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Class_2_Bluetooth_Module_with_EDR_Support_DS500023-2256355.pdf
SMT pads for easy and reliable PCB • Compatible with Microchip Microcontroller Families mounting (PIC16F, PIC18F, PIC24F/H, dsPIC33 and PIC32) • Class 2 power amplifier with on-board PCB trace antenna (RN42) or external antenna (RN42N) • Up to 10 meter range • Compliance (RN42) Applications - Modular
in „[V] Microchip Bluetooth Module RN41-I/RM und RN42-I/RM“ · Markt ·
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MCP1801.pdf
V IL= 30 mA, VR 2.0V — 2.23 - R 2.33 - R IL= 100 mA, VR< 2.0V Power Supply Ripple PSRR — 70 — dB f = 10 kHz, I 50 mA, L Rejection Ratio VINAC = 1V pk-pk, IN= 0 µF, if R 1.5V, thenIN= 2.5V Output Noise eN — 0.6 — µV/Hz IOUT=100 mA, f=1 kHz, COUT =1 µF (X7R Ceramic), V =3.3V OUT Note 1: The minimum
in „USB-Spannungsversorgung lässt PIC24FJ128 abstürzen?“ · Mikrocontroller und Digitale Elektronik ·
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25AA128.pdf
17 16 16 SCK 18 19 High-Impedance SO n + 2 n + 1 n n n - 1 Don’t Care 5 SI n + 2 n + 1 n n n - 1 HOLD FIGURE 1-2: SERIAL INPUT TIMING 4 CS 12 2 7 11 Mode 1,1 8 3 SCK Mode 0,0 5 6 SI MSB in LSB in High-Impedance
in „SPI EEPROM -> Kein Page read :- O“ · Mikrocontroller und Digitale Elektronik ·
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Class_1_Bluetooth_Module_with_EDR_Support_DS500022-2257897.pdf
Product Development, Quicker Time to Market • Compatible with Microchip Microcontroller Fami- lies (PIC16F, PIC18F, PIC24F/H, dsPIC33 and PIC32) • Up to 100 meter range 2021 Microchip Technology Inc. DS50002280B-page 1 RN41/RN41N RN41/RN41 MODULE VARIANTS (1) Model Antenna Firmware Description RN41
in „[V] Microchip Bluetooth Module RN41-I/RM und RN42-I/RM“ · Markt ·
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MCP1700.pdf
2005-2016 Microchip Technology Inc. MCP1700 Note: Unless otherwise indicated: V = 1.8V, R OUT = 1 µF Ceramic (X7R), C IN = 1 µF Ceramic (X7R), I = 100LµA, T = +25°C, V = V + 1V. A IN R 0.16 10.00 VR= 5.0V VIN 3.8V 0.14 VR= 2.8V OUT= 50 mA V0.12 TJ= +125°C ) ( H V IN2.5V VIN 2.8V g0.10 T = +25°C / 1.00
in „ESP-01 mit LiPo betreiben“ · Mikrocontroller und Digitale Elektronik ·
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Datasheet_MIC2875.pdf
1μH L1 1μH 2.5V to 5.0V SW 2.5V to 5.0V SW V V V V IN IN OUT OUT IN IN OUT 5.0V C1 R1 5.0V C1 R1 4.7μF 1MΩ C2* 4.7μF 1MΩ R2 C2* 10V EN /PG VIN 22μF 10V EN /PG VIN 910kΩ 22μF 10V OUTS 10V FB R3 200kΩ PGND AGND PGND AGND * Two more 22 F capacitors should be added in parallel with C2 for V IN > 5.0V. Efficiency
in „MI2875 PG-PIN“ · Analoge Elektronik und Schaltungstechnik ·
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MIC5233-3.3YS-microchip-20221000.pdf
Batteries MIC5233YM5 • Automotive Electronics 1 5 VIN VOUT • Battery-Powered Systems 2 R1 C = 2.2 μF • 3-4 Cell Li-Ion Battery Input Range CIN 1.0 μF CERAMIC 3 4 OFF ON EN R2 GND= 18 μA Package Types MIC5233 MIC5233 5-Pin SOT23 3-Pin SOT223 (Top View) (Top View) EN GND IN 3 2 1 GND 4 L3xx 4 5 1 2 3
in „STM32F302C8T6 Schaltplanüberprüfung“ · Mikrocontroller und Digitale Elektronik ·
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MIC5239_Data.pdf
or film capacitors can be used at the output. Figure 4-2 displays a range of ESR values for a 10 µF capacitor. Virtually any 10 µF capacitor with an ESR less than 3.4Ω is sufficient for stability over the FIGURE 4-3: Error FLAG Output Timing. entire input voltage range. Stability can also be 4.5 Thermal
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Techniques_for_Robust_Touch_Sensing_Design_AN1334.pdf
consumption requirements. if (T0IE & T0IF) { // Short Delay FIGURE 21: OVERSAMPLING jitter = ADRESL & 0x0F; while(jitter--); TRADE-OFF: TIME VS. SNR 90 i mTouch_Service(); a } e85 } i 256 :: 14-bit N80 t 64 :: 13-bit FREQUENCY HOPPING a75 i 16 :: 12-bit Frequency-Based Acquisition Methods Only S70 C 4 ::
in „Wie realisiert man Sensortasten?“ · Analoge Elektronik und Schaltungstechnik ·
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MCP1640.pdf
1 MCP1640/B/C/D L1 4.7µH VOUT VIN 3.3V @ 100 mA 0.9V to 1.7V SW V OUT VIN C IN 976 K COUT +E 4.7µF V 10µF I EN FB A K 562 K A - GND L1 4.7µH VOUT V IN SW 5.0V @ 300 mA 3.0V to 4.2V V OUTS VIN V OUTP 976 K + CIN C OUT N 4.7µF EN VFB 10 µF O I 309 K L - P GND SGND Efficiency vs. I OUT for 3.3V OUT
in „ESP32-C6 an 18650 Akku betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP73832T.pdf
SOT-23-5 500 mA Li-Ion Battery Charger VIN 4 3 VDD 1 8 PROG STAT 1 5 PROG VDD VBAT +Single V 2 4.7 μF 4.7 μF Li-Ion VDD 2 EP 7 NC SS -Cell VBAT 3 9 6 VSS VBAT 3 4 V DD PROG 5 VBAT 4 5 STAT 470Ω 2 kΩ 1 2 * Includes Exposed Thermal Pad (EP); see Table 3-1. STAT VSS MCP73831 © 2008 Microchip Technology
in „LiPo-Charger mit MCP73832T“ · Analoge Elektronik und Schaltungstechnik ·
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MCP73831-2_ENG_TDS.pdf
SOT-23-5 500 mA Li-Ion Battery Charger VIN 4 3 VDD 1 8 PROG STAT 1 5 PROG VDD VBAT +Single V 2 4.7 μF 4.7 μF Li-Ion VDD 2 EP 7 NC SS -Cell VBAT 3 9 6 VSS VBAT 3 4 V DD PROG 5 VBAT 4 5 STAT 470Ω 2 kΩ 1 2 * Includes Exposed Thermal Pad (EP); see Table 3-1. STAT VSS MCP73831 © 2008 Microchip Technology
in „LiPo-IC MCP73831 kennt keine Ladeschlussspannung“ · Analoge Elektronik und Schaltungstechnik ·
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MC_product_selection_AN.pdf
input high threshold. VIN 4 VDD VBAT 3 + Single The MCP73812 does not support preconditioning of 1 µF 1 µF Li-Ion deeply depleted cells, and it begins with fast charge -Cell 5 once charging conditions satisfy. PROG 2 kW 1 CE VSS 2 MCP73812 FIGURE 9: MCP73812 Typical Applica- tion Circuit. DS01088A-page
in „Hackbarer(?) 21 EUR Quadcopter“ · Mikrocontroller und Digitale Elektronik ·
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Datenblatt.pdf
moderately fast op amp, such as the TL071, should be 1 -5 used. MΩ FIGURE 6-5: Ripple Filter. DS21483D-page 16 © 2007 Microchip Technology Inc. TC9400/9401/9402 7.0 F/V POWER-ON RESET In some cases, however, the TC9400 output must be zero at power-on without a frequency input. In such In F/V mode, the TC9400
in „Frequenz-Spannungswandler OP-Verstärkung“ · Mikrocontroller und Digitale Elektronik ·
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mcp23009.pdf
Time: TSUSTO 100 kHz mode 4.0 — — µs 1.8V – 5.5V 400 kHz mode 0.6 — — µs 2.7V – 5.5V 3.4 MHz mode 0.16 — — µs 4.5V – 5.5V Note 1: This parameter is characterized, not 100% tested. 2: CB is specified from 10 to 400 (pF). 3: This parameter is not applicable in high-speed mode (3.4 MHz). © 2009 Microchip
in „Frage zu SPI und MCP23S09“ · Mikrocontroller und Digitale Elektronik ·
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Capacitive_Touch_Sensor_Design_Guide_AN2934.pdf
h • Human body model capacitance • Self-capacitance of the human body with respect to earth • 100 pF to 200 pF for an adult depending on physique C g • Capacitance of the coupling between the application DC ground and earth • Depends on application type and power system • Ranging from ~1 pF in a small
in „Wie realisiert man Sensortasten?“ · Analoge Elektronik und Schaltungstechnik ·
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MCP2021.pdf
conditions: 1 nF; 1 k | 6.8 nF; 660 | 10 nF; 500 TH REC(MAX) = 0.284 x BB, TH DOM(MAX ) = 0.422 x BB, VBB =7.6V - 18V; BIT= 50 µs. D2 = tUS _REC(MAX ) / 2 BIT) Duty Cycle 3 @10.4 kbit/sec .417 — — %t BIT CBUS ;RBUS conditions: 1 nF; 1 k | 6.8 nF; 660 | 10 nF; 500 TH REC(MAX) = 0.778 x BB, TH DOM(MAX ) = 0.616 x BB, VBB =7.0V - 18V; BIT= 96 µs. D3 = BUS _REC(MIN) / 2 xBI) Duty Cycle 4 @10.4 kbit/sec — — .590 %t BIT CBUS ;RBUS
in „MCP2021 -> Welcher ESD Level wird erreicht“ · Mikrocontroller und Digitale Elektronik ·
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22070a-53890.pdf
=4.7μF cer ( 0.16 IN e 0.14 z a VOUT= 5.0V √ 1.000 I =200 mA o 0.12 VOUT 2.5V V OUT V 0.10 m VR=0.8V,IN =2.1V u 0.08 e o i o 0.06 o 0.100 D 0.04 N 0.02 0.00 0.010 0 50 100 150 200 250 300 0.01 0.1 1 10 100
in „[V] 50St.LowNoise Microchip LDO MCP1824T 3,3V/300mA SOT223-5 mit Shutdown“ · Markt ·
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20002234D.pdf
Application L1 4.7 µH V OUT VIN SW 3.3V @ 100 mA 0.9V to 1.7V VOUT V IN 976 k + C IN C OUT E 4.7 µF EN V FB 10 µF I A K 562 k A GND - L1 4.7 µH VOUT V IN SW 5.0V @ 300 mA 3.0V to 4.2V V OUTS V IN V OUTP 976 k + CIN COUT 4.7 µF EN VFB 10 µF N - 309 k L - PGND S GND Efficiency vs. I OUT for 3.3V OUT
in „NRF24L01+ durch MCP1640 gestört?“ · Mikrocontroller und Digitale Elektronik ·
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22103a.pdf
Time: TSUSTO 100 kHz mode 4.0 — — µs 1.8V – 5.5V 400 kHz mode 0.6 — — µs 2.7V – 5.5V 3.4 MHz mode 0.16 — — µs 4.5V – 5.5V Note 1: This parameter is characterized, not 100% tested. 2: CB is specified from 10 to 400 (pF). 3: This parameter is not applicable in high-speed mode (3.4 MHz). © 2008 Microchip
in „MCP23S18 I/O Expander“ · Mikrocontroller und Digitale Elektronik ·
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Micrel.pdf
the Minimum Load Current sub-section). VALUES AT FULL LOAD Device Full-Load Capacitor MIC2915x 10 µF MIC2930x 10 µF MIC2950x 10 µF MIC2975x 22 µF 2016-2019 Microchip Technology Inc. DS20005685B-page 25 MIC2915X/30X/50X/75X MIC29152 VIN VOUT R1 10μF 22μF R2 FIGURE 4-2: Adjustable Regulator with Resistors
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MCP4261-DigitalPot-2Fach-50kDATASHEET.pdf
IHH Pull-down Current V DD= 5.5V, CS = 12.5V — 170 — µA CS pin, DD= 5.5V, CS = 3V CS Pull-up / RCS — 16 — kΩ V DD= 5.5V, CS = 3V Pull-down Resistance Input Leakage IIL -1 — 1 µA V IN= VDD and VIN= VSS Current Pin Capacitance CIN, OUT — 10 — pF fC= 20 MHz Note 1: Resistance is defined as the resistance
in „Step Down Regler zu heiss & Fragen zur Umsetzbarkeit einer Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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MCP73871-Data-Sheet-20002090E__2_.pdf
MCP73871 Typical Application AC-DC Adapter or USB Port 18, 19 1, 20 System IN OUT Load 10 μF 2 4.7 μF VPCC 14, 15, 16 470 VBAT 6 4.7 μF PG NTC 470 7 STAT2 THERM 5 470 8 10 k STAT1 PROG1 R Single-Cell LBO 13 PROG1 Li-Ion Battery 3 SEL Low Hi 4 12 R PROG3 Hi PROG2 PROG3 Low 9 TE Low Hi 17
in „Fehlersuche beim MCP73871“ · Mikrocontroller und Digitale Elektronik ·
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MCP738312.pdf
mA Li-Ion Battery Charger IN 4 3 VDD 1 8 PROG STAT 1 5 PROG VDD VBAT + Single V 2 7 NC VSS 2 4.7 F 4.7 F - Li-Ion DD EP Cell VBAT 3 9 6 VSS V BAT3 4 VDD PROG 5 V 4 5 STAT BAT 470 2 k 1 V 2 * Includes Exposed Thermal Pad (EP); see Table 3-1. STAT SS MCP73831 2005-2014 Microchip Technology Inc.
in „MCP73832 Beschaltung für die Auswertung mit µC“ · Mikrocontroller und Digitale Elektronik ·
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B1nn.pdf
ns (Notes 1 and 3) suppression (SDA and SCL pins) 15 TWC Write cycle time — — 5 ms — (byte or page) 16 — Endurance 1M — — cycles 25°C, (Note 4) Note 1: Not 100% tested. C= total capacitance of one bus line in pF. 2: As a transmitter, the device must provide an internal minimum delay time to bridge the
in „IPL Lampe Blitzcounter rücksetzten“ · Mikrocontroller und Digitale Elektronik ·
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MCP4151.pdf
Pull-down Current VDD = 5.5V, CS= 12.5V — 170 — µA CS pin, V = 5.5V, V = 3V DD CS CS Pull-up / R CS — 16 — kΩ VDD = 5.5V, CS= 3V Pull-down Resistance Input Leakage IIL -1 — 1 µA VIN= VDD and VIN= VSS Current Pin Capacitance CIN, OUT — 10 — pF C = 20 MHz RAM (Wiper) Value Value Range N 0h — 1FFh hex 8-bit
in „Frage zum MCP4151 SPI Digital Poti?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP23017-Datasheet.pdf
MCP23017/MCP23S17 16-Bit I/O Expander with Serial Interface Features • Configurable Interrupt Source: - Interrupt-on-change from configured register • 16-Bit Remote Bidirectional I/O Port: defaults or pin changes - I/O pins
in „kennt jemand sich aus mit MC23017 IO-Board“ · Mikrocontroller und Digitale Elektronik ·
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SAMA5D2_PTC_Firmware_UG.pdf
0x0108 mask_y 7:0 R/W Y7 Y6 Y5 Y4 Y3 Y2 Y1 Y0 y s 0x0109 15:8 R/W - - - - - - - - t e D 0x010A 23:16 R/W - - - - - - - - m 5 0x010B 31:24 R/W - - - - - - - - 0 F 2 0x010C csd 7:0 R/W csd r 5 m - 0x010D rsel 7:0 R/W - - - - - - rsel w g a e 0x010E prsc 7:0 R/W - - - - - - prsc r 4 e 7 6 5 4 3 2 1 0 Offset
in „Was ist bzw. war Atmel QTouch?“ · Mikrocontroller und Digitale Elektronik ·
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MCP41HVX1.pdf
bit8 bit7 bit6 bit5 bit4 bit3 bit2 bit1 bit0 Input Sample FIGURE 6-2: 16-Bit Commands (Write, Read) – SPI Waveform (Mode 1,1). V IH CS V IL SCK PIC Writes CMDERR bit to SSPBUF SDO bit15 bit14 bit13 bit12 bit11bit10 bit9 bit8 bit7 bit6 bit5 bit4 bit3 bit2 bit1 bit0 AD3 AD2
in „MCP41HVX READCMD falsch verstanden??“ · Mikrocontroller und Digitale Elektronik ·
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MCP6562.pdf
1⎞ ⎛ 1⎞ VTLH = VREF ⎜1 +---⎟-–V OL R--⎟-- control). Output chatter also increases the dynamic ⎝ R F⎠ ⎝ F⎠ supply current. R R V = V ⎜1+----⎟-–V ⎜--⎟--- THL REF ⎝ R ⎠ OH ⎝RF⎠ F Where: V = trip voltage from low to high TLH VTHL = trip voltage from high to low DS22139B-page 16 © 2009 Microchip Technology
in „Schmitttrigger mit MCP6562 unklare Abweichung“ · Analoge Elektronik und Schaltungstechnik ·
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MCP73837.pdf
µF 2 9 USB Port V USB THERM Cell 4.7 µF 4.7 µF 1KΩ 3 8 STAT1 TE Hi Low 1KΩ 4 STAT2 PROG2 7 Hi Low 5 6 V SS PROG1 RPROG DS22071A-page 2 © 2007 Microchip Technology Inc. MCP73837/8 Functional Block Diagram
in „Verständnissfrage - MCP73837“ · Mikrocontroller und Digitale Elektronik ·
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PDF
24fc256.pdf
fall time froIHV 250 ns All except 24FC256 (Note 1) 15 TOF minimum to VILmaximum 10 + 0.1CB C B 100 pF 250 ns All except 24FC256 (Note 1) Input Filter Spike All except 24FC256 16 TSP Suppression — 50 ns (Notes 1 and 3) (SDA and SCL pins) 17 T WC Write Cycle Time — 5 ms (byte or page) 18 Endurance 1,000,000
in „Wodtke HP-S5 HP Er3 EEPROM Schreib-/Lesefehler“ · Haus & Smart Home ·
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mcp3424.pdf
Sym Min Typ Max Units Conditions High Speed Mode (3.4 MHz) Clock frequency SCL 0 — 3.4 MHz Cb= 100 pF 0 — 1.7 MHz Cb= 400 pF Clock high time T 60 — — ns C = 100 pF, f = 3.4 MHz HIGH b SCL 120 — — ns Cb= 400 pF, SCL = 1.7 MHz Clock low time TLOW 160 — — ns Cb= 100 pF, SCL = 3.4 MHz 320 — — ns Cb= 400
in „Sensorplatine MPX4115 DS1621 HIH5030 - Schaltungskontrolle“ · Mikrocontroller und Digitale Elektronik ·
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MCP6V11U_OpAmp.pdf
Margin PM — 70 — ° G = +1 Amplifier Noise Response Input Noise Voltage Eni — 0.67 — µV P-P f = 0.01 Hz to 1 Hz E — 2.1 — µV f = 0.1 Hz to 10 Hz ni P-P Input Noise Voltage Density eni — 102 — nV/√Hz f < 500 Hz Input Noise Current Density ni — 4 — fA/√Hz Amplifier Distortion (Note 1) Intermodulation
in „OpAmps: Maximale Widerstandswerte“ · Analoge Elektronik und Schaltungstechnik ·
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70622B.pdf
, 16V, +/-10%, X7R, SMT 0402 Murata Electronics North America C11 4.3 pF Capacitor, Ceramic, 50V, +/-0.1 pF, UHI-Q NP0, Johanson Technology SMT 0402 C12 1.5 pF Capacitor, Ceramic, 50V, +/-0.1 pF, UHI-Q NP0
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PDF
70622B.pdf
, 16V, +/-10%, X7R, SMT 0402 Murata Electronics North America C11 4.3 pF Capacitor, Ceramic, 50V, +/-0.1 pF, UHI-Q NP0, Johanson Technology SMT 0402 C12 1.5 pF Capacitor, Ceramic, 50V, +/-0.1 pF, UHI-Q NP0
in „Wie genau funktioniert die drahtlose Kommunikation?“ · HF, Funk und Felder ·
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PDF
Bestandsliste.pdf
Wima MP3-X2 0.047 UF 250V 1Stk 0,63 € 0,63 € 1455 MP30.068UF Kondensator Wima MP3-X2 0.068 UF 250V 5Stk 0,66 € 3,28 € 1456 AT89C2051-24PC Microcontroller 128x8 Bit RAM DIP20 5Stk 1,07 € 5,34 € 1457 PIC16F505-I/P Microcontroller 8Bit 1Kx12 Flash 14
in „Auflösung Elektronik Shop“ · Markt ·
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MCP79521.pdf
DS20002300E-page 25 MCP7951X/MCP7952X REGISTER 5-13: ALMxWKDAY: ALARM 0/1 WEEKDAY VALUE REGISTER (ADDRESSES 0x0F/0x16) U-0 R/W-0 R/W-0 R/W-0 R/W-0 R/W-0 R/W-0 R/W-1 — ALMxMSK2 ALMxMSK1 ALMxMSK0 ALMxIF WKDAY2 WKDAY1 WKDAY0 bit 7 bit 0 Legend: R = Readable bit W = Writable bit U = Unimplemented bit, read as ‘0’ -
in „RTC -> MCP79521“ · Mikrocontroller und Digitale Elektronik ·
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MCP794xx.pdf
23 MCP79400/MCP79401/MCP79402 REGISTER 5-13: ALMxMTH: ALARM0/1 MONTH VALUE REGISTER (ADDRESSES 0x0F/0x16) U-0 U-0 U-0 R/W-0 R/W-0 R/W-0 R/W-0 R/W-1 — — — MTHTEN0 MTHONE3 MTHONE2 MTHONE1 MTHONE0 bit 7 bit 0 Legend: R = Readable bit W = Writable bit U = Unimplemented bit, read as ‘0’ -n = Value at POR
in „MCP794xx EUI-64 Node Adresse“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2243913.pdf
Pull-down Current VDD = 5.5V, IHH= 12.5V — 170 — µA HVC pin, VDD= 5.5V, HVC = 3V HVC Pull-up / R HVC — 16 — k VDD = 5.5V, HVC = 3V Pull-down Resistance Input Leakage Cur- IL -1 — 1 µA VIN = VDDand VIN= VSS rent Pin Capacitance C INC OUT — 10 — pF fC= 3.4 MHz RAM (Wiper) Value Value Range N 0h — 1FFh hex
in „[V] 11St. SMD Dual Digital Poti - I2C Microchip MCP4561-103 10kOhm 256Steps Nonvolatile (8€)“ · Markt ·
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PDF
22107B-1180063.pdf
Pull-down Current VDD = 5.5V, IHH= 12.5V — 170 — µA HVC pin, VDD= 5.5V, HVC = 3V HVC Pull-up / R HVC — 16 — k VDD = 5.5V, HVC = 3V Pull-down Resistance Input Leakage Cur- IL -1 — 1 µA VIN = VDDand VIN= VSS rent Pin Capacitance C INC OUT — 10 — pF fC= 3.4 MHz RAM (Wiper) Value Value Range N 0h — 1FFh hex
in „[V] 24St SMD Digital I2C / 256 Steps 5K Dual Poti Microchip MCP4561- 502E/MS (MSOP8) (alle 15€)“ · Markt ·
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PDF
2243913.pdf
Pull-down Current VDD = 5.5V, IHH= 12.5V — 170 — µA HVC pin, VDD= 5.5V, HVC = 3V HVC Pull-up / R HVC — 16 — k VDD = 5.5V, HVC = 3V Pull-down Resistance Input Leakage Cur- IL -1 — 1 µA VIN = VDDand VIN= VSS rent Pin Capacitance C INC OUT — 10 — pF fC= 3.4 MHz RAM (Wiper) Value Value Range N 0h — 1FFh hex
in „[V] 44St. SMD Digital I2C / 256 Steps 10K Poti Microchip MCP4561- 103E/MS (MSOP8 Gehäuse)“ · Markt ·
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PDF
2243913.pdf
Pull-down Current VDD = 5.5V, IHH= 12.5V — 170 — µA HVC pin, VDD= 5.5V, HVC = 3V HVC Pull-up / R HVC — 16 — k VDD = 5.5V, HVC = 3V Pull-down Resistance Input Leakage Cur- IL -1 — 1 µA VIN = VDDand VIN= VSS rent Pin Capacitance C INC OUT — 10 — pF fC= 3.4 MHz RAM (Wiper) Value Value Range N 0h — 1FFh hex
in „[V] 10St. Digitalpoti MCP4561-103E/MS 8MSOP orginalverpackt. (9€)“ · Markt ·
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39662c.pdf
CHARACTERISTICS Param. No. Sym Characteristic Min Max Units Conditions thCLKOUT CLKOUT Pin High Time 16.5 ns T DUTY= 50% (Note 1) tCLKOUT CLKOUT Pin Low Time 16.5 ns T DUTY= 50% (Note 1) l trLKOUT CLKOUT Pin Rise Time 3 ns Measured from 0.1 DD to 0.9 VDD, Load = 10 pF (Note 1) tfLKOUT CLKOUT Pin Fall Time 4 ns Measured from 0.9 DD to 0.1 VDD, Load = 10 pF (Note 1) Note 1: CLKOUT prescaler is set to divide by one. TABLE 16-5: REQUIREMENTS FOR EXTERNAL MAGNETICS Parameter Min Norm Max Units Conditions RX Transformer Turns Ratio 1:1 TX Transformer Turns
in „Webserver mit XC167“ · Mikrocontroller und Digitale Elektronik ·
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KSZ8851SNL.pdf
0x15 0x14 MARH — MAC Address Register High [7:0] 0x14 0x15 MAC Address Register High [15:8] to 0x17 0x16 - 0x17 0x16 Reserved Don’t Care None 0x17 0x18 0x18 0x18 - 0x19 0x19 to Reserved Don’t Care None 0x1B 0x1A 0x1A - 0x1B 0x1B 0x1C 0x1C - 0x1D 0x1C 0x1D to 0x1E Reserved Don’t Care None 0x1F 0x1E - 0x1F
in „KSZ8851 Ethernet komplizierte Frage.“ · Mikrocontroller und Digitale Elektronik ·
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6291174.pdf
G0. 5C B 2 F G R G R C2 G 0 O H K 16 2 0 6 Y 0 G B 3 K2 V M 4 1 4 1 A M 2 C G7 E J 2 1 Y 3 K C 6 N C 1 K B K A O S D J A - S 1 1 1 C 0F L R 3 3 Q Q. K 6 0 6 6 X6 83 0 5 4 F 6 G V 1 6 F C G L 1 1 6 NB 1 D T 7 16 2
in „Sanyo LCD Beamer PLC- XU30 defekt“ · Analoge Elektronik und Schaltungstechnik ·
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1_AMD_BKDG_Family__15h_Mod_00h-0Fh_BKDG.pdf
615 3.16.2 NBPMCx0E[F:8] Events (Crossbar) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 617 3.16.3 NBPMCx0F[F:0] Events (Link, Crossbar) . . . . . . . . . . . . . . . . . . . . . . . . 620 3.16.4
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Exp_Meth_In_RF_Des--Wes_Hayward.pdf
feedback capacitor. The corresponding fre- quency domain response is 'out V in " y ^ l - 8 - J t R f -C " •A + 16-jr -f4 R 4 -C 4-A ->+16-JI >f T R ) C ) \ Fig 3.54—Biasing method for high-pass filter sections. A voltage divider creates Eq 3.21 a synthetic ground at half of the single supply. 2.0 1.5
in „Literatur zum Selbstbau von Sendern und Empfängern“ · HF, Funk und Felder ·