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PDF
Schwarzbeck_FSME_1515de.pdf
EinstellreglefürGrundverstärkung (191 range basicsensitivityontrols (one foreach frequ.) (20) powerlinefuse.3a,5x20mm l20l ._Netzsicherung0.3A(O,25-0,315,4)5x2omm (211 Gerätesteckermit Schurzleiter22OV (211 power line/mains plug for 22OV, safetyground (221 Ausgängefür Hiffsgeräte QZl output receptaclefor aux.equipment.
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Hauptplatine.pdf
GND GND 9 0 1 approx. Level: 1 . 1 3 1 . -12 ... +13 dBm C 2 C 1 C 9 C 4 n Band 4 4 n C 1 C 4 BI-4 L20 L21 L22 BO-4 27n 15n 18n C144 C145 C146 C147 16p 18p 15p 12p +5VA +5VA FB29 FB30 MPZ2012S102 GND GND GND GND MPZ2012S102 8 9 1 7 Band 5 1 7 BI-5 C 4 L23 L24 L25 L26 C 4 BO-5 C150 C151 C152 18n 22n 22n
in „Oszillator YIG 1,9-4,4 GHz Avantek ASF-9882/7841“ · HF, Funk und Felder ·
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ADW1_Relais.pdf
Ave. m 5.0 m5.0 h o voltage Ave. e e C n10 i i e 4.0 e4.0 Operate voltage a a ー60 40 ー20 0 e 3.0 l 20 40 60 80 100 O R3.0 Ambient Max. ー10 temperature℃) 2.0 2.0 Max. Min. Min. 1.0 1.0 ー20 0 ー30 0 70 80 90 100 110 120 130 140 150 160 70 80 90 100 110 120 130 140 150 160 Coil applied voltage %V Coil applied
in „Inkompetente Relais-Hersteller?“ · Analoge Elektronik und Schaltungstechnik ·
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LED-RGB-SK6812RGBP8.pdf
ThermalPadTemperature(T=25°C) WavelengthCharacteristics 100% n GREEN t BLUE i 80% RED t D n 60% s i m 40% e t l20% R 0.00 400 450 500 550 600 650 700 750 800 Wavelength(nm) TypicalRadiationPattern 120° 0 30° 60° 90° 90 75 60 45 30 15 0 0.2 0.4 0.6 0.8 1.0 RadiationAngle Document No.: SPC / SK6812RGBP8 Rev. No.:
in „RGBW Led Stripe 12V LED Typ unbekannt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
eGC.pdf
PIIC9014 mmc2_dat4PIIC10L18 SD_CMD_1V8 PIIC903A2 B3 PIIC9013 SD_DAT0_3V3 PIJ107DAT0 mmc2_dat5PIIC10L20 SD_DAT0_1V8 PIIC904A3 B4 PIIC9012 SD_DAT1_3V3 PIJ108DAT1 mmc2_dat6PIIC10L21 SD_DAT1_1V8 PIIC905A4 B5 PIIC9011 SD_DAT2_3V3 PIJ101DAT2 mmc2_dat7 M19 SD_DAT2_1V8 PIIC906A5 B6 PIIC9010 SD_DAT3_3V3 PIJ102DAT3 SD_DAT3_1V8 PIIC907A6 GND PIIC909 mmc2_dir_cmd L18 PIJ101CD mmc2_dir_dat0 L20 TXB0106 6 mmc2_dir_dat13 V18 GND P11106VSS mmc2_dir_dat2IIY19V18 PI9101GND mmc2_dir_dat4:7IC10Y19 PIJ109CD_GND AM3505-ZER µSD Connector C C GND POSD_CD USB Device IC1R1 J2J2 usb0_vbusIIB60C7 27 Ohm
in „[Suche] Interessierte(n) an Projekt (ARM/FPGA)“ · Mikrocontroller und Digitale Elektronik ·
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frequenzabhaengigkeit.pdf
CapacitancevsFrequencyatTemperatures2200 µF 50V 1.2 1.2 85ºC 65ºC 45ºC 25ºC 85ºC 65ºC 45ºC 25ºC e 1 e 1 l –20ºC 0ºC l –20ºC 0ºC V a z0.8 z0.8 H H 2 2 ,0.6 ,0.6 –40ºC º –40ºC C 5 5 2 2 t0.4 t0.4 i i a a R0.2 R0.2 0 0 10 100 1000 10000 100000 1000000 10 100 1000 10000 100000 1000000 Frequency(Hz) Frequency(Hz
in „Frequenzabhängigkeit Kapazität Elko“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
msp430f413.pdf
60% P1.5/TACLK/ACLK, C L 20 pF fACLK = LFXT1 = LF 30% 70% V CC = 2.2 V / 3 V fACLK = LFXT1/n 50% Xdc Duty cycle of output frequency 50%− 50%+ P1.1/TA0/MCLK, fMCLK = LFXT1/n 15 ns 50% 15 ns C = 20 pF, L 50%− 50%+ V CC = 2.2 V /
in „MSP430F413 Analog eingänge“ · Mikrocontroller und Digitale Elektronik ·
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Datei
version_1p3_assembler.asm
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
version_1p3_assembler.asm
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IS52Basic.a51
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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Datei
IS52Basic.a51
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Basic für 80C31“ · Mikrocontroller und Digitale Elektronik ·
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Datei
BASIC131-PS3.a51
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
IS51Basic133.a51
****************************************************** ; ; ACALL C3C ;SAVE THE DPTR (DP_T) ; CALL L20DPI ;PUT LINE NUMBER IN R2:R0 ; CALL FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; CALL DP_T ; INC DPTR ;BUMP DPTR PAST THE LINE NUMBER ; ;****** Proper code starts here: ********************************************* ; lcall L20DPI ;PUT LINE NUMBER IN R2:R0 lcall FP_BASE8 ;CONVERT R2:R0 TO INTEGER ; ;****** continue with original code: ***************************************** ; UPP0: CJNE R1,#LOW IBUF+6,UPP01 UPP01: JC UPP91
in „Layout für MCS51 Experimentierboard“ · Projekte & Code ·
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PDF
PRC1602A.pdf
Input Low Voltage V lL -0.3 0.6 V Input High Current IIh -2.0 2.0 uA VDD = 5.0V Input Low Current IlL -20 -50 -100 uA V oh Output High Voltage 2.4 - VDD V OH = - 0.1mA Pins: DB7-0 Output Low Voltage V OL - - 0.4 V OL= 0.1mA Pins: DB7-0 LCD Voltage V lcd 3 4.5 13 V Operating Current Idd 1.0 mA b) AC CHARACTERISTICS
in „LCD Ansteuerung - Fehlersuche“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LP104V2-B1_CAS_Rev_0.pdf
0.0 July 10, 2002 19 / 25 LP104V2 Liquid Crystal Display Product Specification <REAR VIEW> 1 ( V 0 L 20 / 25 Ver. 0.0 July 10, 2002 LP104V2 Liquid Crystal Display Product Specification 6. Reliability Environment test condition No Test Item Condition 1 High temperature storage test Ta= 60°C 240h 2 Low
in „TFT (3 * 6 Bit TTL Interface) an PIC 16F877“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INF.pdf
-- 1.9 2.5 mΩ ON V IN, I =L0A ,Tj=150°C: -- 3.3 4.0 I =120A ,T =150°C: -- -- 4.0 L j V bb=6 V , I L20A ,Tj=150°C: R ON(Static) -- 4.6 9.0 1) 10) Nominal load current (Tab to pins 1,5) L(ISO) 128 165 -- A ISO 10483-1/6.7: V ON =0.5V, T =c5°C 11) Maximum load current in resistive range (Tab to pins 1,5
in „Mosfet Verarmungstyp?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm4861.pdf
in conjunction with R , forms a of 3, a ratio of 1:1.5 offR toiR results in an allocation if R = O L 20kΩ, R f= 30kΩ. The final design step is to address the highpass filter. The −3dB point of this high pass filter is bandwidth requirements which must be stated as a pair of 1/(2πR LCO), so care should
in „Audioverstärker auf Steckbrett rauscht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lt1208.pdf
15V A ) 4 E 4 ( E ( AV= 1 AV= –1 D C = 100pF I 40 60 M N 2 I 2 G R W G C = 50pF E G S 0 A 0 A N U E L 20 VS= ±5V 40 E T –2 A = 1 G –2 V V = ±15V G O V AV= –1 T –4 C = 500pF C = 0 S ) –4 O 0 20 –6 V = ±15V V –6 TS= 25°C C = 1000pF TA= 25°C –8 A –8 10mV SETTLING –20 0 –10 –10 100 1k 10k 100k 1M 10M 100M
in „Operations verstärker als Komparator verschlechterung der Slewrate?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTS555_20030925.pdf
j R ON -- 1.9 2.5 mΩ V IN, I =L0A ,T j150°C: -- 3.3 4.0 IL=120A ,T j150°C: -- -- 4.0 V bb=6 V , I L20A ,T j150°C: R ON(Static) -- 4.6 9.0 10) Nominal load current (Tab to pins 1,5) IL(ISO) 128 165 -- A ISO 10483-1/6.7: V ON =0.5V, T =c5°C 1) Maximum load current in resistive range (Tab to pins 1,5)
in „Elektronische Sicherung für Akku“ · Mikrocontroller und Digitale Elektronik ·
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PDF
OP177.pdf
(0.1HztoFrequencyIndicated) 32 1.50 T = 25°C TA= 25°C A 28 VS= ±15V VS= ±15V 1.25 ) ( E24 U I 1.00 L20 P ) A A K16 ( 0.75 A IB E -12 IB1– (nA) T 0.50 IB2– (nA) - I 3– (nA) A 8 B E IB1+ (nA) P 0.25 IB2+ (nA) 4 0 IB3+ (nA) 3 - 9 2 2 0 0 0 0 –16 –14 –10 –6 –2 2 6 10 14 1k 10k 100k 1M FREQUENCY (Hz) VCM
in „Konstantstromquelle bis 100ma mit OPV auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
INA137.pdf
MAXIMUM OUTPUT VOLTAGE vs FREQUENCY vs OUTPUT VOLTAGE 40 80 G = 1/2 V = ±18V 60 S V p 30 ( 40 p g ( l 20 e V a 20 e 0 o o V - u n –20 u m O 10 m –40 C –60 VREF= 0V RL = 2k 0 –80 100 1k 10k 100k 1M 10M –20 –15 –10 –5 0 5 10 15 20 Frequency (Hz) Output Voltage (V) ® 5 INA137, INA2137 TYPICAL PERFORMANCE
in „Differenzverstärker IC gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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TL494-D.PDF
AVOL 40 E E 12 V S T P 60 60 H A 10 O 50 80 S E 8.0 N 40 φ 100 ES T E C E 6.0 O 30 120 E C 0.001 mF ,L20 140 , E 4.0 V φ T 2.0 A 10 160 D 0 180 % 0 1.0 10 100 1.0 k 10 k 100 k 1.0 M 500 k 1.0 k 10 k 100 k 500 k f, FREQUENCY (Hz) f , OSCILLATOR FREQUENCY (Hz) osc Figure 4. Open Loop Voltage Gain and Figure
in „Schaltnetzteil m. TL494 - Frage zu Mosfet (und Treiber)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2010-04_CARTS_-_Can_ESR_Be_Too_Low_Electrolytic_and_other_Capacitors.pdf
rising to 27 mΩ at 1 kHz. 40 15 m Ω Cap Alone ) B 20 Add 20 m Ω Only ( Add 1000pF Only i a 0 G o L -20 -40 1 10 100 ) 180 e r 135 e ( 90 e a h 45 P o 0 Phase Margin L Danger Zone -45 1 5 7 10 100 Frequency (kHz) Figure 3. Closed-Loop Gain and Phase Data for Single-Chip-Controller Power Supply Circuit
in „Schaltregler Elkos tauschen sinnvoll?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Valvo_Brief_UKW-Empfaenger_mit_FD1A_300873.pdf
Begrenzungseinsatzes S E I T E 4 Bild 3. FM-Tuner für den Mono-Empfänger nach Bild 4 L, 3+3 Wdgn. 0,2 CuL L 20 Wdgn. 0,1 CuL auf VALVO - 7 x 7 - Bausatz L 4 Wdgn. 0,6 Cu ineinandergewickelt, 5 mm Φ L7 3 Wdgn. 0,1 CuL auf L gewickelt 2 8 7 L3 5 Wdgn. 0,6 Cu, 6 mm 0 L9 5 μΗ-Drossel L4 6 Wdgn. 0,2 CuL auf Koppelstift
in „(V) Valvo FD11“ · Markt ·
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PDF
68641_1_.pdf
die on independently. 100% r e w o 80% P t Red n 60% i ) Green d a ( R 40% Blue e i White 4000K t l 20% White 6000K e R 0% 380 430 480 530 580 630 680 730 780 Wavelength (nm) Copyright © 2010 Cree, Inc. All rights reserved. The information in this document is subject to change without no ice. Cree, the
in „Wieviel LEDs brauche ich?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PH320240T023-IHC06_005.pdf
life time” is defined as the module brightness decrease to 50% original brightness at Ta=25℃ and I L=20mA. The LED life time could be decreased if operatinLis larger than 20 mA. PH320240T023-IHC06 Page9 SAMPLE Ver.01 SPEC Edi.005 1.7 Touch Panel Characteristics Features Item Standard Value Touch Panel
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PDF
Dissertation.pdf
N-Lauroylsarcosin, 35 g SDS, auf 500 mL mit DEPC-H 2O auffüllen. 3 Material und Methoden 37 Waschlösung 2x: 10 mL 20x SSC, 1 mL 10% SDS, auf 100 mL mit DEPC-H O2auffüllen. Waschlösung 0,5x: 2,5 mL 20x SSC, 1 mL 10% SDS, auf 100 mL mit DEPC-H 2O auffüllen. Antikörperlösung: Anti-DIG-AP Fab-Fragments (Roche Diagnostics
in „UVC Wasserentkeimung mit Led?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTC2945.pdf
Shutdown l 40 70 μA ICC INTVCC Supply Current INTVCC= VDD= 5V l 0.6 0.9 mA Shutdown, INTV = V = 5V l 20 80 μA CC DD ICCSRC INTVCC Linear Regulator Output Current VDD= 7V l –10 mA VCC INTVCC Linear Regulator Voltage 7V < DD < 80V,LOAD= 1mA l 4.5 5 5.5 V ΔV INTV Linear Regulator Load Regulation7V < V <
in „U/I/P Metrer für Netzteile“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2945f.pdf
Shutdown l 40 70 μA ICC INTVCC Supply Current INTVCC= VDD= 5V l 0.6 0.9 mA Shutdown, INTV = V = 5V l 20 80 μA CC DD ICCSRC INTVCC Linear Regulator Output Current VDD= 7V l –10 mA VCC INTVCC Linear Regulator Voltage 7V < DD < 80V,LOAD= 1mA l 4.5 5 5.5 V ΔV INTV Linear Regulator Load Regulation7V < V <
in „I2C mit Bascom Fehlersuche bei LTC2945“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INA114.pdf
OUTPUT SWING vs FREQUENCY 3 32 Both Inputs ) 28 ) 2 |b1| +b2I | ( G = 1, 10 A One Input e 24 ( u n 1 l 20 G = 100 r Over-Voltage m u A s 0 Over-Voltage Protection a 16 i Normal e G = 1000 t Protection Operation o 12 u –1 - I a 8 One Input P –2 4 Both Inputs 0 –3 –45 –30 –15 0 15 30 45 10 100 1k 10k 100k
in „Differnezverstärker für Strommessung?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
INA114.pdf
OUTPUT SWING vs FREQUENCY 3 32 Both Inputs ) 28 ) 2 |b1| +b2I | ( G = 1, 10 A One Input e 24 ( u n 1 l 20 G = 100 r Over-Voltage m u A s 0 Over-Voltage Protection a 16 i Normal e G = 1000 t Protection Operation o 12 u –1 - I a 8 One Input P –2 4 Both Inputs 0 –3 –45 –30 –15 0 15 30 45 10 100 1k 10k 100k
in „Messen von Mikrofonpegeln“ · Mikrocontroller und Digitale Elektronik ·
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Datei
gls330.bas
* 17 'Line 17 Const Lcd_l18 = Lcd_cr * 18 'Line 18 Const Lcd_l19 = Lcd_cr * 19 'Line 19 Const Lcd_l20 = Lcd_cr * 20 'Line 20 Const Lcd_l21 = Lcd_cr * 21 'Line 21 Const Lcd_l22 = Lcd_cr * 22 'Line 22 Const Lcd_l23 = Lcd_cr * 23 'Line 23 Const Lcd_l24 = Lcd_cr * 24 'Line 24 Const Lcd_l25 = Lcd_cr * 25
in „LCD-Modul EPSON ECM-A0428 von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM3914.pdf
LM3914 also decrease with temperature. 13 www.national.com 1 9 Typical Applications (Continued) 3 M L 20-Segment Meter with Mode Switch DS007970-14 *The exact wiring arrangement of this schematic shows the need for Mode Select (pin 9) to sense the V voltage exactly as it appears on pin 3. Programs LEDs
in „Frage zu LM3914“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MasterPinout.ucf
LOC = "AE24"; NET "P8_PIN38" LOC = "T24"; # 38 free I/=s on 68pin connector P2 NET "P2_PIN1" LOC = "L20"; NET "P2_PIN3" LOC = "L19"; NET "P2_PIN5" LOC = "K17"; NET "P2_PIN7" LOC = "K18"; NET "P2_PIN9" LOC = "K21"; NET "P2_PIN11" LOC = "L21"; NET "P2_PIN13" LOC = "K16"; NET "P2_PIN15" LOC = "L16"; NET
in „Preisgünstige elektronische Geräte für reverse-engineering - Part 3“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM3914.pdf
LM3914 also decrease with temperature. 13 www.national.com 1 9 Typical Applications (Continued) 3 M L 20-Segment Meter with Mode Switch DS007970-14 *The exact wiring arrangement of this schematic shows the need for Mode Select (pin 9) to sense the V voltage exactly as it appears on pin 3. Programs LEDs
in „Drehzahlerfassung und Ausgabe“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HSDL-3612.pdf
Wavelength Receiver SIR Pulse Width tpw (SIR) 1 4.0 s θ 1/2 15° , CL=10 pF Receiver Latency Time tL 20 50 s Receiver Rise/Fall Times tr/fXD) 25 ns [10] Receiver Wake Up Time tW 100 s Notes: 7. Logic Low is a pulsed response. The condition is maintained for duration dependent on pattern and strength of
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM3914.pdf
LM3914 also decrease with temperature. 13 www.national.com 1 9 Typical Applications (Continued) 3 M L 20-Segment Meter with Mode Switch DS007970-14 *The exact wiring arrangement of this schematic shows the need for Mode Select (pin 9) to sense the V voltage exactly as it appears on pin 3. Programs LEDs
in „LM 3914 Kaskade“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
sn75lvds84a.pdf
at YP or YM, the complementary output is similarly loaded. (a) SCHEMATIC 100% VOD(H) 80% 0 V VOD(L) 20% 0% tf r V OC(PP) V V OC(SS) OC(SS) 0 V (b) WAVEFORMS Figure 3. Test Load and Voltage Definitions for LVDS Outputs POST OFFICE BOX 6•5DALLAS, TEXAS 75265 7 SN75LVDS84A, SN65LVDS84AQ FLATLINK TRANSMITTER
in „15" XGA Display an Computer anschließen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM3914.pdf
LM3914 also decrease with temperature. 13 www.national.com 1 9 Typical Applications (Continued) 3 M L 20-Segment Meter with Mode Switch DS007970-14 *The exact wiring arrangement of this schematic shows the need for Mode Select (pin 9) to sense the V voltage exactly as it appears on pin 3. Programs LEDs
in „LM3914 Display-Driver“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INA125.pdf
production distribution of 30 distribution of ) 25 ) ( packaged units. ( packaged units. s s 25 i 20 i l l 20 m m A 15 A o o 15 n n c 10 c 10 e 0.1% 0.02% e 0.1% 0.1% P P 0.02% 0.05% 5 0.02% 0.1% 5 0 0 0 5 0 5 0 5 0 5 0 5 0 0 0 05 0 5 0 5 0 5 0 5 0 5 7 0 2 5 7 0 2 5 7 0 5 0 57 5 2 0 7 5 2 0 7 5 – – – – – –
in „Signal einer Wägezelle auswerten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TX17D01VM2EAB.pdf
Width (mm) Maximum number Minimum space Scratches Ignored W≦0.02 Ignored - A, B L≦40 0.02<W≦0.04 10 - L≦20 W≦0.04 10 - Dent Serious one is not allowed A Wrinkles in polarizer Serious one is not allowed A Average diameter (mm) Maximum number D≦0.3 Ignored Bubbles on polarizer A 0.3<D≦0.5 12 0.5<D 3 Filamentous
in „[V] TFT 6,5 Zoll 1000 cd/m² Hitachi TX17D01VM2EAB“ · Markt ·
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PDF
1789204.pdf
12V 6,800 pF )60 1 MHz ) 3,300 pF m ( 40 t50 e 470 pF n 50 kHz a 30 r40 l u 100 kHz V y30 200 kHz l 20 100 pF 1,000 pF p p p20 u S10 S 10 0 0 100 1000 10000 10 100 1000 Capacitive Load (pF) Frequency (kHz) FIGURE 2-14: Supply Current vs. FIGURE 2-17: Supply Current vs. Capacitive Load. Frequency. 30
in „Low Side MOSFET Treiber als Pegelwandler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ULTRASCHALL_SENSOR_MURATA_MA40S4R.pdf
indicating the volume of sound and is expressed by the following OSC. S.C.M. Amp. formula. U.S. P 30cm S.P.L.=20log Po (dB) F.C. Anechoic Room where “P” is Sensor sound pressure (Pa) and “Po” is reference sound pressure (20µPa). U.S. : Ultrasonic Sensor Fig.6 shows a sound pressure measuring circuit. S.C.M. :
in „Ultraschallsensor Murata MA40S4R nieder- oder hochohmig“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
XLampXT-E.pdf
dISTRI BUTION - Royal Blue Relative Spectral Power 100% ) (80% r e o P60% t a d a40% Royal Blue R v t l20% R 0% 400 450 500 550 600 650 700 750 Wavelength (nm) Copyright © 2011-2012 Cree, Inc. All rights reserved. The information in this document is subject to change without notice. Cree, the Cree logo
in „Verkaufe Restbestände Cree LEDs XT-E XTEAWT-00-0000-00000BFE4“ · Markt ·
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PDF
INA125.pdf
production distribution of 30 distribution of ) 25 ) ( packaged units. ( packaged units. s s 25 i 20 i l l 20 m m A 15 A o o 15 n n c 10 c 10 e 0.1% 0.02% e 0.1% 0.1% P P 0.02% 0.05% 5 0.02% 0.1% 5 0 0 0 5 0 5 0 5 0 5 0 5 0 0 0 05 0 5 0 5 0 5 0 5 0 5 7 0 2 5 7 0 2 5 7 0 5 0 57 5 2 0 7 5 2 0 7 5 – – – – – –
in „Verstärker für Messbrücke“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TC4420.pdf
Capacitive Load. Load. 50 84 CL= 2200 pF VDD = 15V V = 18V 40 DD 70 ) c tD2 A n (56 (30 n m D1 r T u42 l20 l 500 kHz e p28 D u 10 S 200 kHz 14 20 kHz –60 –20 20 60 100 140 0 0 100 1000 10,000 TA (°C) Capacitive Load (pF) FIGURE 2-3: Propagation Delay Time vs. FIGURE 2-6: Supply Current vs. Temperature. Capacitive
in „Peltier-Driver Flyback-Diode“ · Mikrocontroller und Digitale Elektronik ·
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limestone_arm_pda_pxa320_datasheet.pdf
without notice. ToradexAG lltsagenstrasse5 l048Horw Swltzerland wwl.toradex.com infl@toradex.com l 20
in „[V] Toradex Limestone Marvell PXA320 Processor Board (8€)“ · Markt ·
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Baumappe_BX-222P_1_.pdf
L8 1,2 µ L5 3,3 µ L11 8,2 µ L2 22 µ L19 47 µ L22 120 µ L17 560 n L9 1,5 µ L6 3,3 µ L12 10 µ L3 22 µ L20 56 µ L23 150 µ Erläuterung: Mit NB bezeichnete Bauteile sind nicht bestückt. Die Bauelemente einer Zeile stehen jeweils an gleicher Stelle in der Filter-Grundschaltung (BildA5). Beispiel: C21 (180 pF
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LM2595.pdf
220/10 180/10 6 47 L13 220/25 220/16 220/10 220/10 0.5 10 68 L21 150/35 150/25 100/16 150/16 40 100 L20 150/35 82/35 100/16 100/20 8 33 L28 330/16 330/16 220/10 270/10 10 47 L31 220/25 220/25 220/10 220/10 1 15 68 L30 180/35 180/35 220/10 150/16 5 40 100 L29 180/35 120/35 100/16 120/16 9 68 L21 180/16
in „Schaltregler LM2595“ · Analoge Elektronik und Schaltungstechnik ·