-
PDF
ALTES01075-1.pdf
to 4 Clock 2 Output 2 2 2 Output Enables Enables LAB 0 LAB 1 Macrocells 24 24 Macrocells I/O 0 to 9 10 to 19 5 to 10 5 to 10 5 to 10 I/O 5 to 10 I/O pins Control 10 10 Control I/O pins Block Block 2 2 2 Output 5 to 10 5 to 10 2 Output Enables Enables LAB 2 LAB 3 PIA Macrocells 24 24 Macrocells I/O 20 to 29 30 to 39 I/O 5 to 10 Control 5 to 10 5to10 Control 5 to 10 I/O pins 10 10 I/O pins Block Block 2 5 to 10 2 5 to 10 Logic Array Blocks The FLASHlogic device architecture is based on the linking of high- performance, flexible
in „Prüfen von Chips“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TimerPumpe_S01_CMOS4060.pdf
€ /4 U-Chrimpschuh 50pcs SV1.25-4 0,5-1,5qmm I4,3mm Step-Up Boost 400W 15Ain 8,5-50Vi zu 10-60Vo 7Aout 0,2-12Aout+Fan>65°C 67x43x28mm 86g TL494AW SO16 10mA 150kHz (UC3524) Fuse 15A 4x 220uF 63V LowESR 2,95€ 30pcs SV3.5-4 2,5-4mm2 37A iDia4,3mm 24,8x8mm 1,26 Euro Step-Up Boost 10-32Vin max.10Ain
in „Laufzeitbegrenzung für 12V Pumpe mit Akku, Solarmodul, Step-Up, Zeitschaltuhrbetrieb LED-Anzeige MPP“ · Projekte & Code ·
-
PDF
Junior_Memory_Map.pdf
EX K ADDR A15 A14 A13 A12 A11 A10 A9 A8 A7 A6 A5 A4 A3 A2 A1 A0 K EX Bereich Bausteine Funktion Ort x x x x x x x x x x 0x0000 - 0x03FF RAM Basisplatine 0 0 x x x x x x x x 0x0000 - 0x00FF Zeropage 0 0 0 0 0 0 0 1 x x x x x x x x 0 0
in „Einfache CPU, einfacher Rechner, nur zum Lernen, Erfahrung?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ltc4010.pdf
per Cell) Voltage (per Cell) (per Cell) 1.375 2.05 0 2.03 1.355 2.01 –5 1.99 ) V V V (1.335 E1.97 (–10 NiMH G G1.95 G T T T O 1.315 O1.93 L–15 V V V 1.91 1.295 1.89 –20 NiCd 1.87 1.275 1.85 –25 –50 –30 –10 10 30 50 70 90 –50 –30 –10 10 30 50 70 90 –50 –30 –10 10 30 50 70 90 TEMPERATURE (°C) TEMPERATURE
in „NiMH-Ladeschaltung mit LTC4010 lädt nicht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TL072.pdf
TL072C Symbol Parameter Unit Min. Typ. Max. Min. Typ. Max. Output voltage swing T amb= +25°C R L= 2kΩ 10 12 10 12 ±V R = 10kΩ 12 13.5 12 13.5 V opp L T min≤ Tamb ≤ Tmax R = 2kΩ 10 10 L R L 10kΩ 12 12 Slew rate (amb = +25°C) SR V = 10V, R = 2kΩ, C = 100pF, unity gain 8 16 8 16 V/µs in L L Rise time (T =
in „Operationsverstärker und 24 V“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LDS517_Displaycontroller.pdf
Red Green Blue Red Green Blue Red Green Blue 0 0 0 0 0 0 0 0 0 1 1 1 1/63xIR 1/63xIG 1/63xIB 1/63xIRx10 1/63xIGx10 1/63xIBx10 2 2 2 2/63xIR 2/63xIG 2/63xIB 2/63xIRx10 2/63xIGx10 2/63xIBx10 3 3 3 3/63xIR 3/63xIG 3/63xIB 3/63xIRx10 3/63xIGx10 3/63xIBx10 4 4 4 4/63xIR 4/63xIG 4/63xIB 4/63xIRx10 4/63xIGx10
in „Verkaufe OLED Displays FullColor 128*128 bzw. 96*64“ · Markt ·
-
Datei
os_tmr.c
OS_TICK period, OS_OPT opt, OS_TMR_CALLBACK_PTR p_callback, void *p_callback_arg, OS_ERR *p_err) { CPU_SR_ALLOC(); #ifdef OS_SAFETY_CRITICAL_RELEASE if (p_err == (OS_ERR *)0) { OS_SAFETY_CRITICAL_EXCEPTION(); } #endif #if OS_CFG_CALLED_FROM_ISR_CHK_EN > 0u if (OSIntNestingCtr > (OS_NESTING_CTR)0) { /* See
in „uC/OS-III - OSTmrCreate“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
lprp_schematic.pdf
FLASH_A8 A3 A8 FLASH CD/DAT3 1 SD_D3 3 RAM_A9 H2 A8 DQ8 B1 RAM_D8 FLASH_A9 B3 A9 CMD 2 SD_CMD 3 RAM_A10 H3 A9 DQ9 C1 RAM_D9 FLASH_A10 C3 3 RAM_A11 H4 C2 RAM_D10 FLASH_A11 D3 A10 VSS 4 RAM_A12 H5 A10 DQ10 D2 RAM_D11 FLASH_A12 C4 A11 VDD 5 RAM_A13 G3 A11 DQ11 E2 RAM_D12 FLASH_A13 A5 A12 F2 FLASH_D0 CLK 6
in „ALTERA The Low Power Reference Platform (LPRP) = 19,99€!!“ · Markt ·
-
PDF
KD035FM-7-CTP.pdf
Polarizer black/white spot , light dot, pinhole, dent, stain) Zone Acceptable Qty Size (mm) A B C Y Φ≤0.10 Ignore 0.10<Φ≤0.15 3( distance≧10mm) Ignore 0.15<Φ≤0.2 1 X 0.2<Φ 0 Φ=(X+Y)/2 ②Dim spot(LCD/TP/Polarizer dim dot, light leakage、dark spot) Acceptable Qty Zone Size (mm) A B C Φ≤0.1 Ignore 0.1<Φ≤0.2 2(
-
PDF
MW-BIC-2200.pdf
. W ORKING HUM IDITY 20 ~ 90% RH non-condensing ENVIRONMENT STORAGE TEM P., HUM IDITY -40 ~ +85℃ , 10 ~ 95% RH non-condensing TEM P. COEFFICIENT ± 0.03% /℃ (0 ~ 50℃ ) VIBRATION 10 ~ 500Hz, 2G 10m in./1cycle, 60m in. each along X, Y, Z axes SAFETY STANDARDS UL62368-1, CAN/CSA C22.2 No.62368-1-14,TUV BS
in „LifePo4 mit Labornetz laden und gleichzeit entladen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
lm258.pdf
Ouoput Voltage (CC = 30V) V Tamb= 25 C RL= 2k 26 27 26 27 Tmin ≤ Tamb≤ Tmax. 26 26 Tamb= 25 C RL= 10k 27 28 27 28 Tmin. Tamb ≤ Tmax. 27 27 VOL Low Level Outout Voltage (RL= 10k ) mV Tamb= 25 C 5 20 5 20 Tmin ≤ Tamb≤ Tmax. 20 20 SR Slew Rate (VCC = 15V, VI= 0.5 to 3V, L = V/ s 2k , C L 100pF, unity gain
in „Audio-Signal-Erkennung“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
schema_stm32_primer2_1_2.PDF
PB15/SPI2_MOSI PE6/TRACED2/FSMC_A22 2 2 PE7/FSMC_D4 38 LCD_D0 1 1 C18 1 1 C19 TOUCH_L 15 PC0/ADC_IN10 PE8/FSMC_D5 39 LCD_D1 C17 R44 TOUCH_R 16 40 LCD_D2 2 2 470K 2 TOUCH_U 17 PC1/ADC_IN11 PE9/FSMC_D6 41 LCD_D3 10µF 10nF 2 10nF TOUCH_D 18 PC2/ADC_IN12 PE10/FSMC_D7 42 LCD_D4 33 PC3/ADC_IN13 PE11/FSMC_D8
in „STM32 USB Virtual COM Port“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SCH_ESP32-Ethernet-Kit_A_V1.2_20200528.pdf
VDD1V8 VDD1V8 VDD33 VDD33 VDD33 VDD1V8 VDD33 C28 C29 C30 L1 1Kohm@100MHz L2 1Kohm@100MHz 0.1uF/16V(10%) 0.1uF/16V(10%) 0.1uF/16V(10%) R73 R74 R75 C31 C32 C33 C34 GND GND GND 4.7uF/6.3V(10%) 4.7uF/6.3V(10%) 0.1uF/16V(10%) 0.1uF/16V(10%) 2 7 4 0 1 2 6 D 10K(5%) 10K(5%) 10K(5%) U6 U7 4 9 1 3 6 2 3 4 5 D
in „Arduino Library für Netzwerkchip W5500?“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
dmesg.txt
bridge window [mem 0xf6f00000-0xf6ffffff 64bit pref] [ 0.328138] pci 0000:07:01.0: [1106:3038] type 10 class 0x303811 [ 0.328141] pci 0000:07:01.0: unknown header type 10, ignoring device [ 0.328184] pci 0000:07:02.0: [9710:9835] type 00 class 0x078000 [ 0.328196] pci 0000:07:02.0: reg 0x10: [io 0xec00
in „Arduino - USB wird nicht erkannt“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TCA0372-D-116057.pdf
groundA T = +25°C, unless otherwise noted.) Characteristics Symbol Min Typ Max Unit Slew Rate (in= −10 V to +10 V,LR = 2.0 L, C = 100 pF) SR 1.0 1.4 − V/ms AV = −1.0,AT = lowo Thigh Gain Bandwidth Product (f = 100 kHL, C = 100 LF, R = 2.0 k) GBW MHz TA= 25°C 0.9 1.4 − T = T to T 0.7 − − A low high Phase
in „Audio-Verstäker mit Motortreiber TCA0372, auch für Kopfhörer“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
BC546-D.PDF
125 220 260 BC546B/547B/548B 240 330 500 BC547C/548C 450 600 900 Noise FigureC(I = 0.2 mACEV= 5.0 V,SR = 2 kW, f = 1.0 kHz, Df = 200 Hz)NF dB BC546 − 2.0 10 BC547 − 2.0 10 BC548 − 2.0 10 1. B is value for whCch I = 11 mACE= 1.0 V. www.onsemi.com 2 BC546B, BC547A, B, C, BC548B, C BC547/BC548 2.0 1.0 I VCE= 10 V 0.9 TA= 25°C A 1.5 T = 25°C T A 0.8 E ) VBE(sat) IC B = 10 R 1.0 T 0.7 U O C 0.8 ( 0.6 VBE(on) V CE = 10 V D E D 0.6 A 0.5 I L 0.4 A V M 0.4 V 0.3 O , 0.3 0.2 F VCE(sat) IC B = 10 h 0.1 0.2 0 0.2 0.5
in „5V Solid-State-Relais über 3.3V Logik steuern“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
B150XG01.pdf
condition: Item Conditions Typ. Note [degree] 40 — — Viewing Angle Horizontal (Right) 40 [degree] K = 10 (Left) [degree] 10 — K: Contrast Ratio Vertical (Upper) [degree] K = 10 (Lower) 30 — Contrast ratio 300 — Luminance 1.25 max. (5 pts) 1.65 max. (13pts) Uniformity Response Time [msec] Rising 24 15(Max
in „15" XGA Display an Computer anschließen“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
main.c
HZ) unsigned int Periodendauer = 20960; unsigned int Frequenz_Ak = 50; unsigned int Frequenz_Step = 10; // Schrittweite 10 Prozent von Frequenz unsigned int Frequenz_Min = 10; // Maximale Frequenz von 100 HZ unsigned int Frequenz_Max = 90; // Minimale Frequenz von 10 HZ unsigned int Pulsbreite_Ak = 50; unsigned int Pulsbreite_Step = 10; unsigned int Pulsbreite_Min = 10; unsigned int Pulsbreite_Max = 90; unsigned int PWM_Min = 5; // Parameter für Pulswobbel unsigned int PWM_Max = 95; unsigned int PWM_Aktuell = 5; unsigned int PWM_Step
in „MSP430 F5529 Wobbel-Generator“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
STM32F4-BASE.pdf
A S 28pF C25 T R 28pF 28pF FTSH-105-01-F- +3V3 28pF T 2 1 L1 +3V3 S 4 3 C6 1 2 R IO 6 5 J D L 8 7 10nF WE-CBF_0805 N S C O I 10 9 Sehr nah an MCU & guter Ceramic Cap! ST3215SB32768C0HPWBB / W W D Würth Electronics: 74279206 Farnell: 1972459 M / E J A T K C 3 CON1 RS: 358-676 5 J T A T 10k 1 2 3 4 5
in „STM32F407 (100pin) Basisboard - Review bitte“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
stm32f1xx_hal_conf.h
PHY_HALFDUPLEX_100M ((uint16_t)0x2000) /*!< Set the half-duplex mode at 100 Mb/s */ #define PHY_FULLDUPLEX_10M ((uint16_t)0x0100) /*!< Set the full-duplex mode at 10 Mb/s */ #define PHY_HALFDUPLEX_10M ((uint16_t)0x0000) /*!< Set the half-duplex mode at 10 Mb/s */ #define PHY_AUTONEGOTIATION ((uint16_t)0x1000
in „[Pollin] Grafik Display Anschluss Verständnisfragen“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
main.c
define LED_ON 0x80 // LED (grün) an P4.7 #define LED_X 0x01 // LED (rot) an P1.0 #define LED_X_Br 0x10 // LED_X Brücke an P7.4 (wegen TB0) #define N_Blinken 3 * 2 // 3x ON 3x OFF .... #define N_2Hz 5 // 5x wait_0s1 = 0,5s ==> 2Hz // __________ Prototypen der verwenndeten Funktionen _________________ void
in „Rote LED an Port 1.0 will nicht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
XC88xCLM_UM_v1_1.pdf
. . . . 10-2 10.1.1 Division Operation . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 10-3 10.1.2 Normalize . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
in „80C517A Paging“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
REN_ca3130-a_DST_20170525.pdf
Frequency C = 0 15 MHz f C (For Unity Gain Stability 47pF Required.) T C = 47pF 4 MHz C Slew Rate: SR Open Loop C = 0 30 V/s C Closed Loop C = 56pF 10 V/s C Transient Response: C = 56pF, C Rise Time t CL= 25pF, 0.09 s r RL= 2k Overshoot OS (Voltage Follower) 10 % Settling Time (To <0.1%, = 4V ) t
-
PDF
GL9540_ServiceManual.pdf
Circuit 3-8 3.3.6 Keyboard Interface 3-9 3.3.7 Bus Interface 3.3.8 Digital to Analog Conversion 3-10 3-10 SECTION 4 SHOP MAINTENANCE 4.1 Int 4-l 4.2 roduct ion 4-1 Necessar"y Equipnent 4-t 4.2.L Ca'librati on, Perf ornnnce Ve rificat ion 4,1 4.2.2 Troubl eshooti ng 4-1 4.3 Perfonmance Veri fication
-
PDF
stm32g030c6.pdf
V - 60 C=10 pF, 1,6 V ÿ VDDIO1 ÿ 2,7 V - 30 10 - C=50 pF, 2,7 V ÿ VDDIO1 ÿ 3,6 11 - VC=50 pF, 1,6 V ÿ VDDIO1 ÿ 2,7 22 ns Tr/Tf Anstiegs- und Abfallzeit des Ausgangs - 4 VC=10 pF, 2,7 V ÿ VDDIO1 ÿ 3,6 - 8 VC=10 pF
in „Muß der STM32G programmiert werden?“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
DG14032_PCF8574_lesen_1.c
BIT_S 0x01 #define BIT_D 0x04 #define BIT_C 0x02 #define BIT_B 0x01 #define BIT_SC 0x08 #define BIT_SR 0x01 #define BIT_RL 0x04 #define BIT_DL 0x10 #define BIT_RE 0x04 #define BIT_G 0x02 #define BIT_BUSY 0x80 #define MASK_CGRAM_ADR 0x3F #define MASK_DDRAM_ADR 0x3F #define MASK_SCROLL_ADR 0x3F #define
in „(AVR-gcc) Lesen vom PCF8574 I2C-Port-Expander gelingt nicht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
mp1482.pdf
20mV/div. VEN VEN VOUT 5V/div. 5V/div. F 20mV/dIv. 1V/div. 2V/div. 1A/div. 1A/div. 1A/div. V SW 10V/div. E VSW 10V/div. D 10V/div. S 6 Heavy Load Operation Medium Load Operation N Light Load Operation7 2A Load 1A Load E No Load 4 200mV/div. 200mV/div.M I G 20mV/div. 1 VO, AC VO, AC S VO, AC P 20mV/div. 2MmV/div. E 20mV/div. 1A/div. O 1A/div. 1A/div. 10V/div. C 10V/div. D 10V/div. E O W T Short Circuit E Short CircuRt Load Transient TProtection N RecovEry O V OUTF 2V/div. 2V/div. 200mV/div. N E L 2A/div. R 2A/div. 1LOADv. 1A/div. MP1482 Rev. 1.31 www.MonolithicPower.com
in „Empfehlung Step Down Converter IC“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
PS-ITG-3200-00-01.4.pdf
Ceramic, X7R, 2.2nF ±10%, 50V 1 VDD Bypass Capacitor C2 Ceramic, X7R, 0.1µF ±10%, 4V 1 Regulator Filter Capacitor C3 Ceramic, X7R, 0.1µF ±10%, 2V 1 VLOGIC Bypass Capacitor C4 Ceramic, X7R, 10nF ±10%, 4V 1 14 of 39 Document
in „STK600 / Atmega 2560 per TWI mit ITG-3200 verbinden“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Schaltplan_33.pdf
SECTION 9 CIRCUIT DIAGRAM 9-1 MAIN PCB 1 2 3 4 5 6 7 8 9 10 11 12 R502 47K 2 3 1 . K 0 . 4 0 . 5 0 1 R403 R426 C 2 C 10K - - - 1 Q501 R410 R412 R 4 C414 DA204U 220 470K 0.001 R427 C406 SAW402 L403 C506 C509 - - - 6p KF448AV 18nH(1608) Q403 5 K R411 2 0.1 270p
in „Pegelwandler RX TX?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
lf444.pdf
Symbol Parameter Conditions LF444A LF444 Units Min Typ Max Min Typ Max VOS Input Offset Voltage R S 10k, TA= 25˚C 2 5 3 10 mV 0˚C ≤ TA≤ +70˚C 6.5 12 mV −55˚C ≤ T ≤ +125˚C 8 mV A ∆VOS/∆T Average TC of Input R S 10 kΩ 10 10 µV/˚C Offset Voltage OS Input Offset Current VS= ±15V Tj= 25˚C 5 25 5 50 pA (Notes 5, 6) Tj= 70˚C 1.5 1.5 nA T = 125˚C 10 nA j B Input Bias Current VS= ±15V Tj= 25˚C 10 50 10 100 pA (Notes 5, 6) Tj= 70˚C 3 3 nA Tj= 125˚C 20 nA 12 12 RIN Input Resistance Tj= 25˚C 10 10 Ω A Large Signal Voltage V = ±15V, V = ± 10V 50 100
in „PH Elektrode Filterung“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
lpc11u3x.pdf
LPC11U34FHN33/311 40 4 8 1 1 2 1 8 26 LPC11U34FBD48/311 40 4 8 1 1 2 1 8 40 LPC11U34FHN33/421 48 4 10 1 1 2 1 8 26 LPC11U34FBD48/421 48 4 10 1 1 2 1 8 40 LPC11U35FHN33/401 64 4 10 1 1 2 1 8 26 LPC11U35FBD48/401 64 4 10 1 1 2 1 8 40 LPC11U35FBD64/401 64 4 10 1 1 2 1 8 54 LPC11U35FHI33/501 64 4 12 1 1
in „LPC11U3 CRP zurücksetzen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
TestArmTurtorialDeu.pdf
0x40010804 GPIOA_BSRR = 0x40010810 GPIOx_BSRR_BS8 = 0x100 GPIOx_BSRR_BR8 = 0x1000000 GPIOx_CRx_GP_PP_10MHz = 1 GPIOx_CRx_GP_PP_2MHz = 2 GPIOx_CRx_GP_PP_50MHz = 3 GPIOx_CRx_GP_OD_10MHz = 1 | 4 GPIOx_CRx_GP_OD_2MHz = 2 | 4 GPIOx_CRx_GP_OD_50MHz = 3 | 4 GPIOx_CRx_AF_PP_10MHz = 1 | 8 GPIOx_CRx_AF_PP_2MHz =
in „ARM-Assembler-Tutorial“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Emerson_ave350b-48s28-6_v1_0_def2cb32b1.pdf
°C Reliability characteristics 6 25℃ T a. Normal Input/output rated. Calculated MTBF (telcordia) 2 10 h Telcordia SR 332 2006 AVE350B-48S28-6 DC-DC Converter 5/15 Electromagnetic compatibility requirements Test Item Regulations Criteria Notes & Conditions EN 55022 Conducted Emission / DC input port,
in „FU-Zwischenkreis aus DC/DC Wandler speisen Solarpumpe“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
6307.pdf
10.9 network also serves as a balun. Figure 34 shows the response for 10 103 100 91 5600 10.4 a center frequency of 100 MHz; note the very high attenuation 20 102 51 43 2700 10.4 at low frequencies. The high-frequency attenuation is due to the 50 99 22 18 1000 10.6 input capacitance of the log amp. 100 98 11 9.1 430 10.5 150 101 7.5 6.2 260 10.3 200 95 5.6 4.7 180 10.3 0.1mF 4.7V VP, 2.7V – 5.5V 250 92 4.3 3.9 130 9.9 AT 8mA 500 114 2.2 2.0 47 6.8 50V INPUT C1
in „HI-Empfänger: Könnte das so funktionieren?“ · HF, Funk und Felder ·
-
PDF
Stenorette_2010_SW.pdf
MAIß/OAROIR t0NP0Nril 510t iloc f0ltuR ilDt 0tai0t l0Nt[tttuF txt(NÄ91t, vut totr {0t[ili0Ra ltt!5n.vß10 0tL ( 6.' 1, C R 7, 58,9,{,r,5 f, 10, t. 15, ü,1t, 7\. 13. 2\. 71. 16. /,?\ t13iLx?18,5t 08I-1r0.0 0r t0Y85 ,e.h.p.nn!frn nrrnoinpsel!r0nhnp;qn0 e L J tr !ilrr6:sr{rs!ft0 Ni(0R0rt r00t *r\ld (" ril,oron
in „Recht auf Reparatur“ · Offtopic ·
-
PDF
lm324_Google_Translate.pdf
°C 25 FREQUENZGANG GBW Gewinn-Bandbreite-Produkt RL = 1 Mÿ, CL = 20 pF (siehe Abbildung 7) 1.2 MHz SR Anstiegsrate RL = 1 Mÿ, CL = 30 pF, VI = ±10 V (siehe Abbildung 7) 0,5 V/ÿs 56 ° ÿm Phasenrand G = + 1, RL = 10 kÿ, CL = 20 pF tS Eingewöhnungszeit Bis 0,1 %, VS = 5 V, 2-V-Stufe, G = +1, CL = 100 pF
in „gutes Übersetzungsprogramm für Datenblätter gesucht“ · Offtopic ·
-
PDF
Oszilloskop_2024A.pdf
Bedingung erfüllt: • Kürzer als ein vorgegebener Zeitwert (<). Beispiel: positiver Puls, wenn Sie t<10 ns einstellen: 10 ns 10 ns Trigger • Länger als ein vorgegebener Zeitwert (>). Beispiel: positiver Puls, wenn Sie t>10 ns einstellen: 10 ns 10 ns Trigger • Innerhalb eines vorgegebenen Zeitrahmens (>
in „Genauigkeit eines Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
stm32f10x_tim.h
/ /* Define to prevent recursive inclusion -------------------------------------*/ #ifndef __STM32F10x_TIM_H #define __STM32F10x_TIM_H // [ILG] #if defined ( __GNUC__ ) #pragma GCC diagnostic push #pragma GCC diagnostic ignored "-Wpadded" #endif #ifdef __cplusplus extern "C" { #endif /* Includes ------------------------------------------------------------------*/ #include "stm32f10x.h" /** @addtogroup STM32F10x_StdPeriph_Driver * @{ */ /** @addtogroup TIM * @{ */ /** @defgroup TIM_Exported_Types * @{ */ /** * @brief TIM Time Base Init structure definition * @note This structure
in „STM32 - Eclipse, ARM GCC - Funktionsaufruf geht nicht :-(“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TDA7293.pdf
11 13 680 IN- 2 - 14 OUT C1 470nF IN+ 3 + BOOT R1 22K 12 LOADER SGND 4 C5 22 F (*) (**) 6 VMUTE R5 10K MUTE 10 5 BOOTSTRAP MUTE THERMAL S/C VCLIP SHUTDOWN PROTECTION CLIP DET VSTBY STBY 9 STBY R4 22K 1 8 15 STBY-GND -Vs -PWVs C3 10 F C4 10 F C9 100nF C8 1000 F -Vs D97AU805A (*) see Application note (
in „Kann mir jemand helfen. Wer ist der Hersteller der Audio Boards "YUANJING"“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ACDC_Wandler_Murata_BAC3.pdf
20 20 10 10 0 0 0 10 20 30 40 50 60 70 80 90 100 0 10 20 30 40 50 60 70 80 90 100 Load (%) Load (%) BAC3S24DC 90 80 70 60 ) ( y 50 85V e 115V i E 40 230V 264V 30 20 10 0 0 10 20 30 40 50 60 70 80 90 100 Load
in „AC/DC-Spannungswandler - hochfrequentes Noise, richtig so?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
2243913.pdf
6.2.6.2 Pulse Gobbler The pulse gobbler on the SCL pin is automatically adjusted to suppress spikes < 10 ns during HS mode. F/S-mode HS-mode P F/S-mode S ‘0 0 0 0 1 X X X’b A Sr ‘Slave Address’R/W A “Data” A/A HS-mode continues HS Select Byte Control Byte Command/Data Byte(s) Sr‘Slave Address’R/W A S = Start bit Control Byte Sr = Repeated Start bit A = Acknowledge bit A = Not Acknowledge bit R/W = Read/Write bit P = Stop bit (Stop condition terminates HS Mode) FIGURE 6-10: HS Mode Sequence. 2008-2013 Microchip Technology
in „[V] 11St. SMD Dual Digital Poti - I2C Microchip MCP4561-103 10kOhm 256Steps Nonvolatile (8€)“ · Markt ·
-
PDF
22107B-1180063.pdf
6.2.6.2 Pulse Gobbler The pulse gobbler on the SCL pin is automatically adjusted to suppress spikes < 10 ns during HS mode. F/S-mode HS-mode P F/S-mode S ‘0 0 0 0 1 X X X’b A Sr ‘Slave Address’R/W A “Data” A/A HS-mode continues HS Select Byte Control Byte Command/Data Byte(s) Sr‘Slave Address’R/W A S = Start bit Control Byte Sr = Repeated Start bit A = Acknowledge bit A = Not Acknowledge bit R/W = Read/Write bit P = Stop bit (Stop condition terminates HS Mode) FIGURE 6-10: HS Mode Sequence. 2008-2013 Microchip Technology
in „[V] 24St SMD Digital I2C / 256 Steps 5K Dual Poti Microchip MCP4561- 502E/MS (MSOP8) (alle 15€)“ · Markt ·
-
PDF
2243913.pdf
6.2.6.2 Pulse Gobbler The pulse gobbler on the SCL pin is automatically adjusted to suppress spikes < 10 ns during HS mode. F/S-mode HS-mode P F/S-mode S ‘0 0 0 0 1 X X X’b A Sr ‘Slave Address’R/W A “Data” A/A HS-mode continues HS Select Byte Control Byte Command/Data Byte(s) Sr‘Slave Address’R/W A S = Start bit Control Byte Sr = Repeated Start bit A = Acknowledge bit A = Not Acknowledge bit R/W = Read/Write bit P = Stop bit (Stop condition terminates HS Mode) FIGURE 6-10: HS Mode Sequence. 2008-2013 Microchip Technology
in „[V] 44St. SMD Digital I2C / 256 Steps 10K Poti Microchip MCP4561- 103E/MS (MSOP8 Gehäuse)“ · Markt ·
-
PDF
2243913.pdf
6.2.6.2 Pulse Gobbler The pulse gobbler on the SCL pin is automatically adjusted to suppress spikes < 10 ns during HS mode. F/S-mode HS-mode P F/S-mode S ‘0 0 0 0 1 X X X’b A Sr ‘Slave Address’R/W A “Data” A/A HS-mode continues HS Select Byte Control Byte Command/Data Byte(s) Sr‘Slave Address’R/W A S = Start bit Control Byte Sr = Repeated Start bit A = Acknowledge bit A = Not Acknowledge bit R/W = Read/Write bit P = Stop bit (Stop condition terminates HS Mode) FIGURE 6-10: HS Mode Sequence. 2008-2013 Microchip Technology
in „[V] 10St. Digitalpoti MCP4561-103E/MS 8MSOP orginalverpackt. (9€)“ · Markt ·
-
PDF
KD035FM-7-TP.pdf
. warm-up time 4.3 Measuring Equipment FPM520 of Westar Display technologies, INC., which utilized SR-3 for Chromaticity and BM-5A for other optical characteristics. Part. No KD035FM-07-TP REV V1.0 Page 9 of 32 SHENZHEN STARTEK ELECTRONIC TECHNOLOGY CO.,LTD Part. No KD035FM-07-TP REV V1.0 Page 10 of
-
PDF
25AA128.pdf
: 5 mA at 5.5V, 10 MHz Peripheral Interface (SPI) compatible serial bus. The - Read Current: 5 mA at 5.5V, 10 MHz bus signals required are a clock input (SCK) plus sep- - Standby Current: 5 μA at 5.5V arate data in (SI
in „SPI EEPROM -> Kein Page read :- O“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ESR_ELV.pdf
1 steuert T 2 an, wodurch sich der Kreislauf schließtundsichdieSchaltungselbst„hält”. Widerstände: 10µF/25 V.......................................C3 10 Ω..................... Abgleichwiderstand100µF/16 V............................C4, C10tzt ist der Auto-Power-Off-Timer akti- 100 Ω/SMD..............
in „ESR berechnen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
155574-da-01-en-OP_VERST_LM2902N_STM.pdf
(R = 10kΩ) L V OL mV Tamb = +25°C 5 20 Tmin≤ Tamb ≤ Tmax 20 Slew Rate SR VCC = 15V, Vi = 0.5 to 3V,LR = 2kΩ,LC = 100pF, V/µs unity gain 0.4 Gain Bandwidth Product GBP MHz VCC = 30V, Vin 10mV, R L 2kΩ, C =L100pF
in „Operationsverstärker“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
main.c
HZ) unsigned int Periodendauer = 20960; unsigned int Frequenz_Ak = 50; unsigned int Frequenz_Step = 10; // Schrittweite 10 Prozent von Frequenz unsigned int Frequenz_Min = 10; // Maximale Frequenz von 100 HZ unsigned int Frequenz_Max = 90; // Minimale Frequenz von 10 HZ unsigned int Pulsbreite_Ak = 50; unsigned int Pulsbreite_Step = 10; unsigned int Pulsbreite_Min = 10; unsigned int Pulsbreite_Max = 90; unsigned int PWM_Min = 5; // Parameter für Pulswobbel unsigned int PWM_Max = 95; unsigned int PWM_Aktuell = 5; unsigned int PWM_Step
in „Moduswechsel durch gleichzeitiges Drücken beider Taster“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
RCN-600.pdf
Verweise auf andere Normen.............................................................................10 A.1 Normative Verweise ..................................................................................................10 A.2 Informative Verweise.................................................................................................10 Anhang B: Historie...............................................................................................................10 Anhang C: Befehlsübersicht.........................................
in „Arduino an SUSE Schnittstelle?“ · Mikrocontroller und Digitale Elektronik ·