Output Swing RL= 1k, IN= 40mV 15V 13.4 V RL= 500 , VIN 40mV 15V 12.8 V RL= 500 ,
in „Schneller Peak-Detector (Spitzenwertspeicher)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTC_6240_1_2.pdf
pA VCM Input Voltage Range Guaranteed by CMRR l 0 1.5 V CMRR Common Mode Rejection 0V ≤ CM ≤ 1.5V l 78 100 dB CMRR Match Channel-to-Channel (Note 5) l 76 95 dB AVOL Large Signal Voltage Gain VO= 1V to 2V RL= 10k toSV /2 140 600 V/mV 0°C to 70°C l 100 V/mV –40°C to 85°C l 75 V/mV VOL Output Voltage Swing
in „Meßverstärker für 1/f-Rauschen 0.1 - 10 Hz“ · Analoge Elektronik und Schaltungstechnik ·
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MGA52543.pdf
0.61 -55.73 13.73 4.86 129.67 -24.14 0.062 -14.46 0.41 -42.72 1.22 1.6 0.61 -59.22 13.63 4.80 126.78 -24.34 0.061 -15.00 0.41 -44.90 1.25 1.7 0.61 -62.73 13.54 4.75 123.96 -24.53 0.059 -15.44 0.40 -46.95 1.27 1.8 0.61 -66.34 13.45 4.70 121.14 -24.72 0.058 -15.78 0.39 -48.94 1.29 1.9 0.61 -69.85 13.36
in „Wie ist ein MMIC intern aufgebaut?“ · HF, Funk und Felder ·
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PDF
MAX4194-MAX4197.pdf
4 Input Voltage Range VIN Inferred from CMR test VEE - 0.2 VCC - 1.1 V VCM = VEE- 0.2V G = +1V 66 78 to CC - 1.1V, G = +10V 80 94 TA= +25°C, DC Common-Mode ∆RS = 1kΩ(Note 1) G = +100V 86 99 Rejection CMR DC dB VCM = VEE- 0.2V G = +1V 60 78 to CC - 1.1V, TA = MIN to MAX, G = +10V 74 94 ∆R = 1kΩ, (Note
in „ADC nicht sauber sinus auf oszi“ · Mikrocontroller und Digitale Elektronik ·
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_Ebook-German_-Elektronik-Timer_555-55_Schaltungen_Zum_Nachbauen.pdf
beträgt mit den angegebenen Werten ca. 720 Hz. (Mit einem Potentiometer in Serie mit dem Widerstand Rl kann man die Frequenz auf einen anderen Wert einstellen. Eine einstellbare Tonfrequenz im Bereich von 850 bis l 200 Hz bekommt man bei folgenden Werten: statt Rl kommt ein fester Widerstand 10 kQ und
in „NE555 Einfachen Blinker bauen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
H21B4_-_B6.pdf
Saturation Voltage VCE(SAT) F = 60 mA,CI = 50 mA H21B5/6 — — 1.5 V F = 10 mA, CC = 5 V, All — 45 — RL= 750Ω Turn-On Time ton µs F = 60 mA, CC = 5 V, R = 75Ω All — 7 — L F = 10 mA, CC = 5 V, All — 250 — RL= 750Ω Turn-Off Time toff µs F = 60 mA, CC = 5 V, All — 45 — RL = 75Ω © 2002 Fairchild Semiconductor
in „Probleme mit Drehzahlmesser an besagter Flott“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LH0002_mit_Innenschaltung.pdf
1.0 kX 180 400 kX Output Impedance VINe g 1.0V, L e 50X, RS e 10 kX 6.0 10 X Output Voltage Swing RL e 1.0 kX, IN e g 12V g 10 g 11 V Output Voltage Swing VS e g 15V, VINe g 12V, S e 50X, RLe 100X, TA e 25§C g 10 V e e DC Output Offset Voltage RS 300X, R L 1.0 kX g 10 g 30 mV DC Input Bias Current R e 10 kX, R e 1.0 kX g6.0 g 10 mA S L Harmonic Distortion VINe 5.0 Vrms, f 1.0 kHz 0.1 % Rise Time RL e 50X, DV INe 100 mV 7.0 12 ns Positive Supply Current RS e 10 kX, RL e 1.0 kX a 6.0 a 10 mA Negative Supply Current RS e 10 kX, RL e 1.0 kX b6.0 b 10 mA Note 1: Specification apAli25§C with12V on Pins
in „[S] Buffer LH0002“ · Markt ·
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PDF
6N136.pdf
V = 5V, CC=16mA F ) Parameter Symbol Conditions MIN. TYP. MAX. Unit *8 *9 Propagation 6N135 t PHL RL= 4.1k - 0.3 1.5 s delay time Output (1 → 0) 6N136 t PHL RL= 1.9k - 0.3 0.8 s *8 Propagation *9 delay time 6N135 t PLH RL= 4.1k - 0.4 1.5 s Output (0 → 1) 6N136 t PLH RL= 1.9k - 0.3 0.8 s *10,11 Instantaneous
in „Optokoppler verschleiert Flanken“ · Mikrocontroller und Digitale Elektronik ·
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sn74lvc1gx04.pdf
SCES581B–JULY 2004–REVISED DECEMBER 2006 PARAMETER MEASUREMENT INFORMATION V LOAD S1 Open From Output RL TEST S1 Under Test GND tPLH PHL Open CL (see Note A) RL PLZ PZL V LOAD tPHZ PZH GND LOAD CIRCUIT INPUTS V CC V t /t V M V LOAD CL RL V I r f 1.8 V ± 0.15 V VCC ≤2 ns VCC /2 2 × CC 30 pF 1 k 0.15 V 2.5
in „Was ist das für ein Chip?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1963.pdf
FOR V = 2.5V 20 *FOR V OUT= 1.8V ) 20 OUT ) 20 *FOR VOUT = 3.3V A A A ( ( ( T N N E 15 E 15 E 15 R R RL= 8.33, L = 300mA* R C C C N 10 I 10 N 10 RL= 11, L = 300mA* P R = 6, I = 300mA* P P D L L N D G G R L 25, L = 100mA* G 5 RL= 18, L = 100mA* 5 5 R L 33, L = 100mA* RL= 180, L = 10mA* RL= 250, L = 10mA
in „LT1963 puffern 2,5A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1963.pdf
FOR V = 2.5V 20 *FOR V OUT= 1.8V ) 20 OUT ) 20 *FOR VOUT = 3.3V A A A ( ( ( T N N E 15 E 15 E 15 R R RL= 8.33, L = 300mA* R C C C N 10 I 10 N 10 RL= 11, L = 300mA* P R = 6, I = 300mA* P P D L L N D G G R L 25, L = 100mA* G 5 RL= 18, L = 100mA* 5 5 R L 33, L = 100mA* RL= 180, L = 10mA* RL= 250, L = 10mA
in „Widerstände für Spannungsregler ergeben nicht gewünschte Spannung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt1963es8.pdf
FOR V = 2.5V 20 *FOR V OUT= 1.8V ) 20 OUT ) 20 *FOR VOUT = 3.3V A A A ( ( ( T N N E 15 E 15 E 15 R R RL= 8.33, L = 300mA* R C C C N 10 I 10 N 10 RL= 11, L = 300mA* P R = 6, I = 300mA* P P D L L N D G G R L 25, L = 100mA* G 5 RL= 18, L = 100mA* 5 5 R L 33, L = 100mA* RL= 180, L = 10mA* RL= 250, L = 10mA
in „LT1963 SHDN (shutdown) Pin Potenzialfrei ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lcd.c
,3 ,5 ,0 ,0 ,0 }, //4{"OK to START prog"},{"Down to continue" {10,0 ,0 ,0 ,4 ,6 ,0 ,0 ,0 }, //5{VL RL KK WW "},{" } {12,0 ,0 ,0 ,5 ,7 ,0 ,0 ,0 }, //6" AT IT Abg"},{" "} {14,0 ,0 ,0 ,6 ,8 ,0 ,0 ,0 }, //7"BR PV PWW "},{" " {16,0 ,0 ,0 ,7 ,9 ,0 ,0 ,0 }, //8"temp wasser "},{"interwall s" {18,0 ,0 ,0 ,8 ,
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Inverter_MAX660.pdf
FC = open 5 10 Oscillator Frequency FC = V+ 40 80 kHz FC = open ±1 OSC Input Current FC = V+ ±8 µA RL= 1kΩ connected between V+ and OUT 96 98 Power Efficiency RL= 500Ω connected between OUT and GND 92 96 % L = 100mA to GND 88 Voltage-Conversion Efficiency No load 99.00 99.96 % Note 2: In the test circuit
in „Spannungspeaks / Ripple durch Schaltregler. Abhilfe?“ · Analoge Elektronik und Schaltungstechnik ·
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lmh6642.pdf
Current Noise pA/√Hz f = 1kHz 3.3 THD Total Harmonic f = 5MHz, VO= 2V PPA V −1, −48 dBc Distortion RL= 100Ω to V /2 DG Differential GainVCM = 1V, NTSC, A V +2 0.17% RL=150Ω to V /2 + RL=1kΩ to V /2 0.03% DP Differential V = 1V, NTSC, A = +2 CM + V 0.05 Phase RL=150Ω to V /2 deg R =1kΩ to V /2 0.03 L
in „Funkentstörung mobiler Kopfhörerverstärker“ · HF, Funk und Felder ·
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Transistortester093k.pdf
Bandgap Ref 1237 Referenzspannung Kennung Sollwert 1298mV RHfakt. 750 RLfakt. 489 1E 93 07 Test 2 RL1+ RL2- RL1+ RL3- RL2+ RL3- WITH_AUTO_REF Vergleich 680Ω 2488 2488 2484 Idealwert: 2493 Test 3 RH1+ RH2- RH1+ RH3- RH2+ RH3- Vergleich 470kΩ 2493 2493 2493 Idealwert: 2500 Probe's trennen Test 5 RH1-
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Adj_Charge_Pump_Linear_Technology_LT1761ES5-SD__1663783_.pdf
2.50 2.25 TJ= 25°C 2.25 J 2.25 T J 25°C *FOR OUT = 2V *FOR VOUT = 2.5V *FOR VOUT = 2.8V 2.00 2.00 RL= 25Ω 2.00 R = 28Ω A A I = 100mA A L (1.75 RL= 20Ω ( 1.75 L (1.75 IL= 100mA T L = 100mA* T T E1.50 E 1.50 E1.50 R R R U1.25 U 1.25 U1.25 N RL= 40Ω N R L 50Ω N RL= 56Ω P1.00 IL= 50mA* P 1.00 IL= 50mA*
in „Adjustable Charge Pump: LT1761ES5-SD - Problem“ · Mikrocontroller und Digitale Elektronik ·
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Snubber_Circuits_Theoryslup100__TI.pdf
diode is not a the peak reverse current. consideration the squareloop corescanbe effective. The Simple RL Current Snub- R, Variations of tbe Simple RL Snubber: One ber: The simple RL circuit shown 111l1 way to reduce the power dissipation of the resistor in Figure 6A. This is the dual of '-T" in a simple
in „Flyback-Wandler Störungen auf Versorgung“ · Analoge Elektronik und Schaltungstechnik ·
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eBus_Adapter_Partlist.txt
C7 10n X7R-G0805 10N D1 1N4148 1N 4148 D2 1N4148 1N 4148 D3 7,5V ZF 7,5 D4 1N4148 1N 4148 IC1 FT232RL FT 232 RL IC2 ADUM1201 ADUM 1201 AR IC3 4011N MOS 4011 IC4 7805L µA 78L05 LED1 Low Current grün LED 3MM 2MA GN LED2 Low current rot LED 3MM 2MA RT LED3 Low Current gelb LED 3MM 2MA GE Q1 BC547 BC 547C
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2SD1381F__1733__1768S__1863__1898.pdf
;47dG78;c ; 4 d G 8 7; ; 7; 7;; 7;;; 1e??>->j-->ILJL1JPk>L 1e??>1fII1]iP Bi->j--Je?-BOJP =cLkC3,,]NM..((2L =cLkC3,L]NM2.CN =+L6)M,L(LKc <M),K)K <M),K)K 2,2LCMN O -(l1@m -(l1@▯ 7;;; -(l1@m O @;; J1l@J . . rl7jst
in „Identifikation Durchgebranntes Bauteil, Switching Powersupply LCD Mpnitor“ · Mikrocontroller und Digitale Elektronik ·
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tasmota_script_with_device_time28042024.txt
>D ;Allmess rl 28.04.2024 :with device time ;start, define variables cnt=0 DT=0 DT2=0 sDate_Read="yyyy-mm-ddThh:mm" sDT="dd.mm.yyyy hh:mm" sDT2=" hh:mm" v1=0 v2=0 ts="dd.mm.yyyy hh:mm" >B ;setup sensor ->sensor53 r
in „Wärmezähler über optische M-Bus-Schnittstelle auslesen“ · Haus & Smart Home ·
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OP07.pdf
103 123 dB Power Supply Rejection Ratio PSRR VS= ±3V to ±18V 7 32 μV/V Large SignalVoltage Gain AVO RL≥ 2 kΩ,V O ±10V 180 450 V/mV OUTPUT CHARACTERISTICS TA= 25°C OutputVoltage Swing VO RL≥ 10 kΩ ±12.5 ±13.0 V RL≥ 2 kΩ ±12.0 ±12.8 V R ≥ 1 kΩ ±10.5 ±12.0 V L 0°C ≤T A 70°C OutputVoltage Swing VO RL≥ 2 kΩ
in „Spannungsregler für Operationsverstärker“ · Analoge Elektronik und Schaltungstechnik ·
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OP90.pdf
OS CM INPUT BIAS CURRENT IB VCM = 0 V 4.0 25 nA LARGE-SIGNAL VS= ±15 V, VO= ±10 V VOLTAGE GAIN A VO RL= 100 kΩ 400 800 V/mV A VO RL= 10 kΩ 200 400 V/mV A VO RL= 2 kΩ 100 200 V/mV V+ = 5 V, V– = 0, 1 V< VO< 4 V A VO RL = 100 kΩ 100 250 V/mV A VO RL= 10 kΩ 70 140 V/mV INPUT VOLTAGE RANGE 1 IVR V+ = 5 V, V– = 0 V 0/4 V VS= ±15 V –15/13.5 V OUTPUT VOLTAGE SWING V O VS= ±15 V RL= 10 kΩ ±14 ±14.2 V RL = 2 kΩ ±11 ±12 V V OH V+ = 5 V, V– = 0 V R = 2 kΩ 4.0 4.2 L V V OL V+ = 5 V, V– = 0 V RL = 10 kΩ 100 500 µV COMMON-MODE CMR V+ = 5 V, V– = 0, REJECTION 0 V < CM < 4 V 80 100 dB
in „Stromverbrauch eines Mikrocontrollers zeitaufgelöst messen“ · Analoge Elektronik und Schaltungstechnik ·