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tft_xga_lvds.pdf
= 1.2% max., L anA L are Brightness at location A and B l B -B’l / B x 100%= 1.2% max., L anA’L are B’ightness at location A’ and B’ (C) Copyright AU Optronics, Inc. 2004 All Rights Reserved. No Reproduction and Redistribution
in „Oszi mittels LCD-Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST__L200.pdf
Droupout Voltagebetween Pins 1 Io= 1.5 A V0 2% 2 2.5 V and 5 V ref Reference Voltage (pin 4) V i 20 V Io= 10 mA 2.64 2.77 2.86 V 3/12 L200 ELECTRICALCHARACTERISTICS (continued) Symbol Parameter Test Conditions Min. Typ. Max. Unit Vref Average Temperature Coefficient Vi= 20 V Io = 10mA of Reference
in „liegender einstellbarer Spannungsregler“ · Analoge Elektronik und Schaltungstechnik ·
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VCNT2020.pdf
Ambient Temperature Fig. 8 - Relative Collector Current vs. Ambient Temperature 10 120 ) ) A VCE= 20 V ( ( n n 1 e100 r u u C C 0.1 o 80 r c D l r o 60 c 0.01 C e i o l 40 C e - 0.001 - E e 20 IC , 0.0001 I -50 -25 0 25 50 75 100 125 0 0 1 2 3 4 5 6 7 Tamb - Ambient Temperature (°C) z - Distance (mm
in „Binärcode aus leitender Tinte von Papierkarte lesen“ · Mikrocontroller und Digitale Elektronik ·
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LCD_202A.pdf
Command Execution Command RS R/W DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 Time Remark (fosc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „Fehler bei 4Bit LCD Init?“ · Mikrocontroller und Digitale Elektronik ·
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LCD202a_Serie_DIS.pdf
Command Execution Command RS R/W DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 Time Remark (fosc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „LCD +Bascom zeigt 1. Zeile Nix 2. Zeile voll“ · Mikrocontroller und Digitale Elektronik ·
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DIS.pdf
Command Execution Command RS R/W DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 Time Remark (fosc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „LCD Ansteuerung, was tun“ · Mikrocontroller und Digitale Elektronik ·
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LCD.pdf
Command Execution Command RS R/ DB 7 DB 6 DB5 DB 4 DB 3 DB2 DB1 DB0 Time Remark W (osc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „lcd string "ü" darstellen.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DIS.pdf
Command Execution Command RS R/W DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 Time Remark (fosc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „LCD 202A Conrad und Atmega 8“ · Mikrocontroller und Digitale Elektronik ·
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DIS_1_.pdf
Command Execution Command RS R/W DB7 DB6 DB5 DB4 DB3 DB2 DB1 DB0 Time Remark (fosc 250kHz) DISPLAY L L L L L L L L L H 1.64ms CLEAR RETURN L L L L L L L L H X 1.64ms Cursor move to first digit HOME ENTRY MODE L L L L L L L H I/D SH 42μs • I/D : Set cursor move direction SET H Increase I/D L Decrease • SH : Specifies shift of display H Display is shifted SH L Display is not shifted DISPLAY L L L L L L H D C B 42μs • Display ON/OFF H Display on D L Display off • Cursor H Cursor on C L Cursor off • Blinking H Blinking on B L Blinking off SHIFT L L L L L H S
in „LCD Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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RK14K12.pdf
bushing Horizontal type Vertical type Horizontal type Vertical type Metal Shaft LM1 LM1 LML1 LM1 LB LB L1 Insulated Style Shaft Knob Operating R1 R 1 R1 R1 LM 1 15 20 25 30 LM 1 20 22.5 25 27.5 30 32.5 ___ ___ ___ ___ ___ Detail L1 12.5 15 17.5 20 22.5 25 dimensions R 1 4.5 7 12 12 R 1 7 7 12 12 12 12 _
in „Probleme mit Alps Datenblatt“ · Mikrocontroller und Digitale Elektronik ·
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Alliance_-_as7c34098a_v2.1-1.pdf
reliability. Truth table CE WE OE LB UB I/O1–I/O8 I/O9–I/O16 Mode H X X X X High Z High Z StandbySBI SB1 L H H X X High Z High Z Output disabCC (I L X X H H L H DOUT High Z L H L H L High Z DOUT Read CC) L L D D OUT OUT L H D IN High Z L L X H L High Z DIN L L D IN DIN WriteCCI Key: X = Don’t care, L = Low
in „Suche 3,3V SRAM mind 64kb“ · Markt ·
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MRF175GV.pdf
Power DD out DQ VSWR 10:1 at all Phase Angles) NOTE: 1. Measured in push–pull configuration. B A C14 L5 C15 L6 BIAS C18 28V C10 C11 R1 C12 R2 C13 L3 C1 L1 D.U.T. C8 Z1 Z3 Z5 B1 C3 C4 C5 C6 C7 B2 Z2 Z4 Z6 C2 L2 C9 R3 L4 A B 0.180 C16 C17 0.200 B1 — Balun 50 Semi Rigid Coax 0.086 O.D. 2 Long L1, L2 — Hairpin Inductor #18 Wire B2 — Balun 50 Semi Rigid Coax 0.141 O.D. 2 Long L3, L4 — 12 Turns #18 Enameled Wire 0.340I.D. C1, C2, C8, C9 — 270 pF ATC Chip Cap L5 — Ferroxcube VK200 20/4B C3, C5, C7 — 1.0–20 pF Trimmer Cap L6 — 3 Turns #16 Enameled Wire 0.340 I.D. C4 — 15 pF
in „Dimensionierung eines Kühlkörpers für HF-Modul“ · HF, Funk und Felder ·
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TLP250.pdf
voltage VF (V) Forward current F (mA) I – Ta F V CC – Ta 40 40 V ( n 30 C 30 e C u V d ) e a A a r ( o f 20 v 20 l IF l a p w s l l A 10 a 10 w l A 0 0 0 20 40 60 80 100 0 20 40 60 80 100 Ambient temperature Ta (°C) Ambient temperature Ta (°C) OPH, OPL – Ta PW ʽ 2.5 µs, f ʽ 15 KHz n 2 e u t ) p (A u L o P a I p H l P 1 b I w l A 0 0 20 40 60 80 100 Ambient Temperature Ta (°C) 2004-06-25 7 TLP250 RESTRICTIONS ON PRODUCT USE • The information contained herein is subject to change without notice. • The information
in „:: Beschaltung Power MOSFET...“ · Analoge Elektronik und Schaltungstechnik ·
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STP08DP05_LED_driver.pdf
width 20 - ns wLAT t CLK pulse width 20 - ns wCLK t OE/DM2 pulse width 200 - ns wEN V DD = 3.0 to 5.0V tSETUP(D) Setup time for DATA 7 - ns HOLD(D) Hold time for DATA 4 - ns tSETUP(L) Setup time for LATCH 15
in „Led Cube 8x8x8 inventieren“ · Mikrocontroller und Digitale Elektronik ·
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pr4402.pdf
Voltage vs. Temperature Oscillation Frequency vs. Supply Voltage 1,1 800 700 ) 1 600 V z ( H 500 g ( l c o 0,9 22 µH n 400 22 µH V 10 µH u 10 µH u q 300 r r t 0,8 F 200 S 100 0,7 0 -20 -10 0 10 20 30 40 50 60 70 0,75 1 1,25 1,5 1,75 2 Supply Voltage (V) Temperature (°C) Mean LED Current vs. Temp. @ L1=10µH 30 ) m25 t n r u20 1.0V c 1,25V E 1,50V L 1,75V n15 e M 10 -20 -15 -10 -5 0 5 10 15 20 25 30 35 40 45 50 55 60 65 70 Temperature (°C) © PREMA Semiconductor GmbH 2006-2007 Page 4/12 Rev 0707 LED DRIVER PR4401/PR4402 PR4402
in „LED mit 0,5 V zum Leuchten bringen“ · Mikrocontroller und Digitale Elektronik ·
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LT084AC27500-v05R.pdf
L L L L L L L L L L L62 Red H H H H H H L L L L L L L L L L L L Red L63 Black L L L L L L L L L L L L L L L L L L L 0 L L L L L L L L L L L H L L L L L L L 1 L L L L L L L L L L H L L L L L L L L 2 Gray
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AVRMicrocontrollers_Peripheral_Integration.pdf
/ / e h n s l m g s T t F B l H I b c t S b u o s M r E C r e e E N b e h u n t k d ®r n m ( V ( M o o r i o a V o M W t r m m i i ( A u ®T T l a y a o w o r l d = ( ( p G ( e a C P t r f T T t t o S T M l h h n C
in „Nachfolger von Atmega169“ · Mikrocontroller und Digitale Elektronik ·
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SD211SeriesDSRevA10.pdf
-72 4L RoHS SD211DE TO-72 4L RoHS SELXXX SD213DE TO-72 4L RoHS SD213DE TO-72 4L RoHS SELXXX SD215DE TO-72 4L RoHS SD215DE TO-72 4L RoHS SELXXX SST211 SOT-143 4L RoHS SST211 SOT-143 4L RoHS SELXXX SST213 SOT-143 4L RoHS SST213 SOT-143 4L RoHS SELXXX SST215 SOT-143 4L RoHS SST215 SOT-143 4L RoHS SELXXX Doc 20114 09/14/2022 Rev# A11 ECN# SD-SST211www.linearsystems.com Page 4 of 4
in „Schaltung mit 2 N-Kanal Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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l200.pdf
Droupout Voltage between Pins 1 Io= 1.5 A V0 ≤ 2% 2 2.5 V and 5 Vref Reference Voltage (pin 4) V i 20 V Io= 10 mA 2.64 2.77 2.86 V 3/12 L200 ELECTRICAL CHARACTERISTICS (continued) Symbol Parameter Test Conditions Min. Typ. Max. Unit Vref Average Temperature Coefficient V i= 20 V Io = 10mA of Reference
in „L200 Beschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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1121ff.pdf
V 4.8V < VIN< 20V, 1mA < OUT< 150mA l 3.64 3.75 3.86 V l Line Regulation LT1121-3.3 ΔV IN4.8V TO 20V, IOUT = 1mA 1.5 10 mV LT1121-5 ΔV IN5.5V TO 20V, IOUT = 1mA l 1.5 10 mV LT1121 (Note 5) ΔV IN4.3V TO 20V, I OUT= 1mA l 1.5 10 mV Load Regulation LT1121-3.3 ΔILOAD = 1mA to 150mA, TJ= 25ºC –12 –25 mV ΔILOAD = 1mA to 150mA l –20 –40 mV LT1121-5 ΔILOAD = 1mA to 150mA, TJ= 25ºC –17 –35 mV ΔILOAD = 1mA to 150mA l –28 –50
in „Missgeschick passiert. Suche LDO 3.3V mit gedrehten TO92 Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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NT7701Ver2.1.pdf
186 185 113 112 111 1109108 36 35 34 33 3231 NT7701 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 D V V V V V L V S E D D D D D D D D X D L E F M T T V V V V V D M 0 1 4 5 S / D / I 0 1 2 3 4 5 6 7 C I P I R D E E S 5 4 1 O M M L L L L S R D C 2 K P 1 T T S R R R R M
in „Wintek WD-H3224V 320x240“ · Mikrocontroller und Digitale Elektronik ·
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id_vrla_handbook_e.pdf
(25°C) (Wattage/battery) g l Cut-off 5min. 10min. 15min. 20min. 30min. 45min. 1h 1.5h 2h 3h 4h 5h 6h 10h 20h v l10.0 9.6V 1,349 1,030 800 686 505 351 276 214 169 123 99.2 77.9 68.3 42.0 22.8 i 38.0A 9.5A 1.9A m 114.0A 9.9V 1,271
in „Bleiakku richtig lagern“ · Analoge Elektronik und Schaltungstechnik ·
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UM3758-120A.pdf
with Data Bit High to Low - U 24 DD L1 ? - = v - + w 21 ODE 1OOKn. IOOKn 19 sc 0 c 120 PF ; L - - - - L2 17 23 X/RX OUT 22 < U M 37 58 408 A < 21 18 08 m 18 /B /A M /BM 20 23 TX/RX OUT : m _ i ! i OPERFITION : D i.02, . . . ..D8QRE NOR,,
in „Funksteuerung/Fernsteuerung Bitte um Hilfe“ · HF, Funk und Felder ·
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MAX1480A.pdf
VCC = 4.5V E 100 E VCC = 4.5V E 80 A R DE´ = CC R 80 R DE´ = CC U 80 RL = ∞ C C 70 M Y Y DE´ = VCC L L 60 P P 60 , U S 60 V = 5.5V S 50 VCC = 5.5V RL = ∞ S 40 CC VCC = 5.0V RL= ∞ VCC = 5.0V C VCC = 5.5V VCC = 5.0V 40 / VCC = 4.5V 40 20 30 B VCC = 4.5V 20 VCC = 4.5V / 0 20 -40 -20 0 20 40 60 80 -40 -
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MAX1480A-MAX1490B.pdf
DE´ = V / U 80 RL = ∞ U 80 U 70 CC B Y Y DE´ = V Y L L CC L 60 / U 60 U 60 U VCC = 5.5V C S S VCC = 5.5V S 50 V = 5.0V RL = ∞ 40 VCC = 5.5V VCC = 5.0V VCC = 5.0V RL= ∞ CC , VCC = 4.5V 40 40 20 30 M VCC = 4.5V VCC = 4.5V 0 20 20 A -40 -20 0 20 40 60 80
in „[V] 1St. DS1480ACPI DIL Complete, Isolated RS-485/RS-422 Data Interface“ · Markt ·
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NEC-UPG2179TB-E4-A-datasheet.pdf
GHz) INPUT-OUTPUT1 INPUT-OUTPUT2 ISOLATION vs. FREQUENCY ISOLATION vs. FREQUENCY 50 50 40 40 30 30 B 20 B 20 ( ( L 10 L 10 I I n 0 n 0 t -10 t -10 o o I -20 I -20 -30 -30 -40 -40 -50 -50 0.5 0.8 1.1 1.4 1.7 2.0 2.3 2.6 2.9 3.2 3.5 0.5 0.8 1.1 1.4 1.7 2.0 2.3 2.6 2.9 3.2 3.5 Frequency f (GHz) Frequency
in „Schnelles Analogsignal (2ns) unverfälscht umschalten“ · Analoge Elektronik und Schaltungstechnik ·
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WG320240BX-TFHVZ_021__1.pdf
Round type : As following drawing Φ=( x + y ) / 2 SIZE Acceptable Q TY Φ≦0.10 Accept no dense 0.10<Φ≦0.20 2 2.5 LCD black spots, white 0.20<Φ≦0.25 1 spots, 0.25<Φ 0 03 contaminati on (non-display 3.2 Line type : (As following drawing) ) Length Width Acceptable Q TY --- W≦0.02 Accept no dense L≦3.0 0.02<W≦0.03 2.5 2 L≦2.5 0.03<W≦0.05 --- 0.05<W As round type If bubbles are visible, Size Φ Acceptable Q TY judge using black spot Φ≦0.20 Accept no dense Polarizer specifications, not easy 04 bubbles to find, must check
in „[V] 8 LCDs 320x240 s/w, 6 Zoll, Touch, inkl Controller“ · Markt ·
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WG320240BX-TFHVZ_021__1.pdf
Round type : As following drawing Φ=( x + y ) / 2 SIZE Acceptable Q TY Φ≦0.10 Accept no dense 0.10<Φ≦0.20 2 2.5 LCD black spots, white 0.20<Φ≦0.25 1 spots, 0.25<Φ 0 03 contaminati on (non-display 3.2 Line type : (As following drawing) ) Length Width Acceptable Q TY --- W≦0.02 Accept no dense L≦3.0 0.02<W≦0.03 2.5 2 L≦2.5 0.03<W≦0.05 --- 0.05<W As round type If bubbles are visible, Size Φ Acceptable Q TY judge using black spot Φ≦0.20 Accept no dense Polarizer specifications, not easy 04 bubbles to find, must check
in „[v] LCDs 320x240 s/w, 6 Zoll, Touch, inkl Controller“ · Markt ·
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WG320240BX-TFHVZ_021__1_320-240_display.pdf
Round type : As following drawing Φ=( x + y ) / 2 SIZE Acceptable Q TY Φ≦0.10 Accept no dense 0.10<Φ≦0.20 2 2.5 LCD black spots, white 0.20<Φ≦0.25 1 spots, 0.25<Φ 0 03 contaminati on (non-display 3.2 Line type : (As following drawing) ) Length Width Acceptable Q TY --- W≦0.02 Accept no dense L≦3.0 0.02<W≦0.03 2.5 2 L≦2.5 0.03<W≦0.05 --- 0.05<W As round type If bubbles are visible, Size Φ Acceptable Q TY judge using black spot Φ≦0.20 Accept no dense Polarizer specifications, not easy 04 bubbles to find, must check
in „Anstuerung eines Grafik LCDs. Fragen zu Display und Controller“ · Mikrocontroller und Digitale Elektronik ·
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L6562N_PFC__STM.pdf
Vcc - 4.0 1 Lower clamp -4.5 0 0 100 200 300 400 500 600 700 -50 0 50 100 150 GD [mA] Tj (°C) 7/16 L6562 Figure 20. Gate-drive clamp vs. T j Figure 21. UVLO saturation vs. T j Vpin7clamp Vpin7 15 1.1 (V) (V) Vcc = 20 V Vcc = 0 V 14 1 0.9 13 0.8 12 0.7 11 0.6 10 0.5 -50 0 50 100 150 -50 0 50 100 150
in „PFC Controller (L6562) statt normalem SNT ControllerSNT“ · Analoge Elektronik und Schaltungstechnik ·
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CT.pdf
Dissipation Factor initial specified value Leakage current initial specified value DIMENSIONS (mm) A±0.2 D L A H I W P K 0.3max ( +0.15 K 4.0 5.4 4.3 5.5MAX 1.8 0.65±0.1 1.0 0.35 -0.20 5.0 5.4 5.3 6.5MAX 2.2 0.65±0.1 1.5 0.35 +-0.20 0 +0.15 ± H P 6.3 5.4 6.6 7.8MAX 2.6 0.65±0.1 2.1 0.35 -0.20 D ( 8.0 6.2 8.3 9.5MAX 3.4 0.65±0.1 2.2 0.35 +-0.20 φ ±0.20 +0.1 8.0 10.2 8.3 10.0MAX 3.4 0.90±0.2 3.1 0.70 L _0.2 W ( 10.0 10.2 10.3 12.0MAX 3.5 0.90±0.2 4.6 0.70 ±0.20 φ φ 8~ 10=L±0.3 ( )reference size CT Series Case size : D x L (mm) CASE SIZE & MAX
in „Suche bestimmten SMD Elko Footprint für Protel“ · Platinen ·
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LM117.pdf
voltages www.national.com 16 L M 1 5A Constant Voltage/Constant Current Regulator 7 L M 1 7 / L M 1 7 906315 †Solid tantalum *Lights in c1A Current Regulator *Minimum load≊4 mAent High Gain Amplifier 906316 1.2V–20V Regulator with
in „Wie 10mA Konstantstromquelle ?“ · Analoge Elektronik und Schaltungstechnik ·
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lm2679-adj.pdf
20V, V = 5V, I = 5A V = 20V, V = 5V, I = 500 mA IN OUT LOAD IN OUT LOAD L = 10 µH, COUT = 400 µF, COUTESR = 13 mΩ L = 10 µH, C OUT = 400 µF, COUT ESR = 13 mΩ 10084715 10084716 A: SW Pin Voltage, 10 V/div
in „Schaltregler Schaltplan und Layout Kontrolle“ · Analoge Elektronik und Schaltungstechnik ·
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Spektrumanalyse_RuS-Tutorium.pdf
Störfrequenzhub, vervielfacht, wodurch sich das Phasenrauschen ver- schlechtert. Es gilt: Lmult(foff= L(foff+ 20 · lg(n) (Gl. 5-25) L L /dBm 1dB,e e mit L multoff vom Trägerabstand abhängiges Phasenrauschen nach Bild 5-14 1-dB-Kompressionspunkt der Vervielfachung, in dBc (1 Hz) L(foff vom Trägerabstand
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PDF
Spektrumanalyse.pdf
Störfrequenzhub, vervielfacht, wodurch sich das Phasenrauschen ver- schlechtert. Es gilt: Lmult(foff= L(foff+ 20 · lg(n) (Gl. 5-25) L L /dBm 1dB,e e mit L multoff vom Trägerabstand abhängiges Phasenrauschen nach Bild 5-14 1-dB-Kompressionspunkt der Vervielfachung, in dBc (1 Hz) L(foff vom Trägerabstand
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tle5206_motorbridge.pdf
currents can occur. 1.6 Input Logic Truth Table Functional Truth Table IN1 IN2 OUT1 OUT2 Comments L L L L Brake; both low side transistors turned-ON L H L H Motor turns counterclockwise H L H L Motor turns clockwise H H H H Brake; both high side transistors turned-ON Notes for Output Stage Symbol Value
in „Diskrete H-Brücke“ · Analoge Elektronik und Schaltungstechnik ·
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FR_Family_MB91F109.pdf
executed and not completed. P80 Can be configured as general purpose I/O port when RDY is not used. 20 23 BGRNT E External bus release acknowledge output Outputs “L” level when external bus is released. P81 Can be configured as general purpose I/O port when BGRNT is not used. 21 24 BRQ C External bus
in „Fujitsu MB91F011 internal flash read/write“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DG211_70040.pdf
www.vishay.com S-00788—Rev. H, 24-Apr-00 5 DG211B/212B Vishay Siliconix TEST CIRCUITS +15 V V+ 3 V Logic 50% r <20 ns V = +2 V S D Input f <20 ns S VO 0 V IN tOFF R C 3 V L 35 pF GND V– 1 kW 90% Switch VO Output t –15 V R ON L VO= V S R + r L DS(on) FIGURE 2. Switching Time C +15 V +15 V C V+ S D V S 1 1 V+ R = 50 W S D VO g 50 W VS IN1 R = 50 W g 0V, 2.4 V RL S D V O IN NC 2 2 0V, 2.4 V R GND V– C IN2 L 0V, 2.4 V GND V– C –15 V C = RF bypass VS V S XTALKIsolation = 20 log Off Isolation = 20 log VO –15 V V O FIGURE 3. Off Isolation FIGURE 4. Channel-to-Channel Crosstalk +15 V DVO VO V+ Rg S D VO Vg IN
in „Integrator resetten, bzw. ersatz für SD211“ · Mikrocontroller und Digitale Elektronik ·
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DG212_Siliconix.pdf
www.vishay.com S-00788—Rev. H, 24-Apr-00 5 DG211B/212B Vishay Siliconix TEST CIRCUITS +15 V V+ 3 V Logic 50% r <20 ns V = +2 V S D Input f <20 ns S VO 0 V IN tOFF R C 3 V L 35 pF GND V– 1 kW 90% Switch VO Output t –15 V R ON L VO= V S R + r L DS(on) FIGURE 2. Switching Time C +15 V +15 V C V+ S D V S 1 1 V+ R = 50 W S D VO g 50 W VS IN1 R = 50 W g 0V, 2.4 V RL S D V O IN NC 2 2 0V, 2.4 V R GND V– C IN2 L 0V, 2.4 V GND V– C –15 V C = RF bypass VS V S XTALKIsolation = 20 log Off Isolation = 20 log VO –15 V V O FIGURE 3. Off Isolation FIGURE 4. Channel-to-Channel Crosstalk +15 V DVO VO V+ Rg S D VO Vg IN
in „Analogschalter mit Logikpegel-Shifter“ · Analoge Elektronik und Schaltungstechnik ·
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1540fb.pdf
= GND = 0V V–= GND = 0V T = 25°C 0.4 + )1.186 8 A A V = 3V ( ( V– = GND = 0V E1.184 7 T A ) E 0.3 L V 6 R V1.182 ( C V = 2V E R 5 Y 0.2 – N1.180 V 4 P V = GND = 0V R ∆ U F1.178 3 S R 0.1 1.176 2 1.174 1 0 1.172 0 –60 –40 –20 0 20 40 60 80 100 –60 –40 –20 0 20 40 60 80 100 0 5 10 15 20 25 30 35 40 TEMPERATURE
in „Komparator Aufbau - diskret oder über µC?“ · Mikrocontroller und Digitale Elektronik ·
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Frequenzzaehler_Sprut211120A.pdf
input_TTL 2 3 R 1 1 22-27-2031-03 R 6 k L D6 1 2 1 M SB140 6 C R 2 74AC14N I Q5 BF256 0 SB140 0 6 9 0 10 6 1 1 8 IC5 C 1 C1 C17 2 8 C20 C 2 C12 100n R3 33 B C 33p 20MHz T 6 1 1 0 F R17 U813BSSIP6 10n D2 R4 0 C2 1 SB140 1 5 C k k 9 D1 k C10 C33
in „Frequenzzähler Sprut 1GHz“ · Mikrocontroller und Digitale Elektronik ·
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macom2011.pdf
45 100µ s, 10% duty 1200 - 1400 PH1214-2M Bipolar 28 2 7.0 40 100µ s, 10% duty 1200 - 1400 PH1214-3L Bipolar 16.5 3 5.7 40 2ms, 20% duty 1200 - 1400 PH1214-0.85L Bipolar 11.5 0.85 9.3 30 2ms, 20% duty 2200 - 2600 PH2226-110M Bipolar 36 110 8.0 45 100µ s, 10% duty 2200 - 2600 PH2226-50M Bipolar 36 50
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schematic1.pdf
aud_adr0_OBUF_inst hphone_l_reg[0] I O aud_adr0 C OBUF CE Q 0 0 D aud_adr1_OBUF_inst R I O aud_adr1 OBUF FDRE hphone_l_reg[1] C CE 1 1 Q D R FDRE hphone_l_reg[2] C CE 2 2 Q D R FDRE hphone_l_reg[3] C CE 3 3 Q D R FDRE hphone_l_reg
in „Genesys 2 (Xilinx Kintex 7): Audio-Codec Implementierung und Filteranbindung“ · FPGA, VHDL & Co. ·
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155762-da-01-en-LOGIK_IC_M74HC595B1R_STM.pdf
23 29 35 2.0 60 175 220 265 4.5 150 R L 1 K Ω 20 35 44 53 ns 6.0 17 30 37 45 PLZ PHZ High Impedance 2.0 30 150 190 225 Output Disable 4.5 50 R = 1 K Ω 15 30 38 45 ns Time L 6.0 14 26 32 38 f Maximum Clock 2.0 6.0 17 4.8 4 MAX Frequency 4.5
in „uC + 3 Schieberegister + 7-Segmentanzeige“ · Mikrocontroller und Digitale Elektronik ·
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2N4403-82294.pdf
Characteristics (Continued) 4 3 M M o51.5 = IC= -10mA h fe B T1.4 VCE= -10 V h ie 4 T1.3 h re 4 S h oe 0 U1.2 3 L1.1 hoe — V 1 T P E0.9 hre N T0.8 P L hie G R0.7 e R0.6 h n A0.5 fe r C -40 -20 0 20 40 60 80 100 a TA- AMBIENT TEMPERATURE ( C) P u Figure 15. Common Emitter Characteristics r p s e A m l f e r © 2001
in „moderner Ersatztyp für BC550 Audio low noise gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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nightsky_arx15.pdf
TXD0 IFPB_L2 BL20 NVHS_TX5 AV6 10K_04 m NVHS_TX5 AV5 USB_SCL BB8 TXD4 TXD1 IFPB_L1 BM20 NVHS_TX6 AV7 USB_SDA BB7 a TXD4 TXD1 IFPB_L1 BM21 NVHS_TX6 AV8 BG6 USB_TERMP0 NVHS_TX7 AW7 r TXD5 TXD2 IFPB_L0 BL21 NVHS_TX7
in „SMD TGAJ TVS Diode USB“ · Mikrocontroller und Digitale Elektronik ·
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DG-24064.PDF
Write Data 6 /RD Read Data 7 /CE Chip Enable 8 C/D Code/Data 9 NC No connection 10 /RES Reset Active “L” 11-18 DB0-DB7 Data Bus Line 19 FS Font select 20 NC No connection DATA VISION 01/09/24 10 / 19 SPECIFICATIONS FOR LIQUID CRYSTAL DISPLAY MODULE MODEL NO: DG-24064-2-S2FBLY-H 4.2 Circuit Block Diagram D L L V B / / D D G SV C C S ~ E C/ C R W K A S D C B S D E D R 7 C 6 n 6 S r C I l r C r - D o s R v m a M r o l n 6 4 S D e v m 0 e e r t D A o C M K a L L r C G S x D H r g 2 T v m 0 0 a r n x n t 6 e
in „pinbelegung LCD-Display (20-polig)“ · Mikrocontroller und Digitale Elektronik ·
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lw_1220_e.pdf
Ampèremètre 0...15 Aarithm. maxi 2,5 A Témoins lumineux: Puissance absorbée: env. 350 W Dimensions L x l x h: Jaune: charge 320 x 335 x 207 mm Rouge: dérangement Protection contre l’enclenchement encasdecourt-circuitoud’inversion Poids: 12 kg Degré de protection (DIN 40050): de polarité IP 20 Tension
in „Suche Bedienungsanleitung Bosch LW 12/20 E“ · Offtopic ·
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Rohm_BD6211.pdf
. 3/20 TSZ22111・15・001 09.Sep.2014 Rev.003 BD621xxx Series Datasheet Typical Performance Curves (Reference Data) 1.0 1.5 85°C 25°C ] 0.8 _ mA -40°C ] 1.0 [[ [ -40°C IC / 25°C t:0.6 : en i 85°C re o 0.5 uu l
in „Frage zu Entladung von Elko“ · Analoge Elektronik und Schaltungstechnik ·
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683405.pdf
Normalized to O 0.0 l T== 25°C N e 0.2 A r -60 -40 -20 0 20 40 60 80 100 10 100 1000 s TA- AMBIENT TEMPERATURE (°C) RBE- BASE RESISTANCE (kΩ) Fig. 6 Collector-Emitter SaturationVoltage vs. Collector Current Fig. 5 CTR vs. RBE (Saturated) 1.0 100 ) E 0.9 ( VCE= 0.3 V R TA= 25˚C B 0.8 T ) 10 R I ( T 0.7 IF= 20 mA M E C - A E O L 1 R 0.6 T O R IF= 10 mA E V C 0.5 L O I = 2.5 mA ( O T F T 0.4 - R 0.1 C T U D 0.3 ( A Z IF= 5 mA E S L 0.2 V 0.01 F = 20 mA A R 0.1 O I = 5 mA F = 10 mA N F 0.010 100 1000 0.001 0.01
in „optokoppler_Eingangsspannung“ · Mikrocontroller und Digitale Elektronik ·