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SSD1306.pdf
Row2 RAM2 Row58 RAM2 - - Row2 RAM2 - - COM59 Row59 RAM59 Row3 RAM3 Row59 RAM3 - - Row3 RAM3 - - COM60 Row60 RAM60 Row4 RAM4 Row60 RAM4 - - Row4 RAM4 - - COM61 Row61 RAM61 Row5 RAM5 Row61 RAM5 - - Row5 RAM5 - - COM62 Row62 RAM62 Row6 RAM6 Row62 RAM6 - - Row6 RAM6 - - COM63 Row63 RAM63 Row7 RAM7 Row63
in „SH1106 Init-Sequenz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Solomon_Systech_LED_Display_driver_chip_SSD1306.pdf
Row2 RAM2 Row58 RAM2 - - Row2 RAM2 - - COM59 Row59 RAM59 Row3 RAM3 Row59 RAM3 - - Row3 RAM3 - - COM60 Row60 RAM60 Row4 RAM4 Row60 RAM4 - - Row4 RAM4 - - COM61 Row61 RAM61 Row5 RAM5 Row61 RAM5 - - Row5 RAM5 - - COM62 Row62 RAM62 Row6 RAM6 Row62 RAM6 - - Row6 RAM6 - - COM63 Row63 RAM63 Row7 RAM7 Row63
in „Mit Wire.h über I2C auf LCD-Display 1602 zugreifen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Solomon_Systech_LED_Display_driver_chip_SSD1306.pdf
Row2 RAM2 Row58 RAM2 - - Row2 RAM2 - - COM59 Row59 RAM59 Row3 RAM3 Row59 RAM3 - - Row3 RAM3 - - COM60 Row60 RAM60 Row4 RAM4 Row60 RAM4 - - Row4 RAM4 - - COM61 Row61 RAM61 Row5 RAM5 Row61 RAM5 - - Row5 RAM5 - - COM62 Row62 RAM62 Row6 RAM6 Row62 RAM6 - - Row6 RAM6 - - COM63 Row63 RAM63 Row7 RAM7 Row63
in „SSD1306/1309 Library zum Darstellen von Text auf OLED Displays“ · Projekte & Code ·
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PDF
SSD1315.pdf
Row2 RAM2 Row58 RAM2 - - Row2 RAM2 - - COM59 Row59 RAM59 Row3 RAM3 Row59 RAM3 - - Row3 RAM3 - - COM60 Row60 RAM60 Row4 RAM4 Row60 RAM4 - - Row4 RAM4 - - COM61 Row61 RAM61 Row5 RAM5 Row61 RAM5 - - Row5 RAM5 - - COM62 Row62 RAM62 Row6 RAM6 Row62 RAM6 - - Row6 RAM6 - - COM63 Row63 RAM63 Row7 RAM7 Row63
in „I2C Display einfache Frage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1315.pdf
Row2 RAM2 Row58 RAM2 - - Row2 RAM2 - - COM59 Row59 RAM59 Row3 RAM3 Row59 RAM3 - - Row3 RAM3 - - COM60 Row60 RAM60 Row4 RAM4 Row60 RAM4 - - Row4 RAM4 - - COM61 Row61 RAM61 Row5 RAM5 Row61 RAM5 - - Row5 RAM5 - - COM62 Row62 RAM62 Row6 RAM6 Row62 RAM6 - - Row6 RAM6 - - COM63 Row63 RAM63 Row7 RAM7 Row63
in „I2C Display einfache Frage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS1307.pdf
Current CCA 1.5 mA (SCL = 100kHz) Standby Current I (Note 3) 200 CCS µA V Leakage Current I 5 50 nA BAT BATLKG 1.216 x 1.25 x 1.284 x Power-Fail Voltage (BAT = 3.0V) VPF V VBAT VBAT V BAT DC ELECTRICAL CHARACTERISTICS (VCC = 0V, V BAT= 3.0V; T A 0°C to +70°C, T = A40°C to +85°C.) (Notes 1, 2) PARAMETER
in „[V] noch 2 x 10St. Dallas RTC DS1307Z (SO8) abzugeben“ · Markt ·
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PDF
DS1307.pdf
Current CCA 1.5 mA (SCL = 100kHz) Standby Current I (Note 3) 200 CCS µA V Leakage Current I 5 50 nA BAT BATLKG 1.216 x 1.25 x 1.284 x Power-Fail Voltage (BAT = 3.0V) VPF V VBAT VBAT V BAT DC ELECTRICAL CHARACTERISTICS (VCC = 0V, V BAT= 3.0V; T A 0°C to +70°C, T = A40°C to +85°C.) (Notes 1, 2) PARAMETER
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PDF
ds1307.pdf
Current CCA 1.5 mA (SCL = 100kHz) Standby Current I (Note 3) 200 CCS µA V Leakage Current I 5 50 nA BAT BATLKG 1.216 x 1.25 x 1.284 x Power-Fail Voltage (BAT = 3.0V) VPF V VBAT VBAT V BAT DC ELECTRICAL CHARACTERISTICS (VCC = 0V, V BAT= 3.0V; T A 0°C to +70°C, T = A40°C to +85°C.) (Notes 1, 2) PARAMETER
in „Probleme mit DS1307 und dessen Zeitausgabe“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LC-R123R4PG.pdf
40°C40°C 30°C30°C 25°C25°C C t 40 deptde25°C (77°F) hdepth 50% deptdepth 30% Cii0at 240 c60 25°C (77°F) an 6c (104(104°F)(86°(86°F) (77°((41°F) 20p 20 DiscAmbiAmbi nt t mperature Discharge pt20p 20 C40 0 dept25°C4007°F)depth 50%0800 depth 30%21,200 Cr 40 0 2 4 60°C 8 1030°12 14 165°C18 20 Number
in „Autoradio mit externem Netzteil +Pufferakku sowie ladegerät für Akku.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TSC2003.pdf
CHANGE IN GAIN vs TEMPERATURE 100 4.0 90 ) 3.0 80 B ) High-Speed Mode = 3.4MHz L 2.0 A 70 ( t 5 1.0 n 60 2 r 50 + 0.0 C Fast Mode = 400kHz o l 40 f p l –1.0 u 30 D S i –2.0 20 a Standard Mode = 100kHz G –3.0 10 0 –4.0 –40 –20 0 20 40 60 80 100 –40 –20 0 20 40 60 80 100 Temperature (°C) Temperature (°C)
in „Hilfe mit Touchscreen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TJA1055_4.pdf
low power modes at VTXD = VCC Tamb = −40 °C to +85 °C 0 0 5 A Tamb = +85 °C to +125 °C 0 0 25 A V BAT battery supply voltage no time limit −0.3 - +40 V operating mode 5.0 - 40 V load dump - - 58 V I battery supply current sleep mode at - 25 40 A BAT VRTL = VWAKE = VINH= V BAT = 14 V Tamb = −40 °C to +125 °C low power mode at VRTL = VWAKE = VINH= V BAT Tamb = −40 °C to +125 °C VBAT = 5 V to 8 V 10 - 100 A VBAT = 8 V to 40 V 10 - 75 A normal operating mode at - 150 220 A VRTL = VWAKE = VINH= V BAT= 5 V to 40 V V pof(BAT) power-on flag voltage on low
in „TJA1055T VBAT und VCC - CAN Bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS3231_M_MZ_Mems.pdf
Current Consumption BAT (VCC = 0V, BAT= +2.3V to +5.5V,AT = -45NC to +85NC, unless otherwise noted. Typical valCCs= 0V, VBAT= +3.0V, and TA= +25NC, unless otherwise noted.) PARAMETER SYMBOL CONDITIONS MIN TYP MAX UNITS Active
in „(empfindlicher) GPS Modul gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CSR1010_Data_Sheet_CS-231985-DS.pdf
has no internal pull-up or pull-down, Input to wake CSR1010 QFN from WAKE 4 use external pull- VDD_BAT hibernate or dormant. down. Production Information Page 12 of 48 © Cambridge Silicon Radio Limited 2012 - 2015 CS-231985-DSP6 www.csr.com Power Supplies and Lead Description Control VDD_BAT 1 Battery
in „I²C Daten über Bluetooth übertragen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bom-v1-0.pdf
€ 0,08 € D12 1TS 4148-0805, Diode, 75V, 0.15A TS 4148-0805 0,03 € 0,03 € D20, D21, D62, D63, D64 5BAT54C, Dual schottky, 30V, 0.2A, common cathode BAT 54C NXP 0,04 € 0,20 € D22 1TS 431 BCX, 2.45V 0.5% regulator TS 431 BCX 0,25 € 0,25 € D23, D24, D90, D91, D92, D93 6BAS32, Schottky 100V 0.2A BAS 32 SMD
in „Universalplatine für STM32, grobe Fehler vor der Herstellung?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Futro_S700_fuer_Freifunk_nutzen.pdf
' option netmask '255.255.192.0' option proto 'gluon_mesh' option proto 'static' config interface 'bat0' config route6 'local_node_route6' option multicast_router '2' option target 'XXXX:b4dc:4b1e::/64' option ifname 'bat0' option gateway '::' option macaddr 'XX:XX:XX:XX:XX:XX' option interface 'client
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ec0e6f47-c1bb-4675-a7a3-18d434f2b127.pdf
er service centres structions for only. charging and never charge the Special safety battery or the bat- directions for bat- tery-powered tool tery-operated tools outside the temper- ature range stated • Ensure that the in the operating in- device is switched 41 GB MT off before inserting • Allow a hot
in „Makita 18V Akku Kapazitätsmessung“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
Tadiran-Lithiumbatterien.pdf
von 3,67 V und eine in der Anwendungsberatung, der umfassenden technischen Betriebsspannung von 3,60 V. Mit diesen Werten liegt sie wesentlich höher als alle anderen handelsüblichen Primärbat- Unterstützung und der Logistik zu sein. Die Firma ist der terien. World-Class-Philosophie verpflichtet. Das
in „Astabiler Multivibrator mit TLC555 (LMC555)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MXB7846.pdf
is 650µW. ♦ Automatic Shutdown Between Conversions Low-power operation makes the MXB7846 ideal for bat- ♦ Low Power (External Reference) tery-operated systems, such as personal digital assis- tants with resistive touch screens and other portable 270µA at 125ksps equipment. The MXB7846 is available in
in „OLED Sammelbestellung“ · Markt ·
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Datei
DevConfigSMLPE.txt
getAcEhSf(); int getAcMode(); int getAcPAddr(); int getAcPFc(); int getAcPNum(); int getAcPSf(); int getBatPAddr(); int getBatPFc(); int getBatPNum(); int getBatPSf(); int getBatSocAddr(); int getBatSocFc(); int getBatSocNum(); int getBatSocSf(); int getBatteryEn(); int getBaudBd(); int getBuyPAddr(); int
in „Wechselrichter Hoymiles HM-xxxx 2,4 GhZ Nordic Protokoll?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Maiskolben_TFT.ino
conversion return round(((float) adc) * adc_gain + adc_offset); } void measureVoltage(void) { analogRead(BAT_C1); //Switch analog MUX before measuring v_c1 = v_c1*.9+(analogRead(BAT_C1)*5/1024.0)*.1; //no divisor analogRead(BAT_C2); v_c2 = v_c2*.9+(analogRead(BAT_C2)*5/512.0)*.1; //divisor 1:1 -> /2 analogRead
in „Maiskolben Lötstation Display steht Kopf“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Maiskolben_TFT.ino
conversion return round(((float) adc) * adc_gain + adc_offset); } void measureVoltage(void) { analogRead(BAT_C1); //Switch analog MUX before measuring v_c1 = v_c1*.9+(analogRead(BAT_C1)*5/1024.0)*.1; //no divisor analogRead(BAT_C2); v_c2 = v_c2*.9+(analogRead(BAT_C2)*5/512.0)*.1; //divisor 1:1 -> /2 analogRead
in „Probleme bei kompilieren des Maiskolben-Sketch's“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Labornetzteil.pdf
Bestückung der Mustergeräte wurden anstelle der 4 angegebenen 4700µF Kondensatoren 2 Kondensatoren BAT43 2 BAT43 0,04 € 0,08 € 10000µF/63V von Conrad Electronic (Bestellnr. SB560 6 SB 560 0,28 € 1,68 € 446237-94) für 6 € das Stück liegend eingebaut. Diese BY 550-100 8 BY 550-100 0,10 € 0,80 € Kondensatoren
in „Labornetzgerät als Projekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SCH_ESP32-Ethernet-Kit_A_V1.2_20200528.pdf
TP20 GPIO17 TP21 D4 GND EN_KEY 1 VDD33 3 R67 0R(5%) EN EN_AUTO 2 GPIO0 R69 20K(5%) ON OFF BOOT MODE: BAT54A GPIO2 R70 10K(5%)(NC) SW2 J7 D5 MTMS R60 0R(5%) MTMS_1 5 5 4 4 GPIO14 1 1 2 2 MTDO R63 0R(5%) MTDO_1 6 3 GPIO15 IO0_KEY 1 GND MTDI R61 0R(5%) MTDI_1 7 6 3 2 GPIO12 3 R71 0R(5%) GPIO0 MTCK R62 0R(
in „Arduino Library für Netzwerkchip W5500?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XIAO_ESP32S3_Plus_V1.0_241025.pdf
SPI1 A I I I B A S S S U B O O O C I I I D P P P A S S S X1 40MHz GND 4 2 GND Imax=600mA GND@1 GND BAT0 3 1 U4 Q1 U3 X2 X1 U SGM40567-4.2XG/TR V SGM6029CYG/TR V PMOS_1.00.60.35MM GND A2 A1 VBAT VBAT 1 3 B1 B2 L4 470nH VCC_3V3 VCC_3V3 VIN BAT VIN SW A2 C7 10pF C8 10pF F C1 B2 CHG0 RED R11 10K VBUS F F
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PDF
tsc2003.pdf
TEMPERATURE CHANGE IN GAIN vs TEMPERATURE 100 4.0 90 3.0 80 ) ) High-Speed Mode = 3.4MHz S A 70 ( 2.0 ( ˚ n 60 5 1.0 r + u 50 m 0.0 y 40 Fast Mode = 400kHz f p a –1.0 u 30 e S D –2.0 20 i Standard Mode = 100kHz G 10 –3.0 0 –4.0 –40 –20 0 20 40 60 80 100 –40 –20 0 20 40 60 80 100 Temperature (°C) Temperature (
in „Touchscreen Controller“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
config.h
voltage is * below 0.9V (caused by the diode's leakage current). * - uncomment to enable */ //#define BAT_EXT_UNMONITORED /* * Voltage divider for battery monitoring * - BAT_R1: top resistor in Ohms * - BAT_R2: bottom resistor in Ohms */ #define BAT_R1 10000 #define BAT_R2 3300 /* * Voltage drop by reverse
in „ComponentTester-1.42m problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32_F4VE_SCHEMATIC.PDF
104PIC120 PIC1302 PIC1402 PIC150PIC180202 PIC1702 COC 2 PIQ10P2IB10PIB102 GND PIJ204747 48 PIJ2048 01104 BAT54C Header 24X2 BAT 用户按键 GND 3V3 J3J3 3V3 GND 实时时钟备用电池 PIJ301 1 2 PIJ302 COR2 PIJ303 3 4 PIJ304 COR33 BOOT0 PIR2301PIR230P2I5305 6 PIJ30P6IR33PIR3302OOT1 510R PIJ307 7 8 PIJ308 510R GND PIJ309 9 10 PIJ3010
in „Neues Entwicklungsboard STM32F407“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32_F4VE_SCHEMATIC.PDF
104PIC120 PIC1302 PIC1402 PIC150PIC180202 PIC1702 COC 2 PIQ10P2IB10PIB102 GND PIJ204747 48 PIJ2048 01104 BAT54C Header 24X2 BAT 用户按键 GND 3V3 J3J3 3V3 GND 实时时钟备用电池 PIJ301 1 2 PIJ302 COR2 PIJ303 3 4 PIJ304 COR33 BOOT0 PIR2301PIR230P2I5305 6 PIJ30P6IR33PIR3302OOT1 510R PIJ307 7 8 PIJ308 510R GND PIJ309 9 10 PIJ3010
in „STM32F407 Black und Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
media32.pdf
Date: 18.04.2009 Sheet of File: C:\Altium\media32\media32.SchDoc Drawn By: 1 2 3 4 1 2 3 4 COUA2 V_BAT COUA3 V_USB 4 UA2 BQ24070 15 2 UA3 3 A 2 PIUA2IN OUT PI162015 P I U AIN 0 2 OUTP I U A 3 0 3 VCC A COCT6 PIUA2VREF OUT PIUA2017 1 22 02 110µ I0 COCT4 CK1212 4 GNDP I U A GND 8 COCT5 TSMD_B BAT PIUA205 2 JS1S1 11TSMD_BGND PICK1201 PICKSSP02IUA3GNDP I U A GND 7 1TSMD_B GND BAT PI12206 0CT8T8 PIJS1*2tpads GND 100n 1 GNDP 5 U A GND 6 GND TS PIUA2012 01µ 0805PIUA301EN GNDPIUA305 GND NLnPG 18 13 1TSMD_B I3 ADP1716 POSTAT1 G NLSTAT PIUA2STAT1 ISET1PIUA2010 PIPIRK902 GND 3 POSTAT2
in „MP3 Player mit Clickwheel und S65“ · Mikrocontroller und Digitale Elektronik ·
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Datei
config.h
voltage is * below 0.9V (caused by the diode's leakage current). * - uncomment to enable */ //#define BAT_EXT_UNMONITORED /* * Voltage divider for battery monitoring * - BAT_R1: top resistor in Ohms * - BAT_R2: bottom resistor in Ohms * - standard values are: R1=10k, R2=3.3k */ #define BAT_R1 10000 #define
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Datei
config.h
voltage is * below 0.9V (caused by the diode's leakage current). * - uncomment to enable */ //#define BAT_EXT_UNMONITORED /* * Voltage divider for battery monitoring * - BAT_R1: top resistor in Ohms * - BAT_R2: bottom resistor in Ohms * - standard values are: R1=10k, R2=3.3k */ #define BAT_R1 10000 #define
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PDF
ISl6298.pdf
80kΩ, VBAT = 2.0V 45 55 64 mA Constant Charge Current I V > 1.2V, V = 3.7V - 255 - mA CHARGE IREF BAT Trickle Charge Current I V > 1.2V, V = 2.0V - 52 - mA TRICKLE IREF BAT Constant Charge Current I V < 0.4V, V = 3.7V, T = 25°C 75 100 125 mA CHARGE IREF BAT A Constant Charge Current ICHARGE V IREF < 0.4V, BAT = 3.7V, 0°C ~ 50°C 70 100 130 mA Trickle Charge Current ITRICKLE V IREF < 0.4V, BAT = 2.0V - 23 - mA End-of-Charge Threshold IEOC R IMIN= 80kΩ 14 25 36 mA RECHARGE THRESHOLD Recharge Voltage Threshold
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PDF
MCP2021.pdf
(due to the fast charge of BA=0.1 1 the C REG and C BAT capacitors) may induce a 0.1 1 significant drop on the VBB pin. This drop is VBALine Inductance [mH] proportional to the impedance of the BAT connection (see Figure 1-9). Assume that the V BAT connection
in „MCP2021 -> Welcher ESD Level wird erreicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TransceiverIC.pdf
[NSEL] OA 7 AVDD 26 14 XTO SE6100 [SEL] AGND 30 LDet. Bias DCDC x 2 16 PON PN NREF XTO Low REF PD Bat REF 9 VCO 15 CSEL MDO 8 22 23 21 20 24 17 18 19 GAIN VCO VCO VCO2 VCO1 PD XTAL DGND DVDD GND VDD [***] different Pin functions in case of stand alone application DIE A N I F F K L I G M P L I I 2 E
in „Transceiver IC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Labornetzteil.pdf
Bestückung der Mustergeräte wurden anstelle der 4 angegebenen 4700µF Kondensatoren 2 Kondensatoren BAT43 2 BAT43 0,04 € 0,08 € 10000µF/63V von Conrad Electronic (Bestellnr. SB560 6 SB 560 0,28 € 1,68 € 446237-94) für 6 € das Stück liegend eingebaut. Diese BY 550-100 8 BY 550-100 0,10 € 0,80 € Kondensatoren
in „Präzisions Labornetzteil 2x30V 3A, Eigenbau“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
souce_code_esrM.txt
1, the pass mark. command, or further rjmp bat_check3; On bat_check3 inc z1; increase z1 1 rjmp bat_check4; On bat_check4 bat_check3: inc z2; increase z2 1 bat_check4: cpi temp, 0, temp comparison with 0 brne bat_check2; If temp <> 0, then bat_check2
in „Lcd zweite zeile wird nicht angesprochen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
esr_messgeraet.asm
1, the pass mark. command, or further rjmp bat_check3; On bat_check3 inc z1; increase z1 1 rjmp bat_check4; On bat_check4 bat_check3: inc z2; increase z2 1 bat_check4: cpi temp, 0, temp comparison with 0 brne bat_check2; If temp <> 0, then bat_check2
in „Lcd zweite zeile wird nicht angesprochen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
nightsky_arx15.pdf
300K_1%_04 V_BAT S D BAT_VOLT 50 C PR102 G PR113 PC73 100K_04 60.4K_1%_04 0.1u_25V_X5R_04 PD1 *RB0540S2 A D D D G PQ6 VDD3 2SK3018S3 S PQ1 PQ3 VA *MDU1512 *MDU1721 A A VDD3 D S S D VA1 PD3 PD2 ULTRASO-8 ULTRASO-8 MDL914S2
in „SMD TGAJ TVS Diode USB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TMC4671-EVAL_Schematic.pdf
Analog inputs A & B with filters Analog encoder input + filters +5V D500 P500 P0 +5V AENC_WY R502 BAT54S CD5 1 PP50AENC_V N PI02 PR0 P PD3 PAENC_WY_LP Y04[2B] P502 PD D504 2 PP50NLANC0 X 100R C503 NLG 0 R505 BAT54S 3 PP503ENC_U P 100pF/50V/5%P0 1 PI521GPI_PR5 PIP5 PI PI03 P OAGPI_A_LP02[1C] 4 PP504
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Datei
Bin_r-Uhr_Discolights.c
<< 4) | 15, (0b1111 << 4) | 1, (0b0000 << 4) | 4, 0}; // 60 Cycles const uint8_t scene6[] PROGMEM = { (0b1110 << 4) | 15, (0b0111 << 4) | 15, (0b1011 << 4) | 15, (0b1101 << 4) | 15, 0}; // 24 Cycles const uint8_t scene7[] PROGMEM = { (0b1000 << 4) | 6, (0b0010
in „ATtiny26, Timer0 und Timer1 kommen sich in die Quere“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan eines PV-Laderegulators und Kennlinie
PV-Generator 12-60V, + PV, - PV, L1 7 µH, D1, D2, C1 1000µF/63V, T2, Q45N10N, R1 0.1 Ω, C2 470µF/100V, C3 470µF/100V, + (Bat), - (Bat), R2 0.1 Ω, Q45N10N, C4, Masse der Steuerelektronik, Kurzschlussstrom Ik, I=f(U), MPP
in „Funktion MPP Lademodul“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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PDF
LPC1769_IMU_v3.pdf
PWM1.5/MOSI0 P0.16/RXD1/SSEL0/SSEL 63 +3V3 84 VDDREG3.3V 40 P1.25/MC1A/MAT1.1 P0.17/CTS1/MISO0/MISO 60 43 P1.26/MC1B/PWM1.6/CAP0.0 P0.18/DCD1/MOSI0/MOSI1 59 1 V F 1 44 P1.27/CLKOUT/USB_OVRCR/CAP0.1 P0.19/DSR1/MCICLK/SDA1 58 / + 1 0 2 4 T 45 P1.28/MC2A/PCAP1.0/MAT0.0 P0.20/DTR1/SCL1 57 1 C 1 96 U 21 P1.29
in „Schaltplan Prüfung/Kritik LPC1769 + IMU + Bluetooth“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTC6802-1.pdf
°C B Y 20 P 0.70 P 2.45 D TA= 25°C U C N S T10 0.65 2.40 S 0 0.60 2.3–40 –20 0 20 40 60 80 100 120 0 10 20 30 40 50 60 0 10 20 30 40 50 60 TEMPERATURE (°C) SUPPLY VOLTAGE (V) SUPPLY VOLTAGE (V) 68021 G04 68021 G01 68021 G02 Internal Die Temperature External Temperature
in „SPI: kein SCK bei Receive - Warum?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX712-MAX713.pdf
T H R 0.6 10 Y D 4.4 E 0.4 5 T 4.2 B 0.1 4.0 0.2 0 1.95 1.97 1.99 2.01 2.03 2.05 0 10 20 30 40 50 60 0 10 20 30 40 50 60 CURRENT INTO V+ PIN (mA) VOLTAGE ON CC PIN (V) BATTERY TEMPERATURE(°C) Maxim Integrated 3 MAX712/MAX713 NiCd/NiMH Battery Fast-Charge Controllers Typical Operating Characteristics
in „Kleine Nimh ladeschaltung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
easymx4_traegerboard_parts.txt
C0805K rcl 1 77-VJ0805A221JXAPBC CN1 500mA USB_TYPEAPTHFML USB_HOST-PTH microbuilder 1 571-292303-5 D1 BAT43 DIODESOD-123 SOD-123 microbuilder 1 78-BAT43W-V D2 BAT43 DIODESOD-123 SOD-123 microbuilder 1 78-BAT43W-V D3 1N4007-MELF 1N4007-MELF DMELF diodes_1 1 625-BYG21M-E3 D4 1N4007-MELF 1N4007-MELF DMELF
in „Schaltungsentwurf benötige Meinungen und Verbesserungsvorschläge.“ · Platinen ·
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Bild
Schaltplan und Simulationsdiagramm einer LED-Schaltung
R1 2.2k D1 L128-PCO1003500000 Q1 2SCR293P5 Q2 BC847B R2 6.8 M1 IRLML6244 PWM V2 100 R3 BAT V1 PWL(0 3V 40ms 4.2V) .tran 40ms I(D1) 100mA 90mA 80mA 70mA 60mA 50mA 40mA 30mA 20mA 10mA 0mA -10mA V(BAT) 3.0V 3.1V 3.2V 3.3V 3.4V 3.5V 3.6V 3.7V 3.8V 3.9V 4.0V 4.1V 4.2V
in „ATtiny85, energiesparende Schaltung mit PIR und LED FadeIn/FadeOut (Newbie)“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Bild
Schaltplan und Simulationsergebnis einer LED-Ansteuerung
I(D1) 100mA 90mA 80mA 70mA 60mA 50mA 40mA 30mA 20mA 10mA 0mA -10mA 3.0V 3.1V 3.2V 3.3V 3.4V 3.5V 3.6V 3.7V 3.8V 3.9V 4.0V 4.1V 4.2V V(BAT) D1 L128-PCO1003500000 BAT V1 + PWM R1 1.5k Q2 2SCR293P5 Q1 BC847B R2 6.8 V2 (MCU) PULSE(0
in „ATtiny85, energiesparende Schaltung mit PIR und LED FadeIn/FadeOut (Newbie)“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Datei
Transistortester.h
LANG_GERMAN) //deutsch const unsigned char TestRunning[] MEM_TEXT = "Testen..."; // "; const unsigned char BatWeak[] MEM_TEXT = "gering"; const unsigned char BatEmpty[] MEM_TEXT = "leer!"; // "; const unsigned char TestFailed2[] MEM_TEXT = "defektes "; // "; const unsigned char Bauteil[] MEM_TEXT = "Bauteil"
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PDF
LTC4414_Power_Manegement.pdf
to the V pin. IN 2 CTL STAT 1 WHEN BAT1 IS SUPPLYING LOAD CURRENT * WHEN BOTH STATUS LINES ARE BATTERY TO LOAD OR HIGH, THEN BOTH BATTERIES ARE CHARGER PowerPath * SUPPLYING LOAD CURRENTS. WHEN INPUT BAT1 CONTROLLER BOTH STATUS LINES ARE LOW, THEN 7 LTC4414 6 V WALL ADAPTER IS PRESENT VIN SENSE CC BAT2 3 GND GATE 8 470k 7 LTC4414 6 VCC 2 1 STATUS IS HIGH VIN SENSE CTL STAT WHEN BAT1 IS 3 GND GATE 8 47k STATUS IS HIGH 0.1µF CHARGING 2 1 WHEN BAT2 IS * TO LOAD OR CTL STAT 4414 F0SUPPLYING PowerPath
in „P-Mosfet als Schalter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SCHALTUNG_SPEKI_V3.pdf
Filter Gleichrichtung +9V 100nF k k k 2nF 33µ 10mV 2 1 2 0 0,1MHz 0 0 1 3 0 0 BC 546 1 BC 546 4 BC 546 BAT48 5 1HC18 18 10 1HC18 18 10 1 1 BF961 100nF BC 546 100nF BC 546 100nF BC 546 BAT48 100nF 20mV 2,1MHz 156mV 2V MP1 18 18 168mV 5V 476mV 2,5V 0,5V 2MHz 2MHz (min 2,5mV) 2mV 100nF Dyn: 60dB 1 M M k 3 3
in „Spektrumanalyser Frequenzspektrometer Eigenbau bis 1MHz“ · Analoge Elektronik und Schaltungstechnik ·