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PDF
LPC3130_31.pdf
_2 [4] F1 SUP4 DIO I DIO4 EBI Data I/O 2 EBI_D_3 [4] E1 SUP4 DIO I DIO4 EBI Data I/O 3 [4] EBI_D_4 E2 SUP4 DIO I DIO4 EBI Data I/O 4 EBI_D_5 [4] D1 SUP4 DIO I DIO4 EBI Data I/O 5 EBI_D_6 [4] D2 SUP4 DIO I
in „LCD-Interface LPC3131“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hut1_12v2.pdf
b and B 50 √ √ √ 4/101/104 4 6 06 Keyboard c and C 48 √ √ √ 4/101/104 7 07 Keyboard d and D 33 √ √ √ 4/101/104 8 08 Keyboard e and E 19 √ √ √ 4/101/104 9 09 Keyboard f and F 34 √ √ √ 4/101/104 10 0A Keyboard g and G 35
in „USB HID Descriptor Spotify-Steuerung STM32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CAN_BUS.pdf
to be achieve 600 MB/s? 600 MByte/s = 600 MBytes/s * 8 bits/1Byte = 4800Mb/s Clock period = 1/4800e06 Clock Frequence = 1/clock period = 4800e06 = 4.8e09 = 4.8GHz Example of 8-bit Data Transfer (parallel) D7 D0 Data = 0x8A (hex) = 10001010 (binary) Parallel Transfer D7 1 D6 0 8 data bits D5 0 transferred
in „CAN mir das einer mal erklären?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc1925.pdf
VTG 1 2 LED0 LED1 10K LED2 LED3 LED4 LED5 LED6 LED7 GND VTG LEDn Note: The AVR can source or sink enough current to drive a LED directly. In the STK500 design, a transistor with two resistors is used to give the same amount of light from
in „STK500 als ISP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stk500.pdf
VTG 1 2 LED0 LED1 10K LED2 LED3 LED4 LED5 LED6 LED7 GND VTG LEDn Note: The AVR can source or sink enough current to drive a LED directly. In the STK500 design, a transistor with two resistors is used to give the same amount of light from
in „STK500 mit Breadboard“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ICL7106_7.pdf
= 0.02 F R 5 ICL7106 R 1= 24k R 2 47k 4 L R = 100k V D C B A F G E D C B A F E D B F E A P 3 R 4= 1k 1 2 3 4 5 6 7 8 9 1 1 1 1 1 1 1 1 1 1 2 R 5 1M DISPLAY FIGURE 1. ICL7106 TEST CIRCUIT AND TYPICAL APPLICATION WITH LCD DISPLAY COMPONENTS
in „ICL7107 - Funktionsweise?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
leeson-fhp-series-manual.pdf
, 7 8 4 2 1 [ 3 0 5 . 7 3 1 . 2 ] e I R r S E u N ET i I M F S L N I E [ H 4 I S [ ] D E 2 4 L H . [ E2 E1 S1 S2 S3 D A C 2 6 I . 0 Buy: www.ValinOnline.com | Phone 844-385-3099 | Email: CustomerService@valin.com
in „Frequenzumrichter für 1-Phasen Motor“ · Haus & Smart Home ·
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PDF
Display.pdf
Level Each lot should satisfy the quality level defined as follows. - Inspection method : MIL-STD-105E LEVEL II Normal one time sampling - AQL Partition AQL Definition A: Major 0.4% Functional defective as product B: Minor 1.5% Satisfy all functions as product but not satisfy cosmetic standard u Definition
in „Grafik LCD mit AVR“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dm00451014-controlling-a-triac-with-a-phototriac-stmicroelectronics.pdf
to 10 times higher than the immunity provided by an equivalent standard technology Triac with the same sensitivity. Figure 8. Schematic for IEC61000-4-4 evaluation Burst generator Lamp R1 = 51 Ω R2 = 150 Ω GND C C ACST210-8FP phototriac A (led open) 230 V RMS / S14K300 50 Hz 10 nF C C C1 =22 nF RGK =
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PDF
at89c51ed2.pdf
0000 80h P0 SP DPL DPH PCON 87h 1111 1111 0000 0111 0000 0000 0000 0000 00X1 0000 0/8 1/9 2/A 3/B 4/C 5/D 6/E 7/F reserved 8 AT89C51RD2/ED2 4235J–8051–01/08 AT89C51RD2/ED2 4. Pin Configurations Figure 4-1. Pin Configurations S 1 0 / X X I E 0 1 2 3 E E C 2 2 D D D A 4 3 2 1 0/ / * C 0 1 2 / . 1 1 1
in „SCL Takt generieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at89c51ed2.pdf
0000 80h P0 SP DPL DPH PCON 87h 1111 1111 0000 0111 0000 0000 0000 0000 00X1 0000 0/8 1/9 2/A 3/B 4/C 5/D 6/E 7/F reserved 8 AT89C51RD2/ED2 4235J–8051–01/08 AT89C51RD2/ED2 4. Pin Configurations Figure 4-1. Pin Configurations S 1 0 / X X I E 0 1 2 3 E E C 2 2 D D D A 4 3 2 1 0/ / * C 0 1 2 / . 1 1 1
in „SCL Takt generieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
muRata_TZC3P200A110_.pdf
Temperature Characteristics TZC3Z030 TZC3Z060 Z030 (NP0±300 ppm/˚C) Z060 (NP0±300 ppm/˚C) ) ) ( % g +8 e +8 a n C +6 h +6 p . C +4 a +4 Temp.(˚C) C Temp.(˚C) +2 +2 0 0 20 20 −10 0 −2 45 65 85 −25 −10 0 −2 45 65 −25 85 −4 −4 −6 −6 −8 −8 −10 −10 −12 −12 TZC3R100 TZC3P200 R100 (N750±300 ppm/˚C) P200 (N1200 500ppm/°C) ) % % e ( n +8 g h a +8 . +6 C a p +6 C +4 C +4 +2 45 65 85 +2 0 0 45 65 85 −25 20 Temp.(˚C) 20 −10 0 −2 –25 –10 0 –2 Temp.(°C) −4 –4 −6 –6 −8 –8 5 −10 –10 −12 –12 Frequency Characteristics TZC3Z030 TZC3Z060
in „Wittig(welec) DSO W20xxA Hardware (Teil 2)“ · Mikrocontroller und Digitale Elektronik ·
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AT89C51CC03.pdf
N N N F D T 1 2 / A/A / / E N E L L 1 1 1 10.R A A E S C T TA P P P P V V R V V X X 6 5 4 3 2 1 4 3 2 1 0 4 4 4 4 4 P1.4/AN4/CEX1 7 39 ALE P1.5/AN5/CEX2 8 38 PSEN P1.6/AN6/CEX3 9 37 P0.7/AD7 P1.7/AN7/CEX4 10 36 P0.6/AD6 EA 11 35
in „Einstellung Akzeptanzfilter - Programm / Tool gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GN80_2_NMEA_Protocol__1_.pdf
accepted. Interpreting Example January 2, 2002 12:34:56 34 deg. 44.1230 min. N 135 deg. 21.4560 min. E -- $PFEC,GPclr (in) Restart Example $PFEC ,GPclr ,1 ˎ4B CR LF Field# 1 2 3 This sentence clears the data in the GPS receiver and restarts the receiver. The restart works in the same way as when the power
in „DGPS korreliert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MC9S08DZ60_Data_Sheet.pdf
9EE4 ff 4 ASL opr8a DIR 38 dd 5 ASLA INH 48 1 ASLX Arithmetic Shift Left – – INH 58 1 ASL oprx8,X (Same as LSL) C 0 IX1 68 ff 5 ASL ,X b7 b0 IX 78 4 ASL oprx8,SP SP1 9E68 ff 6 ASR opr8a DIR 37 dd 5 ASRA INH
in „Bei AD-wandlung Bitsverlust“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hut1_11.pdf
b and B 50 √ √ √ 4/101/104 4 6 06 Keyboard c and C 48 √ √ √ 4/101/104 7 07 Keyboard d and D 33 √ √ √ 4/101/104 8 08 Keyboard e and E 19 √ √ √ 4/101/104 9 09 Keyboard f and F 34 √ √ √ 4/101/104 10 0A Keyboard g and G 35
in „USB HID Descriptor (V-USB)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
REN_icl7106-07-07s_DST_20251218.pdf
N L A U I G C A G B C4= 100pF O O O T R E CR C C I I B R C5 = 0.02µF R1= 24kΩ ICL7106 R = 47kΩ 4 L 2 + 1 1 1 1 1 1 1 2 2 2 2 2 2 3 3 3 3 B O R3= 100kΩ V D C B A F G E D C B A F E D B F E A P R4 = 1kΩ 1 2 3 4 5 6 7 8 9 1 1
in „Panel-Meter KAIFU FR-4“ · Mikrocontroller und Digitale Elektronik ·
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PDF
M30201F6SP.pdf
9 0 1 2 3 2 5 6 2 8 1 1 2 2 2 2 2 2 2 . 1 T D C 3 3 3 3 3 3 7 6 5 4 X O X N P P P P P P E E E E / A N ( ( ( ( 4 / 0 1 1 1 1 P 4 T P P P P P 0 P Package: 56P6S-A Figure 1.2. Pin configuration for the M30201 group (QFP product) (top view) 3 t r en Mitsubishi microcomputers
in „Biete Mitsubishi / Renesas M30201F6SP aus der M16C60 Serie“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BlueRS_E_BlueRS_I_Manual_v1_05.pdf
consumption.......................................................................................22 4 BlueRS+E/I Configurator command set ........................................................23 4.1 Configuring the BlueRS+E/I after power on ..................................................23 4.2 Configuring the BlueRS+E/I with AT commands...........................................24 4.3 Remote configuration using the BlueRS+Configurator commands...............24 4.4 List of BlueRS+Configurator commands..............
in „Bluetooth Modul Stollmann BlueRS+I mit Batterie betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BlueRS_E_BlueRS_I_Manual_v1_05.pdf
consumption.......................................................................................22 4 BlueRS+E/I Configurator command set ........................................................23 4.1 Configuring the BlueRS+E/I after power on ..................................................23 4.2 Configuring the BlueRS+E/I with AT commands...........................................24 4.3 Remote configuration using the BlueRS+Configurator commands...............24 4.4 List of BlueRS+Configurator commands..............
in „TxD und RxD am STK500 - LEDs flackern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Lautstärke messen: Falsche Verstärkerschaltung für Mikrofon gewählt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN-581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Symmetrische Spannungsversorgung für OPV“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Problem mit Ref-Spannung am INA326“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Frage zur symmetrischen Spannungserzeugung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „OP mit Single-Supply“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Problem mit Übersprechen auf OPV-Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN-581_AD_Biasing_and_Decoupling_Op_Amps_in_Single_Supply_Appl..pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Rauscharme Spannungsversorgung für OP“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „OpAmp mit größer verstärkung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Widerstände am OP für die 1/2 Spannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN-581.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „Hilfe bei OP-AMP Auswahl gesucht !“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581_AD_Biasing_and_Decoupling_Op_Amps_in_Single_Supply_Appl.__2_.pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „OpAmp (Spannungsfolger) schwingt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581_AD_Biasing_and_Decoupling_Op_Amps_in_Single_Supply_Appl..pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „rauschärmerer OPA als LM833“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN581_AD_Biasing_and_Decoupling_Op_Amps_in_Single_Supply_Appl..pdf
Inverting Single Supply Amplifier Using Zener Diode Biasing 10 10 10 0.3 11.0 2 0.2 100 20 10 10 0.3 5.23 4.7 0.2 100 10 50 50 0.1 11.0 0.47 0.05 100 101 20 20 0.2 1.0 15 0.1 100 *Capacitance values rounded off to next highest common value. Since the IN/INpole and C1/R1 poles are at the same frequency, and
in „OP Rauschen messen - rail2rail Begrenzung?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
doc2535.pdf
0.045 6 c 0.008 0.010 0.014 D 0.355 0.365 0.400 3 b2 L D1 0.005 3 b3 E 0.300 0.310 0.325 4 4 PLCS b E1 0.240 0.250 0.280 3 e 0.100 BSC Side View eA 0.300 BSC 4 L 0.115 0.130 0.150 2 Notes: 1. This drawing is for general information only; refer to JEDEC Drawing MS-001, Variation
in „RGB PWM mit Attiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
0.045 6 c 0.008 0.010 0.014 D 0.355 0.365 0.400 3 b2 L D1 0.005 3 b3 E 0.300 0.310 0.325 4 4 PLCS b E1 0.240 0.250 0.280 3 e 0.100 BSC Side View eA 0.300 BSC 4 L 0.115 0.130 0.150 2 Notes: 1. This drawing is for general information only; refer to JEDEC Drawing MS-001, Variation
in „ATtiny13 mit 20MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
widap_electronic_components_MAB.pdf
-Taping specification for axial capacitors Description Symbol Dimensions (mm) Capacitor diameter D 4,5÷ 19,5 Capacitor length L 10,5÷ 32,0 Component pitch A* Seetable I Reel core diameter E 60 Arbor core diameter M 16 Reel diameter ø 340+5 Marking F Seetable II Tape width H 6±0,5 Body location (lateral
in „Besserer Kondensator gesucht.“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Servo_Receive_683.asm
nRF2401 #define MOSI GPIO,0;schreiben -> nRF2401 #define MISO GPIO,3;lesen <- nRF2401 ;#define CE GPIO,4; GPIO,4 als Steuerleitung Servo #define CSN GPIO,5; -> nRF2401 ;***** VARIABLE DEFINITIONS w_temp EQU 0x7F ; variable used for context saving status_temp EQU 0x7E ; variable used for context saving Zaehlvar
in „Servo Motoren (2 Positionen) mit PIC steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MIC5239_Data.pdf
EQUATION 4-5: R1 VOUT = VREF + R2--- Where: VREF = 1.23V FIGURE 4-9: Copper Area vs. Power-SOIC Power Dissipation (T ). A Feedback resistor R2 should be no larger than 300 kΩ. The same method of determining the heatsink area used for the power MSOP-8 can be applied directly to the power SOIC-8. The same two curves showing power dissipation versus copper area are reproduced for the power SOIC-8 and they can be applied identically. 4.8 Power SOIC-8 Thermal Characteristics FIGURE 4-10: Adjustable Voltage
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PDF
HW_manual_bf533.pdf
. INTERRUPTS DISABLED DURING THIS INTERVAL. CYCLE: 1 2 3 4 5 6 m m+1 m+2 m+3 m+4 IF 1 A9 A1 0 I0 I1 I2 . . . A3 A4 A5 A6 A7 IF 2 A8 A9 A1 0 I0 I1 . . . A3 A4 A5 A6 I0 . . . E IF 3 A7 A8 A9 A3 A4 A5 A DEC A6 A7 A8 . . . A3 A4 T E AC A5 A6 A7 . . . A3 I DF1 A4
in „Blackfin ADSP-BF532 - Einstieg“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
24lc16.pdf
— 2.5V≤VCC ≤ 5.5V (E-temp range) Clock low time T LOW 1300 — ns 4.5V≤ VCC ≤5.5V 4700 — 2.5V≤VCC ≤ 5.5V (E-temp range) SDA and SCL rise time TR — 300 ns 4.5V≤ VCC ≤5.5V (Note 1) (Note 1) — 1000 2.5V≤VCC ≤ 5.5V (E-temp range
in „Tipsend2 Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SAM7-EX256_Rev_C-sch.pdf
33K R43 R44 0 R1OUT R1IN + 49.9/1% 49.9/1% LAN 10K 10K D 9 R2OUT R2IN 8 5 9 10u/6.3V 1:1 B1 1 A<1> B<4>4 B3 R63 R74 X 3 R45 3.3V 1 TD+ 1 SW1 SW2 / 2 CTS_E 3.3V db9-female 3.3V RST 4.99K/1% 3 COM 75 75 4 330 330 X 1 1 15U4PWR 16 U2 4 4 4 4 4 4 4 4 4 3 3 3 2 TD- 5 B5 R51 2 Common<5> R 2 GND VCC R46 AG AG E 2 330 E<2> D C62 I - 1.5K/1% LEDACT KG KG GREEN I Centerpush SW1 SW2 PA27/DRXD 100n R47 T L X X D D T X X D C X AY S B2 3 6 B4 R37 R83 3.3K RX3 2K R D N N D T T N R E LED100/DUP KY AY YELLOW 4 C<3> D
in „SPI-Initialisierung von zwei Geräte über den gleichen Bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
40146F.pdf
2 KEY_2 64-bit crypt key Note: Since SEED2 and SYNC_B share the (word 2) 3 KEY_3 64-bit crypt key same memory location, Secure Learn and (word 3) MSb’s Independent mode transmission (including IR mode) are mutually exclusive. 4 SYNC_A 16-bit synch counter 5 SYNC_B/ 16-bit synch counter B 3.4 SER_0, SER
in „Fehlersuche Funksender Zentralverriegelung Toyota Yaris“ · Fahrzeugelektronik ·
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PDF
DD19FCD3d01.pdf
0.045 6 c 0.008 0.010 0.014 D 0.355 0.365 0.400 3 b2 L D1 0.005 3 b3 E 0.300 0.310 0.325 4 4 PLCS b E1 0.240 0.250 0.280 3 e 0.100 BSC Side View eA 0.300 BSC 4 L 0.115 0.130 0.150 2 Notes: 1. This drawing is for general information only; refer to JEDEC Drawing MS-001, Variation
in „HV-Prog für ATtiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TASMMAN.pdf
different formats as indicated below: Option Description -g0 Intel hex (default) -g1 MOS Technology hex (same as -m) -g2 Motorola hex -g3 binary (same as -b) -g4 Intel hex with word addresses The -m and -b flags may also be used, as indicated above. If both are used the right-most option on the command line
in „Suche verschiedene BASIC Eprom's für Z80 Rechner.“ · Markt ·
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PDF
at98c51ed2.pdf
P2.2/AD10 XTAL2 23 1 * 8 0 2 XTAL1 19 22 P2.1/AD9 R R L L S I / / 1 A 1 20 21 6 . T T V N . . 2 3 4 VSS P2.0/AD8 3 3 X X P P 2 2 2 P P P P P 9 4235F–8051–09/04 4 5 6 7 5 4 3 A A A A / A/ / . . 3. . 6. . E E . 6. . 1. . P P P P P N P E N A I L P N P P P P P 2 9 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 6 6 6
in „Kleine 8051 Fragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
P2.2/AD10 XTAL2 23 1 * 8 0 2 XTAL1 19 22 P2.1/AD9 R R L L S I / / 1 A 1 20 21 6 . T T V N . . 2 3 4 VSS P2.0/AD8 3 3 X X P P 2 2 2 P P P P P 9 4235F–8051–09/04 4 5 6 7 5 4 3 A A A A / A/ / . . 3. . 6. . E E . 6. . 1. . P P P P P N P E N A I L P N P P P P P 2 9 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 6 6 6
in „8051: Oszillatorfrequenz und Maschinenzyklus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
P2.2/AD10 XTAL2 23 1 * 8 0 2 XTAL1 19 22 P2.1/AD9 R R L L S I / / 1 A 1 20 21 6 . T T V N . . 2 3 4 VSS P2.0/AD8 3 3 X X P P 2 2 2 P P P P P 9 4235F–8051–09/04 4 5 6 7 5 4 3 A A A A / A/ / . . 3. . 6. . E E . 6. . 1. . P P P P P N P E N A I L P N P P P P P 2 9 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 6 6 6
in „EEPROM schreiben/lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51rd2.pdf
P2.2/AD10 XTAL2 23 1 * 8 0 2 XTAL1 19 22 P2.1/AD9 R R L L S I / / 1 A 1 20 21 6 . T T V N . . 2 3 4 VSS P2.0/AD8 3 3 X X P P 2 2 2 P P P P P 9 4235F–8051–09/04 4 5 6 7 5 4 3 A A A A / A/ / . . 3. . 6. . E E . 6. . 1. . P P P P P N P E N A I L P N P P P P P 2 9 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 6 6 6
in „Alternative Funktion von Pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
P2.2/AD10 XTAL2 23 1 * 8 0 2 XTAL1 19 22 P2.1/AD9 R R L L S I / / 1 A 1 20 21 6 . T T V N . . 2 3 4 VSS P2.0/AD8 3 3 X X P P 2 2 2 P P P P P 9 4235F–8051–09/04 4 5 6 7 5 4 3 A A A A / A/ / . . 3. . 6. . E E . 6. . 1. . P P P P P N P E N A I L P N P P P P P 2 9 8 7 6 5 4 3 2 1 8 7 6 5 4 3 2 1 6 6 6
in „Frequenz für µC AT89C51ED2“ · Mikrocontroller und Digitale Elektronik ·
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U210b.pdf
automatic retriggering prevents half cycles without current flow, even if the triac is turned off earlier e.g. due to not exactly centred collector (brush lifter) or in the event of unsuccessful triggering. After a time lapse of t =4.5 t is pp p generated another triggering pulse which is repeated until either