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Strategies_for_bass_enhancement_in_Multiactuator_P.pdf
United Ac 1999;85(6):883–92. drawback is the inherent poor low frequency response, which is [10] Boone M. Multi-actuator panels (MAPs) as loudspeaker arrays for wave field synthesis. J Audio Eng Soc 2004;52(7–8):712–23. normally solved by placing a supporting subwoofer. In this paper, [11] Kuster M, de Vries
in „WT2003H4 mit akzeptabler Soundqualität“ · Mikrocontroller und Digitale Elektronik ·
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253499-da-01-en-AKKU_BLEI_12V_12_AH.pdf
charger vs. Charging pattern of the battery V V 1. Bold and Nut type Unit: inch (mm) T-shape terminal (M10) L-shape terminal (M5, M6, M8) V V (1) A (2) A (3) I I B1 E3 I Time I Time E3 E1 F1 E2 B2 V V F2 V V I I Height from Hole Position Bolt Terminal battery case top I Time I Time Type of Terminal Hole
in „[v] Zyklenfeste 12v 144Wh Akkus Panasonic 12 V 12 Ah LC-RA1212PG1 Blei-Vlies (AGM)“ · Markt ·
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PDF
82514_TFDU4100.pdf
switch for the IRED in Vishay Semicon- Receive Mode @ 5 V:IRED= 210 mAS I = 1.3 mA ductors SIR transceivers is designed to be operated @ 2.7 V:IRED 210 mA,SI = 1.0 mA like an open collector driver. Thus, the V CC2 source Transmit Mode @ 2.7 V: I== 210 mA, I = 3.5 mA (Avg
in „IR-Tranceiver“ · Mikrocontroller und Digitale Elektronik ·
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formelsammlung.pdf
1 0 L 0 0 y 1= y y y y = y′ y ′ 0 0 1 L 0 y ′ 0 2 M ⇒ M = M M M O M ⋅ M + M M M 0 0 0 L 1 M M n−1) (−1) (n−1 yn = y y − a 0 − a1 − a 3 L − a n−1 y f x ) 1444442444443 =A (n × )− Matrix
in „linear Interpolieren mit mehreren Parametern“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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TL783CKC.pdf
vs vs FREQUENCY VIRTUAL JUNCTION TEMPERATURE 2 10 1.30 ÎÎÎI= 35 V ÎÎÎÎI 20 V V = 10 V I = 15 mA 1 ÎÎÎÎ 1.29ÎÎÎÎ 10 O = 500 mA ÎÎÎJ= 25⋅C – e 1.28 e 1 ÎÎÎÎ g c l a V 1.27 d e p –1 c I 10 e 1.26 t e p e u 10–2 R 1.25 O – – e o Vr 1.24 Z –3 10 1.23 10–4 1.22 101 102 103 104 105 106 107 –75 –50 –25
in „Wie im Bereich von 1,2Vdc - 117Vdc einstellbare Konstantspannung aus 20Vdc erzeugen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
6ff78f.pdf
VR5,6,7,8,12,13,14,15,18,19,20,21 2 9-79-0302-02 MICON PCB ASS'Y 1 25 3 EC22716TS ELECT 220UF/16V(S) 1 M_C3 3 LDT2601G LED 1 M_LED1 3 MT1303214 FIXED PLATE 1 (M_IC2) 3 RS10118J05 RESISTOR 100O (SMD) 3 M_R1,M_R16,M_R17 3 RS22118J05 RESISTOR 220O (SMD) 8 M_R6~M_R13 3 RS47018J05 RESISTOR 47O (SMD) 3 M_R4,M_R14,M_R15 3 RS47118J05 RESISTOR 470O (SMD) 2 M_R2,M_R3 3 TE162000601 TERMINAL 2 M_TE1,M_TE3 3 TRBC857B TRANSISTOR BC857B 2 M_Q1,M_Q2 3 1-56-0104 CERAMIC 0.1UF (SMD) 4 M_C1,M_C2,M_C5,M_C15 3 2-27-0060 IC AL3201B
in „Mischpult "Alesis Multimix 8" (Knallen auf allen Ausgängen)“ · Analoge Elektronik und Schaltungstechnik ·
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mmic_BGA2709.pdf
10 0 1000 2000 3000 4000 0 1000 2000 3000 4000 f (MHz) f (MHz) P D 30 dBm; Z O 50 (1) IS= 28.4 mA; S = 5.5 V (2) IS= 23.5 mA; S = 5 V S = 23.5 mA; S = 5 V;DP = 30 dBm;OZ = 50 (3) IS= 18.8 mA; S = 4.5 V Fig.9 Isolation (|s12 ) as a function of frequency; Fig.10 Insertion gain (|s |21 as a function
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sct2210.pdf
Unit Input Voltage VIH - 0.7V DD - VDD V VIL - 0 - 0.3V DD V SDO Output Voltage V OH V DDV, I OH= -1mA 4.6 - - V VOL V DDV, I OL = +1mA - - 0.4 V Output Leakage Current IOL V OUT = 17V - - 0.5 µA Output Current IOUT V OUT=1V, R EXT=900Ω - 21 - mA Current Bit Skew* dIOUT1 V OUT=1V, R EXT=900Ω - - ±3 %
in „[V] 50 x 16bit LED-Konstantstrom-Schieberegister, SCT2210CSTG“ · Markt ·
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68332_test.pdf
A3 I/O4 18 D12 D6 131 D5 A5 44 A6 A6 7 A4 I/O5 19 D5 A6 7 A4 I/O5 19 D13 D7 130 D6 MC68332ACAG16-25M A6 45 A7 A7 6 A5 I/O6 20 D6 A7 6 A5 I/O6 20 D14 D8 D7 A7 A8 A8 A6 I/O7 D7 A8 A6 I/O7 D15 D9 127 D8 A8 46 A9 A9 5 A7 I/O8 21 A9 5 A7 I/O8 21 125 D9 A9 49 27 A8 27 A8 D10 124 D10 A10 50 A10 A10 26 A9 A10
in „Motorola MC68332 und BD32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
startup.txt
PLLSTAT_OFS, 0x88 /*; PLL Status Offset*/ .equ PLLFEED_OFS, 0x8C /*; PLL Feed Offset*/ .equ CCLKCFG_OFS, 0x104 /*; CPU Clock Divider Reg Offset*/ .equ USBCLKCFG_OFS, 0x108 /*; USB Clock Divider Reg Offset*/ .equ CLKSRCSEL_OFS, 0x10C /*; Clock Source Sel Reg Offset*/ .equ SCS_OFS, 0x1A0 /*; Sys Control and Status
in „Vectored IRQ does not go to ISR in LPC2148.“ · µC & Digital Electronics ·
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PDF
Sheet1_AmpV2.pdf
2 PIR4602 P /RES TE S E T PIR4802 PIU170Vin / Output PIU1702 PIL1501 PIL1502 GND R464 R4848 D D N 1mH P62 GND PCR4102 62 GND PCR4 32 PIR4545 P1.6K01 Q3 GND GND 1.2K801 GND GND GND 52 G G / 12 OC86PICC5050 C636 Q14Q14 C8585 D18D18 470µFPIC501 Semi PI4.7K 61 10µF PI4.7K1 PI4.7K1 PIQ1401MOSFET 51 330µF
in „Verstärker TAS5630“ · Analoge Elektronik und Schaltungstechnik ·
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Wellenplan-1926.pdf
Dez, 1926 RADIO-WIEN ,.H 1 lil 5i| 11 l"|. Sf Name der Station Land II 1=1 Name der Station Land h S1m 5 IJ |g|v P N r 59 508,5 Brüssel Belgien 1,5 486 102 294,1 Lüttich Belgien 0,1 280 60 500 Zürich Schweiz 0,5 515 Innsbruck Österreich Helsingfors II Finnland 0,5 522 103 291,3 Lyon-Radio Frankreich 1,5 280 Palermo Italien · 104 288,5 Edinburgh Gr.-Britannien 0,5 324,5 Tromsö Norwegen Hüll Gr.-Britannien 0,2 335,5 Bourges Frankreich Plymouth Gr.-Britannien 0,2 338 Barcelona II Spanien 1 462 Nottingham Gr.-Britannien 0,2 323,5
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doc4368.pdf
Appendix B: Bill of Materials Appendix B: Bill of Materials Figure 4-2. Bill of Materials Table e m S t t t t t t t s s s s s s s s e n n n r a u E u m m m m m m i i i i i i i i r m m m i I n t j M n y a K K K K K K P P P P P P P P C S S S N P A G N . F . . . S . . . . . K K M O M f . 8 6 6 8 8 3 8
in „Entwicklungsboard für AT89C51 Controllers“ · Mikrocontroller und Digitale Elektronik ·
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L7900ST.pdf
Io= 250 to 750 mA Tj= 25 C 52 mV o Id Quiescent Current Tj= 25 C 3 mA ∆Id Quiescent Current Change Io= 5 to 1000 mA 0.5 mA ∆Id Quiescent Current Change Vi= -9 to -25 V 1.3 mA o ∆V o Output Voltage Drift Io= 5 mA -0.5
in „Spannungsregelung“ · Analoge Elektronik und Schaltungstechnik ·
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SDG1000_ServiceManual_en.pdf
Storage in non-volatile RAM memory (10 10 waveforms in total) Output Specification Output CH 1 CH 2 2mVpp ~ 10Vpp(50Ω, ≤10MHz) 2mVpp ~ 5Vpp(50Ω, >10MHz) 4mVpp ~ 20Vpp 2mVpp ~ 3Vpp (50Ω) Amplitude (high resistance, ≤10MHz) 4mVpp ~ 6Vpp (high resistance) 4mVpp ~ 10Vpp (high resistance, >10MHz) Vertical
in „Erfahrung mit Siglent SDG 10xx Arbitrary Generatoren?“ · Markt ·
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PDF
Weidezaun_S03_4093.pdf
GEH70x46_I66x41H19 ABS21-22_DVM 1 158_90_60_I152_84_51 3,32€ Ali A G K TO92_UNTEN TAG626-600 3,5A Ig<10mA Ih<25mA 1,2Von, (TYN612 600V 8-12A Ig15mA Ih30mA TO220 1,85€/104s 14,4V PCB2c PCB2onTOP 4 GEH100_68_50_I92_61_38 3,46€ 5,28€/2, PCB80x60x1,5mm 1,92€/5 K A G 1 2 3 BRX46 100V 0,8A Igt=0,2mA Ih=5mATO92
in „Weidezaun gegen Schnecken mit Netztrafo und Rohr DN160 für Hobbygärtner“ · Projekte & Code ·
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ga1.pdf
of Change in Reference 10V to VREF — -1.0 -2.7 5 Voltage to the Change in IKA= 10mA mV/V V KA VKA = Cathode Voltage — -0.5 -2.0 36V to 10V IKA= 10mA, R1 = 10kΩ, R2 = REF 5 Reference Current — 0.7 4 µA ∞ Deviation of Reference Current IKA= 10mA, R1 = 10kΩ IREF 5 — 0.4 1.2 µA Over
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SSD1306-Revision_1.1__Charge_Pump__1_.pdf
diagram: (V DD=2.8V, V CC =12V, I REF=12.5uA) DISPLAY PANEL 128 x 64 2 0 7 1 3 6 6 2 0 0 1 1 3 6 6 M M M M G G M M M M C C . . C C O S . . . . . . . . . . . . S E C C . . C CO SSD1306Z BGGND V CCVCOMHIREFD[7:0] E (RD#) R/W#(W/R#) D/C# RES# CS# BSVDDS2VBATVBREF FR VSS C1N C1P C2N C2P C3 R1 C1 C2 D[7:
in „5V an den Datenleitungen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1306.pdf
diagram: (V DD=2.8V, V CC =12V, I REF=12.5uA) DISPLAY PANEL 128 x 64 2 0 7 1 3 6 6 2 0 0 1 1 3 6 6 M M M M G G M M M M C C . . C C O S . . . . . . . . . . . . S E C C . . C CO SSD1306Z BGGND V CCVCOMHIREFD[7:0] E (RD#) R/W#(W/R#) D/C# RES# CS# BSVDDS2VBATVBREF FR VSS C1N C1P C2N C2P C3 R1 C1 C2 D[7:
in „OLED Grafik Anzeige“ · Mikrocontroller und Digitale Elektronik ·
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UC1701.pdf
SEG<114> D4 SEG<113> D6 SEG<112> D5 B SEG<110> SEG<109> D6 SEG<108> D7 u SEG<107> D7 SEG<105> SEG<104> VDD1 m SEG<103> SEG<102> VDD1 SEG<100> VDD2 SEG<99> p SEG<98> VDD VDD2 SEG<97> SEG<95> VDD2 SEG<94> V SEG<93> VDD3 SEG<92> SEG<90> VSS1 i SEG<89> e SEG<88> VSS1 SEG<87> SEG<85> VSS2 w SEG<84> SEG<83
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tidu533.pdf
voltage range 5 to 15 V Output voltage accuracy (2) <±4% Output voltage, low frequency ripple <30 mVpp Output current (nominal) 300 mA Efficiency at 5 V/200 mA, 8 V/125 mA, 10 V/100 mA, and 15 V/66 mA >80% (including eFuse) Output enable/disable Yes (1) Assuming an isolated 24-V DC voltage (SELV) (
in „Hilfe bei der Berechnung (Voltage Divider)“ · Analoge Elektronik und Schaltungstechnik ·
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Safety_ECG.pdf
on Location UL544 UL2601-1 IECC601-1 the operating system and user interface Earth 300 µA 300 µA 1 mA while specialty hardware can be devel- Leakage oped such as physiological or trans- Enclosure ducer interfaces. The interface boards Leakage 300 µA 300 µA 500 µA Patient 10 µA Input can be inserted
in „EKG Schutzschaltung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PV-_berwachung.c
umdrehungen=0, rechner=0; int sekunde=0, minute=0, stunde=10; char e[7]; char l[7]; char h[3]; char m[3]; char s[3]; char dimm[3]; // Definitionen für Unterprogramme void init(void); void start(void); void heute_oder_gestern(void); void optionen(void); void uhr(void); void uhr_init(void); void berechnung
in „externer Interrupt Problem“ · Mikrocontroller und Digitale Elektronik ·
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bourns_rotary_absolut_encoder_7_bit.pdf
0 1 1 0 38 102 0 1 1 0 0 0 1 0 98 39 0 0 0 0 0 1 1 0 6 103 0 1 1 0 0 0 0 0 96 40 0 0 0 0 0 0 1 0 2 104 0 0 1 0 0 0 0 0 32 41 0 0 0 1 0 0 1 0 18 105 0 0 1 0 0 0 0 1 33 42 0 1 0 1 0 0 1 0 82 106 0 0 1 0 0 1 0 1 37 43 0 1 0 1 0 0 1 1 83 107 0 0 1 1 0 1 0 1 53 44 1 1 0 1 0 0 1 1 211 108 0 0 1 1 1 1 0 1 61
in „suche preiswerte absolute Rückführung einer Position ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ems-buderus_0-4.de._Fehlermeldung.txt
-c -O2 -I/usr/include/mysql -std=c++0x -DHAVE_MYSQL -DHAVE_DAEMONIZE SerialHandler.cpp /tmp/ccjoF99M.s: Assembler messages: /tmp/ccjoF99M.s:5826: Warning: swp{b} use is deprecated for ARMv6 and ARMv7 /tmp/ccjoF99M.s:5856: Warning: swp{b} use is deprecated for ARMv6 and ARMv7 g++ -Wall -c -O2 -I/usr/
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PDF
DYPTH01B-SPI_Datasheet.pdf
DYPTH01B-SPI Temperature & Humidity Sensor Figure 3: Bus timing T1: 10ms Nominal T2: 330uS T3: 200mS Once CS is set high, sensor module will terminate data transfer process right way, and one extra measurement will start automatically before entering power down mode. The purpose of doing so is that
in „Luftfeuchtigkeitssensor an Arduino UNO“ · Mikrocontroller und Digitale Elektronik ·
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PDF
cd4066b.pdf
C 1.1 TA= 125°C 0.9 IIS Switch input current TA= –55°C -1.6 TA= –40°C -1.5 VDD = 10V T = 25°C -1.3 mA Vis 10V A TA= 85°C -1.1 TA= 125°C -0.9 TA= –55°C 4.2 TA= –40°C 4 VDD = 15V V = 0V TA= 25°C 3.4 mA is TA= 85°C 2.8 T = 125°C 2.4 A T = –55°C -4.2 A TA= –40°C -4 V = 15V DD TA= 25°C -3.4 mA Vis 15V TA
in „Audi Delta mit Bluetooth per AM Taste“ · Fahrzeugelektronik ·
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PDF
Compaq_Portable_Plus_286_-_Maintenance_and_Service_Guide.pdf
- 01. 103 - 02 8237 DMA byte controller test failed 103 - 03 8237 DMA word controller test failed 104 - 01 8259 interrupt controller master test failed 104 - 02 8259 interrupt controller slave test failed 104 - 03 8259 software RTC is inoperative 105 - 01 Port bit 6 not at zero 105 - 02 Port bit 5 not
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TGL79XX_DATA_E.pdf
4.75 -5 -5.25 V V I 8 to 20 V ∆V O(*) Line Regulation V I -7 to -25 V TJ= 25°C 100 mV V = -8 to -12 V T = 25°C 50 I J ∆V O(*) Load Regulation IO= 5 mA to 1.5 A TJ= 25°C 100 mV IO = 250 to 750 mA TJ= 25°C 50 d Quiescent Current T J 25°C 3 mA ∆Id Quiescent Current Change IO= 5 mA to 1
in „Netzteil für Röhrenvorstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
EDN_Eat-your-vegetables--Why-you-should-always-follow-switch-mode-power-layout-guidelines.pdf
left) versus achieved response (right). In the simulation, a load step from 2.5A to 5A yielded a 70mV undershoot in output voltage that recovered within 190us, and the measured response yielded an 80mV undershoot that recovered within a 180us. When the load dropped from 5A to 2.5A, the simulation showed a 70mV overshoot that resolved in 180us and the measured response showed an 80mV overshoot that resolved within 180us. This near-perfect match in simulation and characterization inspired confidence in the
in „Schaltregler Fehler einbauen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AT28BV16.pdf
Standby Current CMOS CE = V CC- 0.3V to CC + 1.0V 50 A ICC VCC Active Current AC f = 5 MHz; OUT= 0 mA; CE = V IL 8 mA V IL Input Low Voltage 0.6 V V IH Input High Voltage 2.0 V IOL= 1 mA 0.3 V V OL Output Low Voltage IOL= 2 mA for RDY/BUSY 0.3 V V OH Output High Voltage IOH= -100 A 2.0 V 4 AT28BV16
in „Benötige Hilfe beim Auslesen eines NVRAM DS1742w-120 (Batronix BX48 Batego II)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FK723M1-ZGT6.zh-CN.en.pdf
OCTOSPIM_P1_IO2 - PF7 VDDA GND PB9 PF7 106C5 2.2uF PB10 69 PB10 PF8 20 PF8 OCTOSPIM_P1_IO0 - PF8 OS_25M_IN twentPH0-OSC_IN VCAP PB11 70 PB11 PF9 twenPF9one OCTOSPIM_P1_IO1 - PF9 OS_25M_OUT twentPH1-OSC_OUT PB12 73 PB12 PF10 twenPF10wo OCTOSPIM_P1_CLK - PF10 S1 PB13 74 49 PF11 OS_32K_IN 8 2 PB14 75 PB13
in „Neues Blackboard mit STM32H723“ · Mikrocontroller und Digitale Elektronik ·
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ITS4142N_Smart_Switch.pdf
at PWM-Mode 4 0 3 5 3 0 2 5 m 2 0 d 1 5 L im it V B B , P W M L o a d : : B4 7 O h m s2 O -M o d e : O N / O F F / P W M 1 0 C o u p lin g P o iV B B M o n ito rin g : O u t 5 M o d u la tio n : C W 0 1 1 0 1 0 0 1 0 0 0 f / M H
in „Smart Power Switch galvanisch entkoppelt ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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fit_app0.pdf
3 4 ) M C 3 E X P E X P M C 1 9 ( 4 4 ) 6 B F B F I/ O 3 9 I / O ( 3 3 ) E X P E X P (1 ) 7 M C 4 M C 2 0 I/ O 3 8 B F B F I / O ( 3 2 ) (2 ) 8 M C 5 E X P E X P M C 2 1 I/ O 3 7 B F B F I / O ( 3 1 ) M C 6
in „CPLD ATF1504 sporadisch seltsames Verhalten nach Einschalten“ · FPGA, VHDL & Co. ·
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PDF
OM6206U_Z.pdf
Acrobat reader. white to force landscape pages to be ... a 0 d h 0 o 6 l 1 , 5 p o l × S v a e 1 e 1 m 4 d 0 c h 2 o d p u x t e r s s m a t E i m N T m m x b E O I b b L m 9 2 D C D 1 S S D 3 D y y C m w... ... w S L VL L S S S S E C I L VD D V m 4... ... 1 m d r r R V V T V T T T V V O T S D S S VD d R R d D d 1 1 7 1 r (r a 2 (r v a p a a e n p y n r e e 2.14 ( n n ( mm a a a a 2 m 0,0 x m 9 e e m OM6206 m l l a a 0.. ... 8 0... ... 4 5... ... 9 0... ... 5 6... ... 1 0.. ... 3 R R C C C C C C C 1 R R dummy bump C dummy bump 10.94 mm MGT887 P r d O u t M s 6 e (1) The alignment
in „Display VG-G090651 von Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX4465-MAX4469.pdf
vs. TEMPERATURE SUPPLY CURRENT vs. TEMPERATURE 0 10,000 0 27 6 t VSHDN = CC t t A -10 5 5 5 4 4 4 M -30 M M 26 M A1000 A – ( ( -50 N N 5 B E E 25 ( U 100 U 6 R -70 C C 4 P L L 24 P P 4 -90 S S 10 23 X -110 A -130 1 22 M 10 100 1k 10k 100k 1M -40 -15 10 35 60 85 -40 -15 10 35 60 85 FREQUENCY (Hz) TEMPERATURE
in „Funktioniert denn kein Mikrofon-Vorverstärker?!?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ImplementierungEinerFiniteStateMachine.pdf
8 for ( uint8_t i=0; i<sizeof(fsmApp)/sizeof(Transition); i++ ) { 10 if ( || (fsmApp[i].event == 0)mApp[i].)urrentState ) && (e == fsmApp[i].event) ) 13 { if// System Tick 15 fsmApp[i].currentState ->tickAcktion ();R 17 if (InSta(fsmApp[i].maxTimeBeforeTransition != 0) 19 { && (timeInState < fsmApp[
in „Artikel über Finite State Machines“ · Mikrocontroller und Digitale Elektronik ·
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PDF
WMOD2-UserGuide.pdf
bindtothebodytheholdingbridlesaccordingtotheschem:below Note: - To be attached to a plain surface - Screw head max. height: 2mm P Holding bridles m T Figure 2 2 m R Modem mounting 2 m T / 2.2 Installing the modem N T To install the modem, plug the device on a DC power supply (for automotive application, A L connect the device on the permanent «
in „Wavecom Modem WMOD2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TDA8563Q.pdf
. TYP. MAX. UNIT Supply VP supply voltage note 1 6.0 14.4 18 V q quiescent current RL= ∞ − 115 180 mA Operating condition V11 mode switch voltage level 8.5 − V P V 11 mode switch current V11= 14.4 V − 15 40 A VO DC output voltage note 2 − 7.0 − V VO DC output offset voltage − − 150 mV Mute condition
in „Abschaltelektronik“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TL77xx.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –30 mA Low-level output current, IOL , RESET . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 30 mA Package thermal impedance, (see Notes 3 and 4)
in „uC Powersupply Supervision“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TL77xx.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –30 mA Low-level output current, IOL , RESET . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 30 mA Package thermal impedance, (see Notes 3 and 4)
in „Wie sprunghafte Bereitstellung der Betriebsspannung für MC realisieren?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Messung.s
----------------- Text: rcall wait ldi r16, 'T' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'm' rcall lcdData ldi r16, 'p' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'r' rcall lcdData ldi r16, 'a' rcall lcdData ldi r16, 't' rcall lcdData ldi r16, 'u' rcall lcdData ldi r16, 'r' rcall lcdData
in „ADC Messung funktioniert noch nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Messung.s
----------------- Text: rcall wait ldi r16, 'T' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'm' rcall lcdData ldi r16, 'p' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'r' rcall lcdData ldi r16, 'a' rcall lcdData ldi r16, 't' rcall lcdData ldi r16, 'u' rcall lcdData ldi r16, 'r' rcall lcdData
in „ADC Messung funktioniert noch nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Messung.s
lcdData ldi r16, ' ' rcall lcdData ldi r16, 'T' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'm' rcall lcdData ldi r16, 'p' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'r' rcall lcdData ldi r16, 'a' rcall lcdData ldi r16, 't' rcall lcdData ldi r16, 'u' rcall lcdData ldi r16, 'r' rcall lcdData
in „ADC Messung funktioniert noch nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Messung.s
lcdData ldi r16, ' ' rcall lcdData ldi r16, 'T' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'm' rcall lcdData ldi r16, 'p' rcall lcdData ldi r16, 'e' rcall lcdData ldi r16, 'r' rcall lcdData ldi r16, 'a' rcall lcdData ldi r16, 't' rcall lcdData ldi r16, 'u' rcall lcdData ldi r16, 'r' rcall lcdData
in „ADC Messung funktioniert noch nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR101_High_endurance_EEPROM_doc2526.pdf
Tonetsu Shinkawa Bldg. Colorado Springs, CO 80906 1-24-8 Shinkawa TEL 1(719) 576-3300 Chuo-ku, Tokyo 104-0033 FAX 1(719) 540-1759 Japan TEL (81) 3-3523-3551 Scottish Enterprise Technology Park FAX (81) 3-3523-7581 Maxwell Building East Kilbride G75 0QR, Scotland TEL (44) 1355-803-000 FAX (44) 1355-242-
in „Ringpuffer im EEPROM anlegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L-HBCC.pdf
101X-YY 100 0.02 5,10 50 0.796 3.5 0.70 0.60 d HBCC-121X-YY 120 0.02 5,10 50 0.796 3.2 1.00 0.55 a x e m HBCC-151X-YY 150 0.02 5,10 50 0.796 3.0 1.20 0.50 L . HBCC-181X-YY 180 0.02 5,10 50 0.796 2.7 1.40 0.45 Ø Typical L vs Current HBCC-221X-YY 220 0.02 5,10 50 0.796 2.4 1.60 0.40 HBCC-271X-YY 270 0.02
in „Was bedeuten fl und fQ“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ECAD_LBB01v00_LBB02v00.pdf
C6 C7 C8 C9 100N CAPC2012X135N Multilayer Ceramic Capacitor 0805, X7R, 5%, 50V, order code: 08052R104J9B Capacitor Yageo 0805 Class2 X7R 5pph 50V 1 C5 1,0UF CAPC2012X125N High Value Multilayer Ceramic Capacitor, 1,0µF, 25V, +/-10%, order code: TMK212BJ105KG Capacitor Taiyo Yuden Typ 212 25V 10pph 2
in „LED Blinky Ball Monochrom“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst.lst
0x400 1 00000000 1 00000000 1 00000000 1 00000000 2 .global Reset 3 .syntax unified 4 .cpu cortex-m4 5 .thumb 6 7 .equ BIT0, 0x00000001 8 .equ BIT1, 0x00000002 9 .equ BIT2, 0x00000004 10 .equ BIT3, 0x00000008 11 .equ BIT4, 0x00000010 12 .equ BIT5, 0x00000020 13 .equ BIT6, 0x00000040 14 .equ BIT7, 0x00000080
in „mein erstes STM32F4 .asm/ .s Program stürzt ab im gdb“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf4905.pdf
0.57 W/°C dv/dt(1) Peak Diode Recovery voltage slope 9 V/ns EAS (2) Single Pulse Avalanche Energy 220 mJ T Storage Temperature stg -55 to 175 °C Tj Max. Operating Junction Temperature (•)Pulse width limited by safe operating area. 1) I ≤22A, di/≤t 300A/µs, ≤ V , T≤T (2) Starting T = 25 C, I = 12A= 30VS
in „Schaltungsfrage zu OpAmp und Stromsenke“ · Analoge Elektronik und Schaltungstechnik ·