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PDF
RN-Mega_Board.pdf
Pin 18 PH6 / OC2B Pin 19 PB0 / SS / PCINT0 (SPI-Bus) Pin 20 PB1 / SCK / PCINT1 (SPI-Bus und ISP) Pin 21 PB2 / MOSI / PCINT2 (SPI-Bus und ISP) Pin 22 PB3 / MISO /PCINT3 (SPI-Bus und ISP) Pin 23 PB4 / OC2A / PCINT4 Pin 24 PB5 / OC1A / PCINT5 Pin 25 PB6 / OC1B / PCINT6 Pin 26 PB7 / OC0A / OC1C / PCINT7 Pin
in „ATmega2560 spinnt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632c.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „HT1632C mit welchen Bus ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LED_treiber_ht1632cv120.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „HT1632C mit welchen Bus ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „HT1632C mit SPI steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „LED Matrix Schaltung gesucht sowie Bsp Programm“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv130.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „8x8 RGB Matrix Ansteuerungsproblem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ht1632cv120.pdf
13H 12H ROW10 15H 14H ROW11 17H 16H ROW12 19H 18H ROW13 1BH 1AH ROW14 1DH 1CH ROW15 1FH 1EH ROW16 21H 20H ROW17 23H 22H ROW18 25H 24H ROW19 27H 26H ROW20 29H 28H ROW21 2BH 2AH ROW22 2DH 2CH ROW23 2FH 2EH ROW24 31H 30H ROW25 33H 32H ROW26 35H 34H ROW27 37H 36H ROW28 39H 38H ROW29 3BH 3AH ROW30 3DH 3CH
in „C-Code -> Verständnis problem..“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an-937_gateDrive.pdf
.20 11. Resonant Gate Drive Techniques..............................................................21 AN-937 (v.Int) Gate Drive Characteristics and Requirements for ® HEXFET s Topics covered: Gate drive vs base drive Enhancement vs Depletion N vs P-Channel Max gate voltage Zener diodes on gate? The most
in „Gatekapazität (FET)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
opto.pdf
Sensor Systems t g ■ Industrial Controls e P o o r Schematic Package Outlines n s s o O ANODE p 1 6 BASE o c u CATHODE COLLECTOR p 2 5 r s N/C 3 4 EMITTER Figure 2. Package Outlines Figure 1. Schematic ©2007 Fairchild Semiconductor Corporation www.fairchildsemi.com 4N38M, H11D1M, H11D3M, MOC8204M Rev.
in „Optokoppler - Relais“ · Mikrocontroller und Digitale Elektronik ·
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Datei
log.txt
Starting scheduler on PRO CPU. I (0) cpu_start: Starting scheduler on APP CPU. I (474) system_api: Base MAC address is not set I (484) system_api: read default base MAC address from EFUSE I (484) WIFI_STA MAC: 0x8c, 0xaa, 0xb5, 0x8b, 0x25, 0x50 I (494) main: Starting program I (534) main: Done nvs_flash_init
in „ESP32 resettet“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AV02-1132EN_DS_HEDS-9x40_2014-03-17__3_.pdf
N D SQR.TYP. (0.158±0.008) 1.8 V 5 4 3 2 1 G OPTIONCODE 1.0(0.04) (0.07) 5.1(0.20) 2.9 DATECODE 2.21 (0.11) 3.73±0.05 (0.087) 2.54 (0.147±0.002) 16.76±0.20 (0.100) 10X9-SDEH (0.66±0.008) 1.02±0.10 0 X 11.7 (0.040±0.004) (0.46) 8.81 4.75±0.10 45° 5.8 (0.347) 2.67(0.105)DIA. OPTICAL (0.187±0.004) (0.23
in „Incremental Encoder läuft nicht an 2 µC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
OpAmp_MC3407x_KapazitiveLast.pdf
COLLECTOR, #2 3. DRAIN, #2 3. ANODE 4. EMITTER 4. COLLECTOR, #2 4. DRAIN, #2 4. ANODE 5. EMITTER 5. BASE, #2 5. GATE, #2 5. ANODE 6. BASE 6. EMITTER, #2 6. SOURCE, #2 6. ANODE 7. BASE 7. BASE, #1 7. GATE, #1 7. ANODE 8. EMITTER 8. EMITTER, #1 8. SOURCE, #1 8. COMMON CATHODE STYLE 5: STYLE 6: STYLE 7: STYLE
in „Push/Pull in spannungsgeregelter Stromquelle / Frage zur Auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Sartorius_Waage_Manual_Anleitung_Handbuch_QC7DCE-S.pdf
the scale on its side to disassemble and mount the display unit. Unfasten the Allen screws on the base plate and remove the base plate. Remove the fastening screws. 1–16 Remove the screws on the retainer plate. Then set the scale back upright. Remove the screws on the base (7). Lay the support arm along with the base and the display unit on a table. Remove the plugs from the long side of the scale (insert them in the holes on the short side). Loosely attach the display unit with the support arm and base to the long
in „Frage zu einer Waage / Sartorius QC7DCE-S“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
lm5642.pdf
10 PF C 1 1 PF C4 100 pF 10 m: RSNS1 28 R 50V 6 2.8Arms 6 26 100: Q1 UV_DELAY HDRV1 Si4850EY D 3A BAS40-06 C34 100 nF CBOOT1 25 V C 7 DD L1 Vo1 = 1.8V, 7A 27 100 nF SYNC 5 SW1 SYNC 4.2 PH▯▯ C 9 R28 Q 2 7 m:▯ R 10 + 330 PF 9 LDRV1 23 2.26 220 k: ON/SS1 R11 6.3V C 21 Si4840DY k: 10 m:▯ S1 11 10 nF PGND
in „Komisches Verhalten von LM5642MTCX“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AVR_Z180_CP_M.pdf
28 12 DQ5 20 PA0 1D 1Q PHI A13 A0 DQ6 B D0 19 PC0 PA1 36 A1 A1 3 2D 2Q 18 A9 64 E A12 27 11 A1 DQ7 21 B D1 20 PC1 PA2 35 A2 A2 4 3D 3Q 17 A10 A11 26 10 A2 D2 21 34 A3 A3 5 16 A11 3 25 9 D3 22 PC2 PA3 33 A4 A4 6 4D 4Q 15 A12 4 XTAL A10 24 8 A3 D4 23 PC3 PA4 32 A5 A5 7 5D 5Q 14 A13 EXTAL A9 23 7 A4 D5
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ELV_Hochleistungs-Netzteilplatine.pdf
Endstufe 0,1A D2 D4 C2 C4 C9 C10 1 T2 R20 1000u 47n 100n 10u 1,2 ST4 SI2 16V 2 7905 3 ker 16V -5V 2 R21 IC3 1 1,2 630mA ST12 I R22 T R8 T 1,2 ST13 470 R23 1,2 ST5 T3 R24 1,2 R25 C12 C14 4 1,2 1 T R26 GL1 P1 kern kern R9 1,2 470 R27 1,2 T4 R28 16V C20 1,2 13,5A R29 P2 7 1 a 4 1,2 22mF R 1 I R30 KBU66 C13
in „ELV Hochleistungsnetzteilplatine“ · Mikrocontroller und Digitale Elektronik ·
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PDF
37838_Netzteil_NT30V_10A_KM_um_1_.pdf
KBPC3504 8 7 2 R33 1 1,2 C16 C18 RE1 C22 T R34 6 R11 1,2 470 R35 100n 100n 10u 1,2 GL2 P3 ker ker C21 63V T6 R36 1,2 R37 16V 22mF 4 1,2 13,5A 25V P R38 P4 R12 T 1,2 470 R39 KBPC3504 C17 C19 1,2 T7 R40 1,2 100n 100n 2 R41 ST8 ker ker 1 1,2 I 1 1 1 1 1 R42 D9-D12=KBPC3504 R13 T R R R R R 1,2 470 4 R43
in „Frage zu ELV Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
usb_vcp.c
uint32_t *)(USB_BASE + 0x04)) #define USB_EP2R (*(volatile uint32_t *)(USB_BASE + 0x08)) #define USB_EP3R (*(volatile uint32_t *)(USB_BASE + 0x0C)) #define USB_EP4R (*(volatile uint32_t *)(USB_BASE + 0x10)) #define USB_EP5R
in „STM32 USB Übertragungsproblem mit Code von S.F.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usb_vcp.c
uint32_t *)(USB_BASE + 0x04)) #define USB_EP2R (*(volatile uint32_t *)(USB_BASE + 0x08)) #define USB_EP3R (*(volatile uint32_t *)(USB_BASE + 0x0C)) #define USB_EP4R (*(volatile uint32_t *)(USB_BASE + 0x10)) #define USB_EP5R
in „STM32 USB Übertragungsproblem mit Code von S.F.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
s29ws-n_00_h0_e.pdf
6SDQVLRQ )ODVK PHPRU\ VRIWZDUH GHYHORSPHQW JXLGHOLQHV /* Example: Program Command */ *( (UINT16 *)base_addr + 0x555 ) = 0x00AA; /* write unlock cycle 1 */ *( (UINT16 *)base_addr + 0x2AA ) = 0x0055; /* write unlock cycle 2 */ *( (UINT16 *)base_addr + 0x555 ) = 0x00A0; /* write program setup command */
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Dot-Matrix-Driver_max6952eax.pdf
O13 O14 DIGIT 2 DIGIT 3 CLK O15 C1 O19 C1 DIN O16 O15 C2 O20 C2 CS O17 O16 C3 O21 C4 DOUT O18 O18 C5 O23 C5 BLINK O19 OSC O20 O7 R1 O7 R1 O21 O8 R2 ISET O22 O8 R2 O23 O9 R3 O9 R3 C O10 R4 O10 R4 SET RSET R5 26pF 53.6kΩ O11 R5 O11 O12 R6 O12 R6 O13 R7 O13 R7 _______________________
in „PIC: max6952 ansteuerung über SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
en.CD00000444.pdf
Output voltage IO= 5 mA to 1 A, VI= 8.6 to 19 V 5.76 6 6.24 V VO Output voltage IO= 1 A, VI= 19 to 21 V,JT = 25°C 5.76 6 6.24 V VI= 8.6 to 25 V,OI = 500 mA, J = 25°C 9 60 mV VI= 9 to 13 V 11 60 mV ΔV O(1) Line regulation VI= 9 to 13 V, J = 25°C 3 30 mV VI= 8.3 to 21 V,JT = 25°C 9 60 mV IO = 5 mA to 1
in „LM7805A zu hohe Ausgangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
amstrad_srx100_srx200_sat_receiver_sch.pdf
ik 0 1 . M K R121 5.5 A PAL BASE BAND D153 470 N Ai.c C 0 I D102 1k 0.6 SW B MAC BASE BAND B LN21RPH R165 A A o m GMA01 R134 Q101 0.1 47k R V .pRR GND DATA CLK EN VCC R138 0 C EXT VIDEO IN SW 0.7 5 11 FUNCTION TUNING UP I 50 16 l 15
in „10,52 MHz Keramik Piezo Filter Resonator ZF IF“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an90f.pdf
LASER PROTECTION AT SEE FIGURE 6IN. * = 1% METAL FILM RESISTOR = 1N4148, UNLESS NOTED = LASER AN90 F21 Figure 21. Circuit Has Laser Anode Committed to Supply, Inherent Self-Enabled Operation. LT1635 Functions at 1.2V, Although Self-Enable Feature Holds Off Output Until Power Supply Exceeds 2V. Current
in „Mosfet Laser Treiber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DIDS_LEC_01.pdf
University of Wuppertal Communication Theory Department Campus Freudenberg Rainer Gruenter Straße, 21 e-mail: ivaniuk@uni-wuppertal.de phone : +49 (202) 439-1832 Scientific Activities: Random Access Memory Reliability Techniques: - On-line and Off-line concurrent checking; - Transparent diagnostic algorithms
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Datei
icache.vhd
MemorySize / BytesPerBlock / 2); constant DataWidth : integer := 32; constant TagWidth : integer := 21; constant extMemBaseAddr : unsigned(31 downto 0) := x"02000000"; signal extMemAddr : std_logic_vector(31 downto 0):= (others => '0'); signal bufferCOunt : integer range 0 to 15 := 0; shared variable
in „warum Registers Added for RAM Pass-Through Logic wenn kein gleichzeitiger Zugriff?“ · FPGA, VHDL & Co. ·
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PDF
DS1000Z_Firmware_Release_Notes.pdf
waveformis error when recovery M the source setting to the factory settings and opensource output. 21. The signal wave does not move when adjust the time base M from the maximum value to the minimum value under the wait state. 22. The SPI data set will be error when the SPI data widthless M than 8 under
in „Rigol-DS1054Z“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HiSpeed_WideTemp_019.pdf
945+ICH7 3.0GHz DDR:400 Testing Software: HD Bench 3.4 Testing OS: Windows XP The value is various bases on the testing platform. 2.3.5 Data Retention ▯ 10years without requiring power support 2.3.6 Wear-leveling ▯ Dynamic Wear-Leveling for same level of Write/Erase Cycle 2.3.7 Bad Block Management ▯
in „Was ist das für ein Stecker ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM2677_2000.pdf
Ripple Voltage, 20 mV/div AC-Coupled C: Output Ripple Voltage, 20 mV/div AC-Coupled Horizontal Time Base: 1 µs/div Horizontal Time Base: 1 µs//iv Load Transient Response for Continuous Mode Load Transient Response for Discontinuous Mode VIN = 20V, VOUT = 5V V = 20V, V = 5V, L = 10 µH, COUT = 400 µF, COUTESR
in „On-Chip Induktivität“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
90000866_C.pdf
(Fiberglass base station) 12.0 dBi Fixed 2 m N/A A24-F15NF Omni-directional (Fiberglass base station) 15.0 dBi Fixed 2 m N/A A24-W7NF Omni-directional (Base station) 7.2 dBi Fixed 2 m N/A A24-M7NF Omni-directional (
in „XBee pro Funkmodul mit ATMega8515“ · HF, Funk und Felder ·
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PDF
EB_104.pdf
pF Ceramicctrolytic C R8 — 2.0 k C17, C18 — Two 0.1 F, 100 V Ceramic each, (ATC 200/823 or C R R9, R21, R22, R23, R24 — 10 k equivalent) R R10 — 8.2 k D1, D2, D3, D4 — 1N4148 A R15, R16, R17, R18 — 2.7 Ohms B1, B2, B3, B4 — Ferrite Beadsivalent A R19, R20 — 10 Ohms/2.0 W Carbon L1, L2 — Two Fair-Rite
in „Stackpole Ferrit Kerne für RF Verstärker“ · HF, Funk und Felder ·
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PDF
Chyaoshiunn_JS1105x.pdf
JS-1108-19 JS-1105- 19x2 45.72 48.26 JS-1105B- 20x2 JS-1108-20 JS-1105- 20x2 48.26 50.80 JS-1105B- 21x2 JS-1108-21 JS-1105- 21x2 50.80 53.34 JS-1105B- 22x2 JS-1108-22 JS-1105- 22x2 53.34 55.88 JS-1105B- 23x2 JS-1108-23 JS-1105- 23x2 55.88 58.42 JS-1105B- 24x2 JS-1108-24 JS-1105- 24x2 58.42 60.96 JS-1105B
in „Suche Crimp-Stifte wie auf Foto“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ism.asm
: .db $15,$02,$49,$5E,$64,$73,$38,$2F,$D0,$C7,$8C,$9B,$A1,$B6,$FD,$EA bitrate_table: .db 129,64,32,21,15,10 data_rate_table: .db 20,10,5,4,3,2 base_frequency_table: .dw $a578,$a5a0,$a5c8,$a5f0,$a618,$a640,$a668,$a690,$a6b8,$a6e0 serial_settings_table: .db 6,$e,$26,$2e,$36,$3e,4,$24,$34,0 start: out SPL
in „Beispielprogramm für RFM12 433MHz Funk-Module“ · Projekte & Code ·
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PDF
BUK7514-55A.pdf
PARAMETER CONDITIONS TYP. MAX. UNIT R th j-mb Thermal resistance junction to - - 0.9 K/W mounting base R Thermal resistance junction to in free air 60 - K/W th j-a ambient(TO220AB) R th j-a Thermal resistance junction to Minimum footprint, FR4 50 - K/W ambient(SOT404) board July 2000 1 Rev 1.000 Philips
in „Wärmewiderstandsberechnung FET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUK_7514-55.pdf
PARAMETER CONDITIONS TYP. MAX. UNIT R th j-mb Thermal resistance junction to - - 0.9 K/W mounting base R Thermal resistance junction to in free air 60 - K/W th j-a ambient(TO220AB) R th j-a Thermal resistance junction to Minimum footprint, FR4 50 - K/W ambient(SOT404) board July 2000 1 Rev 1.000 Philips
in „Brauche Hilfe bei Motoransteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32F4-BASE.pdf
mit BAT60JFILM Schottky C14 C16 C21 +++ C20 SOD323 1uF 100nF 10nF 1uF 6,3V TACL105M006R B B 5V zu 3,3V U2 LD3985M33R +3V3 1 VIN VOUT 5 D 3 INH N Y G B 2 4 C15 C17 C19 +++ C18 1uF 100nF 10nF 1uF 6,3V C TACL105M006R C D D Spannungsregler
in „STM32F407 (100pin) Basisboard - Review bitte“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32F4-BASE.pdf
mit BAT60JFILM Schottky C14 C16 C21 +++ C20 SOD323 1uF 100nF 10nF 1uF 6,3V TACL105M006R B B 5V zu 3,3V U2 LD3985M33R +3V3 1 VIN VOUT 5 D 3 INH N Y G B 2 4 C15 C17 C19 +++ C18 1uF 100nF 10nF 1uF 6,3V C TACL105M006R C D D Spannungsregler
in „STM32F407 (100pin) Basisboard - Review bitte“ · Mikrocontroller und Digitale Elektronik ·
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Datei
configx.h
\ur_org\stack.c.h" //#include "C:\winAVRkk\avr2015\500 web radig\stack.c" #include "C:\zuc\ur_org\base64.h" #include "C:\zuc\ur_org\base64.c.h" #include <C:\zuc\ur_org\httpd.h> #include "C:\zuc\ur_org\webpage.h" #include <C:\zuc\ur_org\httpd.c.h> #endif #if 0 #if zucAVR==0 #include "C:\zuc\net\wkkstring.h
in „Header Datei für Konfiguration erstellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TPG051_Spec_1_3.pdf
Vcom no load PWM output voltage V 0 - V PWM CC Feed back voltage V 0.55 0.6 0.65 DC/DC operating FB Base drive current I - - 1 V output =3.0V vs. 2.3V(External) PWMD PWM Base sink current I - - 1 VPWM output =0V vs. 0.7V(External) PWMS 表單編號: 版本: 本資料為統寶光電股份有限公司之智慧財產權及機密文件,非經本公司書面授權許可,不得透露或使用本資料,亦不得複印、複製或轉變成其
in „LCD von TerAsic mit Cyclone II von Altera“ · FPGA, VHDL & Co. ·
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PDF
AIC1896.pdf
applications of PWM and larger diode capacitance, which can cause dimming with AIC 1896 are shown in Fig 21. One, significantswitching losses at the 1.4MHz as fig. 21(a), uses PWM signal to drive SHDN switching frequency of AIC1896. A Schottky diode pin directly for dimming control. The other, as fig. rated at 100mA to 200mA is sufficient for most 21(b), employs PWM signal going through a AIC1896 applications. resistor to drive FB pin. If tSHDN pin is used, the increase of duty cycle results in LED LED Current Control brightness enhancement. If the
in „Stepup von 5V auf 12V mit AIC1896“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LeibRamp.pdf
Multiplication 4. Implementation Aryeh Eiderman <leib@eiderman.com> The given parameters are: v 0 base speed, 1. Cinematic basics v - slew speed, a - acceleration, F - timer frequency The linear acceleration (ramping) formulas are: and the calculated parameters are: S = v .t + a t / 2 [1], 0 . S - acceleration
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PDF
sensors-09-04615.pdf
outlined in its housing in Figure 1. The sensor element is a TM silicon diode, mounted on a plastic base, covered with a Teflon diffuser. The whole unit is placed on a base with a level control to ensure horizontality. In order to reduce undesirable effects of ambient temperature on measurement, the device
in „Sonnenscheindauer Sensor selber bauen Eigenbau ATmega Assembler“ · Projekte & Code ·
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Datei
bg30dB_led.bas
-------------------------------------------------------------------------- ' Filename : BG30dB_LED.bas ' Revision : 1.0 ' Controller : AVR AT90S2313-10 ' Author : Ger langezaal ' Compiler : BASCOM-AVR Rev. 1.11.6.2 ' ROM image : 3EE hex (1006 dec) ' '---[ Small program description ]------------------
in „VU-Meter nach Bascom-Beispiel, eine Frage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_Stamp_sheet_V1_1.pdf
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
in „Z180-Stamp Modul“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PH7030L.pdf
continuous drain current as a Fig 2. Normalized total power dissipation as a function of mounting base temperature function of mounting base temperature 3 003aaa385 10 D (A) Limit R = V / I DSon DS D t = 10 μs 102 p 100 s 10 DC 1 ms 10 ms 100 ms 1 -1 10 -1 2 10 1 10 10 V DS(V) Fig 3. Safe operating area
in „Am3 Mainboard Vcore instabil wenn kalt“ · PC Hard- und Software ·
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PDF
msp430f5529.pdf
, MSP430F5515, MSP430F5514, MSP430F5513 SLAS590N –MARCH 2009–REVISED SEPTEMBER 2018 www.ti.com 6.9.21 Peripheral File Map Table 6-15 lists the base address for the registers of each module. Table 6-16 through Table 6-45 list the available registers in each module. Table 6-15. Peripherals OFFSET ADDRESS
in „Tastatur komplett selbst erstellen“ · PC Hard- und Software ·
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Datei
mg.asm
23, 24, 23, 20, 17, 13, 10 .db 7, 6, 6, 8, 10, 13, 16, 18, 20, 20, 20, 19, 18, 18, 18, 18 .db 19, 21, 24, 26, 27, 28, 27, 25, 22, 17, 11, 5, 0, -5, -9, -12 .db -13, -13, -11, -9, -5, -1, 1, 4, 6, 6, 4, 0, -5, -12, -21, -30 .db -39, -48, -56, -62, -66, -69, -70, -71, -70, -70, -70, -71, -72, -75, -77, -79 .db -80, -78, -75, -69, -61, -50, -38, -26, -13, -2, 7, 15, 21, 25, 28, 30 .db 33, 36, 40, 44, 49, 55, 59, 61, 62, 60, 56, 49, 42, 34, 27, 22 .db 20, 21, 25, 33, 42, 52, 63, 72, 80, 86, 89, 90, 89, 87, 84, 81 .db 79, 77, 75, 73, 72, 69, 66, 61, 55, 48, 39, 31, 22
in „Sequencer Prinzip ELM - Wavetable Melody Generator (ASM)“ · Mikrocontroller und Digitale Elektronik ·
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2599932.pdf
3.51 22-19 .024-.036 .016 .138 0.38-0.60 0.61-0.91 600-1300 0.41 3.51 Brass 045 1601571-1 L045C16B 21-18 12 .028-.039 800-1500 .012 .138 Brass 051 1601808-1 † P051C12B 0.40-0.75 0.71-0.99 0.30 3.51 21-18 12 .028-.039 .016 .138 0.40-0.75 0.71-0.99 800-1500 0.41 3.51 Cu Ni 051 1601809-1 P051C16A 21-18
in „IDC connector für Kupferlackdraht“ · Mikrocontroller und Digitale Elektronik ·
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dimplex_la17-26ps_fd9202_de-gb-fr.pdf
10,1 / 3,6 9,6 / 3,4 12,6 / 3,8 12,0 / 3,6 13,7 / 3,6 13,3 / 3,5 4 17,3 / 3,5 16,6 / 3,4 22,0 / 3,8 21,1 / 3,5 24,0 / 3,7 22,9 / 3,5 2 3 bei A7 / W45 kW / --- 9,3 / 2,9 11,3 / 3,0 12,5 / 2,9 4 16,1 / 2,9 20,5 / 3,0 21,6 / 3,0 2 3 11,8 / 4,1 11,4 / 4,1 13,7 / 4,2 13,5 / 4,1 15,0 / 4,1 14,7 / 4,0 bei A10
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MotorolaDatenCD_2000.pdf
Power Gain @ 1215 MHz JC Device Watts Watts dB °C/W Package/Style VCC = 28 Volts — Class C Common Base MRF10005 5 0.71 8.5 8 336E/1 VCC = 36 Volts — Class C Common Base MRF10031 30 3 10 3 376B/1 MRF10120 120 19 8 0.6 355C/1 VCC = 50 Volts MRF10150 150 15 10(7) 0.25 376B/1 MRF10350 350 44 9(7) 0.11 355E