-
PDF
at89c51ed2.pdf
6 6 6 6 6 P5.5 10 60 P5.0 59 P2.4/A12 P0.3/AD3 11 P0.2/AD2 12 58 P2.3/A11 P5.6 13 57 P4.7 P0.1/AD1 14 56 P2.2/A10 P0.0/AD0 15 55 P2.1/A9 P5.7 16 54 P2.0/A8 VCC 17 AT89C51ED2 53 P4.6 PLCC68 52 NIC NIC 18 P1.0/T2 19 51 VSS P4.0 20 50 P4.5 P1.1/T2EX/SS 21 49 XTAL1 P1.2/ECI 22 48 XTAL2 P1.3/CEX0 23 47 P3.7
in „SCL Takt generieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
at89c51ed2.pdf
6 6 6 6 6 P5.5 10 60 P5.0 59 P2.4/A12 P0.3/AD3 11 P0.2/AD2 12 58 P2.3/A11 P5.6 13 57 P4.7 P0.1/AD1 14 56 P2.2/A10 P0.0/AD0 15 55 P2.1/A9 P5.7 16 54 P2.0/A8 VCC 17 AT89C51ED2 53 P4.6 PLCC68 52 NIC NIC 18 P1.0/T2 19 51 VSS P4.0 20 50 P4.5 P1.1/T2EX/SS 21 49 XTAL1 P1.2/ECI 22 48 XTAL2 P1.3/CEX0 23 47 P3.7
in „SCL Takt generieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Macom_Doubler.pdf
data of single devices and assumes isothermal back-plate. Bias ConditionsD V 1,2 = D V, I 1,2 = 22SS= -5 V,SS= 50 mA App Note [1] Biasing - It is recommended to separately bias each doubler stage with fixed voltages of V (1,2) = 5 V, V = -5 V and D SS VG1=-0.6 V. The typical DC currents are I 1 D 80 mA, I 2 =D140 mA and I SS = 50 mA. V 2Gcan be used for active control biasing of VD2, or it can be set to GND and V 2 Dill self bias at approximately 140 mA. Maximum output power is achieved with V SS = -5 V and I SS= 50 mA but
in „Spannungsversorgung -0,6V“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
S1D15714_Technical_Manual__E_.pdf
Triple 8V 57 95 42 70 [* marked section: Refer to page 51.] Table 9.4 Display heavy load display *14 Symbol : SS(1) 1/65 Duty 1/33 Duty VDD Boosting V3voltage Typ. Min. Typ. Min. Unit Remark 5V Triple 14V 103 172 66 110 µA *13 10V 82 137 55 92 Double 8V 72 120 47 78 3V Quintuple 14V 128 213 — — Quintuple 14V 86 143 58 97 Triple 8V 72 120 49 82 [* marked section: Refer to page 51.] Rev. 1.0 EPSON 47 S1D15714 Series • Current consumption under power saving mode: V SS = 0V, VDD = 5V, TEST1 = HIGH, Ta = 25°
in „Nokia LCD 3510“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
CD4020BMW_883.pdf
Units Min Max Min Typ Max Min Max I Quiescent Device Current Ve 5V V e V or V 5 5 150 mA DD DD IN DD SS V DDe 10V V INe VDD or SS 10 10 300 mA V DDe 15V V INe VDD or SS 20 20 600 mA VOL Low Level Output VoltageDDe 5V 0 05 0 0 05 0 05 V e V DD 10V 0 05 0 0 05 0 05 V V DDe 15V 0 05 0 0 05 0 05 V VOH High Level Output VoltagDDV 5V 4 95 4 95 5 4 95 V V e 10V 9 95 9 95 10 9 95 V DD V DDe 15V 14 95 14 95 15 14 95 V e e VIL Low Level Input VoltagV DD 5V V O 0 5V or 4 5V 1 5 2 1 5 1 5 V V DDe 10V V Oe 1 0V or 9 0V 3 0 4 3 0 3 0 V V e 15V V e 1 5V or 13 5V 4 0 6 4 0 4 0 V DD O V High Level Input
in „Berlin Uhr aus ICs bauen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
CD4528.PDF
VSS 1 16 V DD is < 10 s Note: For designs requiring a pulse width > 10 s, please see CX1/RX1 2 15 V SS MC14538, which is pin−for−pin compatible RESET 1 3 14 C X/R X • NLV Prefix for Automotive and Other Applications Requiring A1 4 13 RESET 2 Unique Site and Control Change Requirements; AEC−Q100 B1 5 12
in „Unterschied CD4528 zu CD4538 ?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
IR2110-DataSheet.pdf
+ 25 VSS Logic supply offset voltage VCC - 25 V CC+ 0.3 V IN Logic input voltage (HIN, LIN & SD) V SS- 0.3 V DD+ 0.3 dVs/dt Allowable offset supply voltage transient (figure 2) — 50 V/ns PD Package power dissipation A T ≤ +25°C(14 lead DIP) — 1.6 W (16 lead SOIC) — 1.25 RTHJA Thermal resistance, junction
in „Inverter DC/AC mit EGS002 China DEV-Board“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
rxv396.pdf
2SC461 2SC461 2P6 C8P 5P9 R10 PIN CONNECTION DIAGRAM OF DIODES, TRANSISTORS AND IC’s. 4.7K C18 27P 1SS133 1SS355 2SC1740S(R,S) 2SC535(A,B,G) LA3401 LA1266 C15 L6 104 R25 8 1SS176 UDZS5.6BTE-17 DTA114ES 2SC1815(Y) LC72131 C32 C26 C12 C25 C14 R13 R14 C20 Q6 C23 HSS104 DTC144ES 0.01µ 0.01µ 0.018µ 0.01µ 47P
in „Yamaha RX-V396 RDS Fehlersuche“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ESP8266-12-Breakout_07.pdf
_TDO_SS_15 X5.6 8 8 X4.7 VDD X1.8 TCK² (GPIO13) TDO² (GPIO15, boot_sel[2]) X2.8ND X5.7 9 X4.8 3V3 GND X5.8 10 ¹) Arduino SW JP4 ²) JTAG-PIN X3.1 D 1 1 X3.2 D GND 1 2 TCK_MOSI_13 R M IC5 V TMS_SCK_14 3 4 RST
in „ESP8266 Breakout, 4 x VCOM, JTAG-Debugger“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
IRS2092.pdf
positive quiescent supply mA VAA=10 V, V SS =0 V, QAA1 current - 8 11 V CSD =VAA Floating Input positive quiescent supply V =10 V, V =0 V, QAA2 - 8 11 AA SS current V CSD =GND Floating input side to Low side leakage V AA=VSSV GND = ILKM current - - 50 µA 100 V I =5 mA, I =5 mA, VAA floating supply zener diode clamp AA SS VCLAMPM+ voltage, positive, with respect to GND 6.0 7.0 8.0 VGND =0 V, V CSD =VSS V IAA5 mA, I SS mA, V VSS floating supply zener diode clamp -8.0 -7.0 -6.0 V =0 V, CLAMPM- voltage, negative, with respect
in „Car Hifi Endstufe kein Ton, axton D500 digital, Irs2092s Vorverstärker“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ana2_bericht_ekg.pdf
Studiengang Mechatronik Versuch: EKG-Verstärker Analogelektronik Labor Gruppe: 5 (Schwier, Götte) MT7 SS02 Datum: 20.06.02 5.e) Zeichnen des Gesamtschaltbildes 14 Fachhochschule Karlsruhe Studiengang Mechatronik Versuch: EKG-Verstärker Analogelektronik Labor Gruppe: 5 (Schwier, Götte) MT7 SS02 Datum: 20.06.02
in „Puls messen“ · Offtopic ·
-
PDF
STR751FR0T6.pdf
P1.01 P1.15 VDD_IO VDDA_ADC P2.12 USB_DN E P0.28 P0.23 P0.22 V SS_IO TEST P1.00 NRSTOUT VREG_DIS NRSTIN P0.14 F P2.03 P0.21 P0.20 P2.02 P2.04 P2.05 P2.06 V V P0.15 SS18 SSBKP G NJTRST P1.18 P1.19 P2.01 P2.00 P2.07 2.08 V 18REG V18BKP XRTC2 H P0.13 P1.16 P1.17 P2.19
in „DAB Radio mit ARM Prozessor, HD44780 Display (BlueTinum BT-H1801)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TargetBoardSchematic.pdf
AVSS0 3 R5 4K7 1 P06 3 AVCC1 3 MD_FINED_TGT 7 MD-FINED R11 0R 3 RES_SW 10 RES# 3 RESn_TGT C12 C13 +C14 10nF 100nF 10uF_16V 15 3 P35 UPSEL-P35 31 R12 0R 3 P15 IRQ5-P15 3 PMOD1-IRQ AVSS1 3 P04 3 R13 0R(DNF) 3 P14 32 GROUND P14 TARGET_UC_VCC 95 3 P40 93 P40 3 P41 P41 3 P42 92 P42 R14 0R(DNF) PH3 3 3 P46
in „RX65N BootMode funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MC14490_646060.pdf
Order Number: May, 2000 – Rev. 4 MC14490/D MC14490 PIN ASSIGNMENT Ain 1 16 VDD Bout 2 15 Aout Cin 3 14 Bin Dout 4 13 Cout Ein 5 12 Din Fout 6 11 Eout OSC 7 10 F in in V 8 9 OSC SS out BLOCK DIAGRAM +V DD DATA 1/2–BIT 15 Aout Ain 1 4–BIT STATIC SHIFT REGISTER DELAY SHIFT LOAD OSCILLATOR φ1 φ2 VDD = PIN 16 OSC in 7 AND φ1 φ1 φ2 V SS= PIN 8 TWO–PHASE OSC out 9 CLOCK GENERATOR φ2 φ1 φ2 Bin14 IDENTICAL TO ABOVE STAGE 2 B out φ1 φ2 C in 3 IDENTICAL TO ABOVE STAGE 13 Cout φ1 φ2 D in IDENTICAL TO ABOVE STAGE 4 D out φ1 φ2 E 5 IDENTICAL
in „MC14490 Contact Bounce Eliminator (Fragen zu Cext)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ir2110.pdf
+ 25 VSS Logic supply offset voltage VCC - 25 V CC+ 0.3 V IN Logic input voltage (HIN, LIN & SD) V SS- 0.3 V DD+ 0.3 dVs/dt Allowable offset supply voltage transient (figure 2) — 50 V/ns PD Package power dissipation A T ≤ +25°C(14 lead DIP) — 1.6 W (16 lead SOIC) — 1.25 RTHJA Thermal resistance, junction
in „IR2110 Probleme“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ir2110.pdf
+ 25 VSS Logic supply offset voltage VCC - 25 V CC+ 0.3 V IN Logic input voltage (HIN, LIN & SD) V SS- 0.3 V DD+ 0.3 dVs/dt Allowable offset supply voltage transient (figure 2) — 50 V/ns PD Package power dissipation A T ≤ +25°C(14 lead DIP) — 1.6 W (16 lead SOIC) — 1.25 RTHJA Thermal resistance, junction
in „Wechselrichter mit MOSFET Endstufe“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ir2110.pdf
+ 25 VSS Logic supply offset voltage VCC - 25 V CC+ 0.3 V IN Logic input voltage (HIN, LIN & SD) V SS- 0.3 V DD+ 0.3 dVs/dt Allowable offset supply voltage transient (figure 2) — 50 V/ns PD Package power dissipation A T ≤ +25°C(14 lead DIP) — 1.6 W (16 lead SOIC) — 1.25 RTHJA Thermal resistance, junction
in „HIGH AND LOW SIDE DRIVER Io+ Ausgangsstrom“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
datasheet_FLEX003__v1_03.07.2008_.pdf
58 3V out Pin 11 SDI2/CN9/RG7 Pin 12 SDO2/CN10/RG8 Pin 59 GND Pin 60 GND Pin 13 DSP Pin 14 SS2/CN11/RG9 MCLR Pin 61 Vout Pin 62 V out Pin 15 TMS/RA0 Pin 16 AN20/FLTA/INT1/RE8 Pin 63 GND out Pin 64 GND out Pin 17 AN21/FLTB/INT2/RE9 Pin 18 AN5/QEB/CN7/CN7/RB5 Pin 19 AN4/QEA/CN6/RB4 Pin 20 AN3/INDX/CN5/RB3 CON3 for Piggybacking (PIC18F2550) Pin 21 AN2/SS1/CN4/RB2 Pin 22 V /RA9 ref− Pin 1 +VDD out Pin 2 GND Pin 23 V ref+A10 Pin 24 AV DD ext Pin 3 RA0/AN0 Pin 4 RB4/AN11/KB10 Pin 25 AV SS ext Pin 26 AN8/RB8 Pin 5 RA1/AN1 Pin 6 RB3/AN9/CCP2/VPO Pin 27 AN9
in „LED blinken lassen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
lm25117.pdf
Configuration and Functions PWP Package 20-Pin HTSSOP Top View UVLO 1 20 VIN DEMB 2 19 HB RES 3 18 HO SS 4 17 SW RT 5 16 VCC EP AGND 6 15 LO VCCDIS 7 14 PGND FB 8 13 CSG COMP 9 12 CS CM 10 11 RAMP RTW Package 24-Pin WQFN Top View O L N B U N V N H H 24 23 22 21 20 19 DEMB 1 18 SW RES 2 17 NC SS 3 16 VCC
in „DC-DC Wandler mit MCP42010“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Module_SS2013_-_WS2013-14.pdf
: UnivIS: 02.08.2013 09:33 13 Organisatorisches: { Bemerkungen: { UnivIS: 02.08.2013 09:33 14 Modulbezeichnung: Elektromagnetische Vertragli hkeit (EMV) 5 ECTS (Electromagnetic Compatibility) Modulverantwortliche: Manfred Albach Startsemester: SS 2013 Dauer: 1 Semester Prasenzzeit: { Std. Eigenstudium
in „Spezialisierung im Studium? Oder eher generalistisch?“ · Ausbildung, Studium & Beruf ·
-
PDF
panasonic_tx-p50u20b_e_tx-pr50u20_chassis_gpf13de_sm.pdf
COMPONENT SIDE) S-BOARD (COMPONENT SIDE) TXN/K1LUUE TNPA4858AB SS2MM2 SS2MM1 2 O 0 5 N 5 5 Q11 4 R 2 6 7 1 F K P D S R P 8 1 1 N R TNPA4804 1 SS2 PbF SS24 CRNO.25 2 1 K1 T O 2 1 2 2 Q 9 R 2 S O R D E R N O . 1 M R 1Q10 D11 C21 R R17 R24 C C14 1 1S58 1 3 R R 6 C12 R34
in „Panasonic TX-P50U20E“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
code.txt
// EMPFÄNGER #include <LoRa.h> #include <SPI.h> #define ss 5 #define rst 14 #define dio0 4 #define ledPin 2 // On-board LED pin. Change if different for your board. void setup() { pinMode(ledPin, OUTPUT); // Set the LED pin as an output digitalWrite(ledPin,
in „LoRa 433 MHz SX1278: Geringe Reichweite“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AND8391-D.pdf
CCR can be reduced when CCR Anode used in a pulse width modulation (pwm) controlled circuit Figure 14. The dc average current will be I x duty reg(SS) cycle %. For a typical 30 mA CCR at 20% duty cycle,AT of 25°C, the average current through the LEDs will be 6.0 mA. CCR Cathode Control Input Output Figure
in „12 Kanäle a 12 x 1W LEDs dimmen /steuern“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
PCF8575.pdf
HANDLING 10 CHARACTERISTICS 11 I C-BUS TIMING CHARACTERISTICS 12 DEVICE PROTECTION 13 PACKAGE OUTLINE 14 SOLDERING 14.1 Introduction to soldering surface mount packages 14.2 Reflow soldering 14.3 Wave soldering 14.4 Manual soldering 14.5 Suitability of surface mount IC packages for wave and reflow soldering
in „Vieleeeele Eingänge, viele Ausgänge.“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
PCF8575.pdf
HANDLING 10 CHARACTERISTICS 11 I C-BUS TIMING CHARACTERISTICS 12 DEVICE PROTECTION 13 PACKAGE OUTLINE 14 SOLDERING 14.1 Introduction to soldering surface mount packages 14.2 Reflow soldering 14.3 Wave soldering 14.4 Manual soldering 14.5 Suitability of surface mount IC packages for wave and reflow soldering
in „Lichtsteuerung über i2c - ULN2803A - S12-100“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
lm5107_MOSFET_Treiber.pdf
improve heat dissipation. 6 Specifications 6.1 Absolute Maximum Ratings See (1)(2) MIN MAX UNIT V DD to SS -0.3 18 V HB to HS -0.3 18 V LI or HI to SS -0.3 V DD +0.3 V LO to VSS -0.3 V DD +0.3 V HO to V SS VHS − 0.3 V HB+ 0.3 V HS to V (3) −5 100 V SS HB to V SS 118 V TJ Junction Temperature -40 150 °C Tstg
in „Spannungsversorgung IC 50V auf 12V/5V regeln“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LENOVO_THINKPAD_YOGA_900-13ISK_LCFC_NM-A411_BYG40_Rev1.0.pdf
G66 VSS VSS P19 AD19 VSS VSS AM8 AW10 VSS VSS BB55 H15 V SS VSS P20 AD20 VSS VSS AN20 AW12 VSS VSS BB6 H18 V SS VSS P21 AD21 VSS VSS AN23 AW14 VSS VSS BB60 H71 VSS VSS R13 AD62 VSS VSS AN28 AW16 VSS VSS BB64 J11 V SS VSS R6 VSS VSS VSS VSS V SS VSS AD8 VSS VSS
in „Notebook Leistungsteil reparatur“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
isl78225.pdf
O X T T O S E O A U U N N U D D C P E D V V V V I M G V 44 43 42 41 409 38 37 36 35 34 FS 1 33 VIN SS 2 DNC 32 COMP 3 31 DNC FB 4 30 ISEN4P VREF2 5 29 ISEN4N GND 6 28 ISEN2P SLOPE 7 27 ISEN2N PLL_COMP 8 26 DNC SYNC 9 25 DNC 24 CLK_OUT 10 ISEN3P PWM_INV 11 23 ISEN3N 12 13 14 15 16 1718 19 20 21 22 I R
in „Verdammtes Kompensationsnetzwerk“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
CD4027.pdf
Parameter Conditions Units Min Max Min Typ Max Min Max IDD Quiescent Device CurrentDD e 5V, IN e VDD or SS 1 1 30 mA V e 10V, V e V or V 2 2 60 mA DD IN DD SS VDD e 15V, VINe VDD or SS 4 4 120 mA VOL Low Level lOlk 1 mA Output Voltage VDD e 5V 0.05 0 0.05 0.05 V e VDD 10V 0.05 0 0.05 0.05 V VDD e 15V 0.05
in „Ic's verbauen. Grundlagen“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
spi_driver.h
: http://www.atmel.com \n * Support email: avr@atmel.com * * $Revision: 5407 $ * $Date: 2011-10-12 14:53:14 +0200 (on, 12 okt 2011) $ \n * * Copyright (c) 2009 Atmel Corporation. All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted
in „ATXMega32e5 SPI MISO immer 0 mit AT45DB161 Flash IC“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ST_7262.pdf
PC7 4 30 PA2 / AIN2 / IT3 MOSI / PC6 5 29 PA3 / AIN3 / IT4 IT12 / MISO / PC5 6 28 PA4 / AIN4 IT11 / SS / PC4 7 27 PA5 / AIN5 IT10 / SCK / PC3 8 26 PA6 / AIN6 IT9 / PC2 9 25 PA7 / AIN7 OSCIN 10 24 PB0 (HS) / MCO OSCOUT 11 23 PB1 (HS) / RDI 12 13 14 15 16 17 18 19 20 21 22 . S D C C B . S S S S S V V P
in „Unteschiede I²C / SPI“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AVR_Stamp_sheet_V1_1.pdf
100n AVCC (AD0)PA0 D1 A16 PE2 63 AGND 5 5 (OC0A/OC1C/PCINT7)PB7 17 PB7 D2 6 6 A15 VCC 16 PB6 D3 7 7 A14 21 (OC1B/PCINT6)PB6 15 PB5 D4 8 8 A13 52 VCC (OC1A/PCINT5)PB5 14 PB4 D5 9 9 A12 VCC (OC2A/PCINT4)PB4 C5 n C6 (MISO/PCINT3)PB3 13 MISO D6 10 10 A11 0 100n (MOSI/PCINT2)PB2 12 MOSI D7 11 11 A10 1 22 11 SCK PG5 12 12 A9 53 GND (SCK/PCINT1)PB1 10 SS PG4 13 13 A8 GND (SS/PCINT0)PB0 SCK 14 14 A7 (A15)PC7 42 A15 MOSI 15 15 A6 (A14)PC6 41 A14 MISO 16 16 A5 B 40 A13 PB4 17 17 A4 B (A13)PC5 39 A12 PB5 18 18 A3 (A12)PC4 PB6 A2 (A11)PC3 38 A11 19 19 (A10
in „Z180-Stamp Modul“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AVR_Stamp_sheet_V1_1.pdf
A17 /PE3 100n 63 AGND D1 5 5 A16 / PE2 17 PB7 D2 6 6 A15 VCC (OC0A/OC1C/PCINT7)PB7 16 PB6 D3 7 7 A14 (OC1B/PCINT6)PB6 PB5 D4 A13 21 VCC (OC1A/PCINT5)PB5 15 8 8 52 VCC (OC2A/PCINT4)PB4 14 PB4 D5 9 9 A12 C5 n C6 (MISO/PCINT3)PB3 13 MISO D6 10 10 A11 0 100n 12 MOSI D7 11 11 A10 1 22 (MOSI/PCINT2)PB2 11 SCK PG5 12 12 A9 53 GND (SCK/PCINT1)PB1 10 SS PG4 13 13 A8 GND (SS/PCINT0)PB0 SCK 14 14 A7 (A15)PC7 42 A15 MOSI 15 15 A6 41 A14 MISO 16 16 A5 B (A14)PC6 40 A13 PB4 17 17 A4 B (A13)PC5 39 PB5 18 18 A3 (A12)PC4 A12 (A11)PC3 38 A11 PB6 19 19 A2 (A10
in „Z180-Stamp Modul“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Circuit_diagram_of_LED_Drive_PCB_of_XLED_390_590_low_drive__20121018_.pdf
104 3 EN CSP 8 104 3 EN CSP 8 4 7 3W NO USE 4 7 3W NO USE CD4001BCM COFF CSN COFF CSN C13 5 6 1 3 C14 5 6 R30 471 GND PGATE G Q6 R31 471 GND PGATE Q7 ZXMP10A18K ZXMP10A18K 47K LM3409HV 47K LM3409HV D3 2 L3 0.76A(3W)/1.61A(5W) D4 L4 0.76A(3W)/1.61A(5W) G1+ G2+ 100UH 100UH SS3H10 C32 SS3H10 C33 0.22UF/
in „Hochleistungs-LEDs Schaltplan verstehen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
SSD1315.pdf
Row4 RAM12 COM5 Row5 RAM5 Row13 RAM13 Row5 RAM13 Row5 RAM5 Row13 RAM13 Row5 RAM13 COM6 Row6 RAM6 Row14 RAM14 Row6 RAM14 Row6 RAM6 Row14 RAM14 Row6 RAM14 COM7 Row7 RAM7 Row15 RAM15 Row7 RAM15 Row7 RAM7 Row15 RAM15 Row7 RAM15 COM8 Row8 RAM8 Row16 RAM16 Row8 RAM16 Row8 RAM8 Row16 RAM16 Row8 RAM16 COM9 Row9
in „I2C Display einfache Frage“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SSD1315.pdf
Row4 RAM12 COM5 Row5 RAM5 Row13 RAM13 Row5 RAM13 Row5 RAM5 Row13 RAM13 Row5 RAM13 COM6 Row6 RAM6 Row14 RAM14 Row6 RAM14 Row6 RAM6 Row14 RAM14 Row6 RAM14 COM7 Row7 RAM7 Row15 RAM15 Row7 RAM15 Row7 RAM7 Row15 RAM15 Row7 RAM15 COM8 Row8 RAM8 Row16 RAM16 Row8 RAM16 Row8 RAM8 Row16 RAM16 Row8 RAM16 COM9 Row9
in „I2C Display einfache Frage“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
de10-nano_a0.pdf
NXT/HPS_GPIO32 J16 LTC Interface HPS_ENET_TX_DATA3 D17 NAND_RB/RGMII1_TXD3/USB1_D3/HPS_GPIO18 QSPI_SS0,BOOTSEL1/ - / - /HPS_GPIO33A6 HPS_BOOTSEL1 15 HPS_ENET_MDIO HPS_ENET_RX_DATA0 A14 C14 16 HPS_I2C1_SDAT HPS_ENET_MDIO E16 NAND_DQ0/RGMII1_RXD0/ - /HPS_GPIO19 QSPI_CLK/ - / - /HPS_GPIO34B14 HPS_ENET_INT_N
in „Low Cost Board“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
657982_1.pdf
at both inputs. (INPUT B is available only on Oscillator Frequency D3 lCM7216B). RANGE INPUT, Pin 14 0.01s/1 Cycle D1 Note that the amplitude of the input should not exceed the 0.1s/10 Cycles D2 device supply (above the V DD and below the V SS ) by more 1s/100 Cycles D3 than 0.3V, otherwise the device
in „Einen Gefallen tun“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
vs1011_1.c
send the sequence 0x45 0x78 0x69 0x74 0 0 0 0. Zum read test: SCI STATUS (RW) Name Bits Description SS VER 6..4 Version SS APDOWN2 3 Analog driver powerdown SS APDOWN1 2 Analog internal powerdown SS AVOL 1..0 Analog volume control SS VER is 0 for VS1001, 1 for VS1011, 2 for VS1002 and 3 for vs1003. */
in „Sinustest des vs1011“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AT89C5131A_Starter_Kit_Hardware_Guide.pdf
cc L1 TTt 0 t1 oo BB 02 LL F Vc DD S 1 1 O II VV c ss TAss p SSe ssses ss MM -- 00 PL nF V DD SS 1 1 cc S SO KKSSDD V Vs XTVs pp_ T eVsTe Vs st .2 ,2 P 2n VV VV -- cc SSII CCOONN V V X V VV _ T V T V ee .0 55 C 2.. AA AA ++ _D VV __ M SSMMGG TT 11 r 22
in „Programmierung über USB“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
bd9615muv-lb-e.pdf
www.rohm.com © 2018 ROHM Co., Ltd. All rights reserved. TSZ02201-0252AAJ00130-1-2 1/30 TSZ22111 • 14 • 001 07.May.2020 Rev.003 BD9615MUV-LB Pin Configuration (TOP VIEW) D E C G R N C P V E V SYNC VREG MDT OUT EXP-PAD RT GND SS OCP_M N P B P O M F P M O C C O Figure 2. Pin Configuration Pin Description
in „BD9615 (flyback) startet nicht zuverlässig“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ABLIC-S-8520-8251_Series.pdf
Characteristics (Typical Data) 1. Examples of major parameters characteristics (1) Current consumption (SS1-Input voltage IN ) (osc= 60 kHz) (osc= 180 kHz) 20 40 Ta = 25C 15 30 ] ] Ta = 25C 110 [10 Ta = 85C S S Ta = 40C I Ta = 85C I 5 10 Ta = 40C 0 2 4 6 8 10 12 14 16 0 2 4 6 8 10 12 14 16
in „EHAYP 7606 - Welcher IC?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
EM6126_DS.pdf
V4 V 3 V LCD VLCD –V LCD V – V 2 SS V state2(t) VLCD– V1 V 3 V 4 V state2(t) = Col1 (t) – Row2 (t) 0 V 0 V V2– V1 V SS– V4 V - V 3 LCD –V LCD 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 1516⏐0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 1516 Copyright © 2006
in „LCD mit SPI ansteuern“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MLX90609_standard_datasheet.pdf
by SS after every data exchange to prevent a data distortion. ▪ If high level is applied toSS during an instruction byte transmission, the command will be ignored. ▪ If high level is applied tSS during the
in „[AVR] MLX90609 Temperatur berechnen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
0005359_MLX90609_standard_datasheet.pdf
by SS after every data exchange to prevent a data distortion. ▪ If high level is applied toSS during an instruction byte transmission, the command will be ignored. ▪ If high level is applied tSS during the
in „SPI ansteuerung von Gyro“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MCP41010.pdf
otherwise indicated, curve represents 10 kΩ, 50 kΩ and 100 kΩ devices, V = 5V, V = 0V, T = +25°C, DD SS A V B= 0V. 1 14 Ω VDD= +3V to +5V ) R AB e k12 c 0.8 e t c10 i 0.6 t e i 8 RWB R e Code = 80h e 0.4 l 6 l R R n a WB WA m 4 r 0.2 o o N 2 N MCP41010, MCP42010 (10 kΩ potentiometers) 0 0 0 32 64 96 128
in „Widerstand regeln“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
11195c.pdf
otherwise indicated, curve represents 10 kΩ, 50 kΩ and 100 kΩ devices, V = 5V, V = 0V, T = +25°C, DD SS A V B= 0V. 1 14 Ω VDD= +3V to +5V ) R AB e k12 c 0.8 e t c10 i 0.6 t e i 8 RWB R e Code = 80h e 0.4 l 6 l R R n a WB WA m 4 r 0.2 o o N 2 N MCP41010, MCP42010 (10 kΩ potentiometers) 0 0 0 32 64 96 128
in „DC-DC Wandler mit MCP42010“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
mcp41xxx.pdf
otherwise indicated, curve represents 10 kΩ, 50 kΩ and 100 kΩ devices, V = 5V, V = 0V, T = +25°C, DD SS A V B= 0V. 1 14 Ω VDD= +3V to +5V ) R AB e k12 c 0.8 e t c10 i 0.6 t e i 8 RWB R e Code = 80h e 0.4 l 6 l R R n a WB WA m 4 r 0.2 o o N 2 N MCP41010, MCP42010 (10 kΩ potentiometers) 0 0 0 32 64 96 128
in „Schaltregler, Feedback und Op Amp“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
x20c16.pdf
12 17 I/O AS I/5 A 4 7 27 NC 5 WE 6 23 I/4 A 8 26 NC I/O2 13 16 I/4 7 22 1 1 1 1 1 1 1 3 X20C16 V 14 15 I/O VCC X20C16 I/3 1 2 3 4 5 6 7 8 9 0 2 3 4 5 6 A 2 9 25 OE SS 3 NE 8 21 VSS (TOP VIEW) 3826 FHD F02 9 20 O N A A N A WV V N N A A A A A A 1 10 24 A 10 NC I/2 E C 9 8 C S E C C E C 7 6 5 4 3 A 0
-
PDF
S1D15605.pdf
3657 52 V SS –285 92 IRS –4136 13 VSS 3538 53 V RS –374 93 V DD –4255 14 WR, R/W 3418 54 V RS –463 94 TEST5 –4375 15 RD, E 3298 55 V DD –552 95 TEST6 –4494 16 VDD 3179 56 V DD –641 96 TEST7 –4614 17 D0 3059 57 V1
in „Pollin Grafik LCD-Modul OPTREX F-51320AE“ · Mikrocontroller und Digitale Elektronik ·