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PDF
MAX1630-MAX1635.pdf
regulation, and the MAX1630/MAX1632/MAX1633/ MAX1635 each contain 12V/120mA linear regulators. The PART TEMP. RANGE PIN-PACKAGE MAX1631/MAX1634 include a secondary feedback input MAX1630CAI 0°C to +70°C 28 SSOP (SECFB), plus
in „Steuerung für Elektrochrom-Spiegel (BMW 5er)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DDS.vhd
in integer:=0; DOUT : out std_logic_vector (31 downto 0); DIN_CNT_MAX: in integer:=0 ); end DDS; -------------------------------------------------- Architecture BEHAVIOUR of DDS is -------------------------------------------------- signal RESULT : signed (31 downto 0)
in „DDS mit DE0-Nano Board nur niedrige Frequenzen?“ · FPGA, VHDL & Co. ·
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PDF
lm2576.pdf
Adjustable Version Only) 50 100/500 nA f Oscillator Frequency See (2) 52 kHz O 47/42 kHz (Min) 58/63 kHz (Max) V Saturation Voltage I = 3A (3) 1.4 V SAT OUT 1.8/2.0 V(Max) DC Max Duty Cycle (ON) See (4) 98 % 93 %(Min) CL Current Limit See (3)(2) 5.8 A 4.2/3.5 A(Min) 6.9/7.5 A(Max) L Output Leakage Current Output = 0V 2 mA(Max) Output = −1V 7.5 mA (5)(6) Output = −1V 30 mA(Max) Q Quiescent Current See (5) 5 mA 10 mA(Max) STBY Standby Quiescent ON /OFF Pin = 5V (OFF) 50 μA Current 200 μA(Max) θJA Thermal Resistance T Package
in „einstellbare Konstantstromquelle bis 2A Vin bis 27V“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
foo.dwarf-3.txt
: .string "UINT_LEAST16_MAX UINT16_MAX" .LASF1630: .string "pgm_read_word_near(address_short) __LPM_word((uint16_t)(address_short))" .LASF441: .string "UINT16_MAX (__CONCAT(INT16_MAX, U) * 2U + 1U)" .LASF434: .string "__CONCATenate
in „Simple C Frage zum Typ enum“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DSA00206265.pdf
Torque (Resonance point is not included herEin.) O - n Backward e Pull-out Torque Slew Range A Positive Max. o Pull-in Torque Theoretical Angle Error N T Start-Stop Range Max. Re(PPS)e Neg. Max. Error Hysteresis Driving Frequency Max. No Load (Speed) Response (PPS) Forward & Fig. 7-1 Speed - Torque Curve
in „Daten zu einem Schrittmotor herausfinden“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
419,420,421,422,422,423,424,425,426,427,428,428,429,430,431,432,433,433,434,435,436,437,438,439,439,440,441,442,443,444,445,445,446,447,448,449,450,451,451,452,453,454,455,456,457,457,458,459,460,461,462,463,463,464,465,466,467,468,469,470,470,471,472,473,474,475,476,477,477,478,479,480,481,482,483,484,484,485,486,487,488,489,490,491,492,492,493,494,495,496,497,498,499,500,501,501,502,503,504,505,506,507,508,509,510,510,511,512,513,514,515,516,517,518,519,520,520,521,522,523,524,525,526,527,528,529,530,531,531,532,533,534,535,536,537,538,539,540,541,542,543,544,545,545,546,547,548,549,550,551,552,553,554,555,556,557,558,559,560,561,562,563,563,564,565,566,567,568,569,570,571,572,573,574,575,576,577,578,579,580,581,582,583,584,585,586,587,588,589,590,591,592,593,594,595,596,597,598,599,600,601,602,603,604,605,606,607,608,609,610,611,612,613,614,615,616,617,618,619,620,621,622,623,624,626,627,628,629,630,631,632,633,634,635,636,637,638,639,640,641,642,644,645,646,647, 648,649,650,651,652,653,654,655,657,658,659,660,661,662,663,664,665,666,668,669,670,671,672,673,674,675,677,678,679,680,681,682,683,685,686,687,688,689,690,692,693,694,695,696,697,699,700,701,702,703,704,706,707,708,709,710,712,713,714,715,716,718,719,720,721,723,724,725,726,727,729,730,731,732,734,735,736,737,739,740,741,742,744,745,746,748,749,750,751,753,754,755,757,758,759,761,762,763,764,766,767,768,770,771,772,774,775,776,778,779,781,782,783,785,786,787,789,790,792,793,794,796,797,799,800,801,803,804,806,807,808,810,811,813,814,816,817,819,820,822,823,824,826,827,829,830,832,833,835,836,838,839,841,842,844,846,847,849,850,852,853,855,856,858,860,861,863,864,866,867,869,871,872,874,875,877,879,880,882,884,885,887,889,890,892,894,895,897,899,900,902,904,905,907,909,911,912,914,916,918,919,921,923,925,926,928,930,932,934,935,937,939,941,943,944,946,948,950,952,954,956,957,959,961,963,965,967,969,971,973,975,977,979,981,982,984,986,988,990,992,994,996,998,1000,1002
in „HSV RGB Led Dimmer, C Code & Video & Doku“ · Projekte & Code ·
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PDF
Voltageinverter.pdf
otherwise specified: V+ = 5V, FC = Open, C1= C 2 47 μF.(Note 4) Symbol Parameter Condition Min Typ Max Units V+ Supply Voltage R L 1k Inverter, LV = Open 3.5 5.5 Inverter, LV = GND 1.5 5.5 V Doubler, LV = OUT 2.5 5.5 IQ Supply Current No Load FC = V+ (LM2662) 1.3 4 LV = Open SD = Ground (LM2663) mA FC
in „Das große ADC Quiz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1302_2Cells_to_5V_600mA.pdf
CHARACTERIST DC E IC ICS T A 25°C, V =IN.5V, unless otherwise noted. SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS IQ Quiescent Current VSHDN= 0.5V, FB= 1.3V 200 300 A VSHDN= 1.8V 15 25 A VIN Input Voltage Range 2.0 V 2.2 8 V V Feedback Voltage (LT1302) V = 0.4V 1.22 1.24 1.26 V FB C Feedback Pin Bias Current
in „Welcher DC-DC-Converter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt1302-1605370.pdf
CHARACTERIST DC E IC ICS T A 25°C, V =IN.5V, unless otherwise noted. SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS IQ Quiescent Current VSHDN= 0.5V, FB= 1.3V 200 300 A VSHDN= 1.8V 15 25 A VIN Input Voltage Range 2.0 V 2.2 8 V V Feedback Voltage (LT1302) V = 0.4V 1.22 1.24 1.26 V FB C Feedback Pin Bias Current
in „[V] Konvolut (16) ältere LinearTech StepUps LT1302, 1305, SO8 (10€)“ · Markt ·
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PDF
lt1302.pdf
CHARACTERIST DC E IC ICS T A 25°C, V =IN.5V, unless otherwise noted. SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS IQ Quiescent Current VSHDN= 0.5V, FB= 1.3V 200 300 A VSHDN= 1.8V 15 25 A VIN Input Voltage Range 2.0 V 2.2 8 V V Feedback Voltage (LT1302) V = 0.4V 1.22 1.24 1.26 V FB C Feedback Pin Bias Current
in „[V] kleines Konvolut ältere DIL / DIP ICs (8€)“ · Markt ·
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PDF
SPLC-780-A1.pdf
= 2.7 to 4.5V) INTERNAL CLOCK OPERATION Limit Characteristics Symbol Unit Test Condition Min. Typ. Max. VDD = 3V OSC Frequency FOSC1 190 270 350 KHz Rf = 75K 2% EXTERNAL CLOCK OPERATION Limit Characteristics Symbol Unit Test Condition Min. Typ. Max. External Frequency FOSC2 125 250 350 KHz Duty Cycle
in „Nur Hyroglphen auf dem LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FM_AM-Tuner_TEA5757HL_5759HL_1.pdf
currents. Table 1 Tuning currents I ( A) I ( A) BAND W 1 W 2 R A B SELECT (kHz) (kHz) (kHz) MIN. TYP. MAX. MIN. TYP. MAX. FM 25 200 12.5 2 2.5 3 54 80 100 MW 3 64 1 2 2.5 3 54 80 100 LW 1 64 1 2 2.5 3 54 80 100 SW 1 64 1 0.4 0.5 0.7 12 16 20 2000 Feb 02 8 Philips Semiconductors Product specification Self
in „Autoradio selber bauen.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCF51QE128-1.pdf
T 2.3 VLoad= 6 mA — — 0.5 C 1.8 VLoad= 3 mA — — 0.5 5 D Output low Max totaOLIfor allIOLT — — 100 mA current ports P Input high all digital inputs VDD > 2.7 V 0.70 xDD — — 6 voltage VIH C VDD> 1.8 V 0.85 xDD — — V P Input low voltage all digital inputs VDD > 2.7 V — —
in „Eingangsspannungsbereich ADC Coldfire“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Telit_UC864-E_Hardware_User_Guide_r1.pdf
receive incoming calls and S– (MF=2) GSM TX and RX mode Min power level 139.1 GSM Sending data mode Max power level 340.8 GPRS (class 10) TX and RX mode GPRS Sending data mode (3 slot TX) Max power level 728.2 WCDMA WCDMA Call in progress Max power level 619,7 In GSM/GPRS mode, RF transmission is not
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PDF
AN00022_COMPASS.pdf
the sensors causes a max. azimuth error of 1°. The KMZ52 is specified to have an offset voltage of max. 1.5mV/V and an offset drift of max. 3 V/(V/K) (refer to Table 1). Thus, at the recommended supply of 5V, the max. offset
in „Fluglage messen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN00022_COMPASS.pdf
the sensors causes a max. azimuth error of 1°. The KMZ52 is specified to have an offset voltage of max. 1.5mV/V and an offset drift of max. 3 V/(V/K) (refer to Table 1). Thus, at the recommended supply of 5V, the max. offset
in „Schwächste Signale aus dem Rauschen herausholen. Verständliche Erklärung gesucht.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN00022_COMPASS.pdf
the sensors causes a max. azimuth error of 1°. The KMZ52 is specified to have an offset voltage of max. 1.5mV/V and an offset drift of max. 3 V/(V/K) (refer to Table 1). Thus, at the recommended supply of 5V, the max. offset
in „elektronischen Kompass bauen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN00022_COMPASS.pdf
the sensors causes a max. azimuth error of 1°. The KMZ52 is specified to have an offset voltage of max. 1.5mV/V and an offset drift of max. 3 V/(V/K) (refer to Table 1). Thus, at the recommended supply of 5V, the max. offset
in „Problem mit Kompass Achsen (Mega644p + HMC5883L)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PSpice_LibraryguideOrCAD.pdf
PHIL_RF.OLB Philips NPN/PNP Bipolar Transistors PUMZ1 PUMZ1/PLP PHIL_BJT.OLB Philips NTC Thermistor C619_10000 C619_10000/SIE SIEMENS.OLB Epcos NTC Thermistor C619_22000 C619_22000/SIE SIEMENS.OLB Epcos NTC Thermistor C619_4700 C619_4700/SIE SIEMENS.OLB Epcos NTC Thermistor C619_47000 C619_47000/SIE SIEMENS.OLB
in „pSpice - Bauteil hinzufügen.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Linear_Current_Sense_AN105.pdf
smaller value R RIN for resistor RIN This can result in an operating current SENSE greater than the max current spec allowed unless the 4 3 max current is limited in another way, such as with a + – LOAD Schottky diode across R SENSE .This will reduce the high 2 5 current measurement accuracy by limiting
in „'High Side' Strom Messen - Geht das so ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AN105.pdf
smaller value R RIN for resistor RIN This can result in an operating current SENSE greater than the max current spec allowed unless the 4 3 max current is limited in another way, such as with a + – LOAD Schottky diode across R SENSE .This will reduce the high 2 5 current measurement accuracy by limiting
in „High-Side Strommessung AVR (Shunt)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DDS.vhd
= DIN_CNT_MAX-1) then ROMADDR <= ADDRESS; -- clocked address --> BRAM end if; end if; end process; -- 1 clock cycle latency caused by BROM process begin wait until rising_edge(CLK); if BCK = '1' then if (DIN_CNT = DIN_CNT_MAX-1) then SIGN <= ACCUM(ACCUM'left); end if; end if; end process; QUADRANT <= ACCUM(ACCUM'left-1); RESULT <= signed(sine_LUT(ROMADDR)); ADDRESS <= to_integer(ACCUM(ACCUM'high-2 downto ACCUM'high-11))
in „DDFS von Lothar Miller ich steh aufm Schlauch“ · FPGA, VHDL & Co. ·
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PDF
171573-da-01-en-LT_1073_5_DIP_8_STEP_UP_1V_5V.pdf
specifications are at A = 25°C. IN= 1.5V unless otherwise specified. SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS I Quiescent Current Switch Off 95 130 A Q IQ Quiescent Current, Step-Up No Load LT1073-5 135 A Mode Configuration LT1073-12 250 A VIN Input Voltage Step-Up Mode 1.15 12.6 V 1.0 12.6 V Step-Down
in „LT 1073 Spg.schwankungen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dac8512.pdf
(8.25) 3 0.348 (8.84) 0.300 (7.62) 7 1 0.210 0.015 0.195 (4.95) C (5.33) (0.381) TYP 0.115 (2.93) MAX 0.130 0.015 (0.381) 0.160 (4.06) (3.30) 0.008 (0.204) 0.115 (2.93) MIN SEATING 0.022 (0.558) 0.100 PLANE 0°- 15° 0.014 (0.356) (2.54) BSC 8-Pin Cerdip (Z Suffix) 0.005 (0.13) MIN 0.055 (1.4) MAX 8 5 0.310 (7.87) 0.220 (5.59) 1 4 0.070 (1.78) 0.030 (0.76) 0.320 (8.13) 0.405 (10.29) MAX 0.290 (7.37) 0.200 0.060 (1.52) (5.08) 0.015 (0.38) MAX 0.150 0.200 (5.08) (3.81) 0.015 (0.38) 0.125 (3.18) MIN 0.008 (0.20) 0.023 (0.58) 0.100 (2.54) 0°-15° 0.014 (0.36) BSC SEATING PLANE 8-Lead SOIC
in „µC soll Strom rausgeben“ · Mikrocontroller und Digitale Elektronik ·
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Datei
datei-dmesg.txt
device (0005 -> 0007) [ 0.573199] scsi0 : ata_piix [ 0.573536] scsi1 : ata_piix [ 0.573607] ata1: PATA max UDMA/100 cmd 0x1f0 ctl 0x3f6 bmdma 0x1860 irq 14 [ 0.573611] ata2: PATA max UDMA/100 cmd 0x170 ctl 0x376 bmdma 0x1868 irq 15 [ 0.574328] libphy: Fixed MDIO Bus: probed [ 0.574560] tun: Universal TUN/TAP device driver, 1.6 [ 0.574562] tun: (C) 1999-2004 Max Krasnyansky <maxk@qualcomm.com> [ 0.574786] PPP generic driver version 2.4.2 [ 0.574982] ehci_hcd: USB 2.0 'Enhanced' Host Controller (EHCI) Driver [ 0.575023] ehci-pci: EHCI PCI platform driver [ 0.575349
in „Limux:: Netzwerk und WLAN futsch.“ · PC Hard- und Software ·
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PDF
HBM.pdf
Messgitter / Linear-DMS LY11 Linear-DMS Ab Lager lieferbare Typen Varianten Nenn- Abmessungen (mm) Max. zul. Löt- wider- effektive stütz- Temperaturgang angepasst an Stahl stand Brücken- punkte mit a = 10,8 · 10 /K speisesp. LY13 Messgitter Messgitter- träger Temperaturgang a-6epasst an Aluminium mit
in „Suche Dehnungsmessstriefen (DMS) mit hoher Schwingbelastung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mcp23009.pdf
A1, A0 in opcode ratio = R2/(R1+R2) V2 = voltage on ADDR pin V2(min) = V2 - (VDD/8) x %tolerance V2(max) = V2 + (VDD/8) x %tolerance VDD= 1.8 10% Tolerance (total) n R2=2n+1 R1=16-R2 R2/(R1+R2) V2 V2(min) V2(max) 0 1 15 0.0625 0.113 0.00 0.14 1 3 13 0.1875 0.338 0.32 0.36 2 5 11 0.3125 0.563 0.54 0.59
in „Frage zu SPI und MCP23S09“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DCC_Laborbooster.pdf
http://greuphone.magnetmotor.ch/#ibm 67 68 69 noch zu Machen: 70 -Stringlänge über RS232 ist (STRING_MAX_LENGTH =) 21 Zeichen, wird aber nicht abgefangen 71 -Programm säubern/vereinheitlichen und dokumentieren 72 1 'Define für PIC16F1933 2 'jetzt neu für PIC16F1936 (gleich) 3 Define CONFIG1 = 0x0fc2 4 Define CONFIG2 = 0x1dff 5 Define CLOCK_FREQUENCY = 32 'MHz 6 7 Define STRING_MAX_LENGTH = 21 8 9 'DCC-Laborbooster 10 11 'noch nicht implementiert: 12 'Stringlänge über RS232 ist STRING_MAX_LENGTH = 21 Zeichen, wird aber nicht abgefangen 13 14 'PIC-Register: LCD-Modul: Funktion:
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PDF
Energizer_AAA_AA_AlkaliMangan_ohne.pdf
:46 1,26 618 20:36:01 1,26 618 20:36:16 1,26 618 20:36:32 1,26 618 20:36:47 1,26 618 20:37:02 1,25 619 20:37:17 1,25 619 20:37:33 1,25 619 20:37:48 1,25 619 20:38:03 1,25 619 20:38:18 1,25 619 20:38:34 1,25 619 20:38:49 1,25 619 20:39:04 1,25 620 20:39:19 1,25 620 20:39:35 1,26 620 20:39:50 1,25 620
in „Varta Super Heavy Duty ver**ung“ · Mechanik, Gehäuse, Werkzeug ·
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Datei
main.c
eeprom_write_byte(&eeFooByte, nKeyPress); dauer = 0; Warte (100); } } } else{ bPortB = 1; } } return 0; int maxValue(int a[1998], int cnt) { int max; for(int i=0 ; i<cnt ; i++) { if(a[i] > a[i-1]) { 1998 = a[i]; } } return max; } int Array [1998]; Array [ 0 ] = 1999 ; Array [ 1 ] = 1998 ; Array [ 2 ] = 1997 ;
in „Geschwindigkeit durch Taster aus einem Array anwählen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
01_Sicherungsautomaten.pdf
DC Schiffsklassifikationen S 200 S 200 P S 220 S 800 S700 S 400 M GL LRS S 280UC (GL) BV DNV 6 000 max. max. max. 25000 6 000 Bemessungsschalt- vermögen IcnA 10 000 25 000 10 000 50000 10 000 (230/400 V AC) In/A m 63 0,5 … 63 m 32 m 125 m 100 m 63 ➀ als selektiver Gruppen- oder Vorautomat 1/66 System
in „Kurzschlussstrom“ · Offtopic ·
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PDF
Modbus_RTU___Kommunikationshandbuch_fuer_EATON_DC1.pdf
-19 RO1 obere Grenze rw RUN 100 ≙ 10.0 % 0 - 2 U16 148 P-20 f-Fix1 rw RUN 3000 ≙ 50.0 Hz f-min - f-max U16 149 P-21 f-Fix2 rw RUN 3000 ≙ 50.0 Hz f-min - f-max U16 150 P-22 f-Fix3 rw RUN 3000 ≙ 50.0 Hz f-min - f-max U16 151 P-23 f-Fix4 rw RUN 3000 ≙ 50.0 Hz f-min - f-max U16 152 P-24 t-Schnellstopp rw
in „ich bitte um Mitt-Hilfe in Sachen RS485; Modbus; Frquenzumrichter; qModMaster“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm25117.pdf
following any current overshoot. Maximum peak inductor current can be calculated as: VCS(TH) VOUT IL(MAX)_PK= + PP - [A] RS SW x AS x RSx R RAMPx C RAMP (9) PP IL(MAX)_AVE= L(MAX)_PK- [A] 2 (10) Where I PP represents inductor peak to peak ripple current in Figure 23, and is defined as: VOUT § VOUT • PP
in „DC-DC Wandler mit MCP42010“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Data_Schottky___HF_Dioden.pdf
typically 0.1 pF, allows the use this diodes up to 25-50 GHz Low barrier @ 1 mA 0.3 V typ. 0.33 V max Forward current max 20 mA Vb @ 10µA 5 V typ. 3 V min RF CW incident power max +20 dBm Cj @ 0V 0.1 pF typ. 0.12 pF max Dissipation power max 50 mW Series inductance max 0.8 nH Rs 12.8 Ω R.F. elettronica
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PDF
ADC_DelSig_v3_20.pdf
ADC_DelSig (Buffer Gain = 1) Single Sample Multi-Sample Continuous Multi-Sample Turbo Resolution Min Max Min Max Min Max Min Max 8 1561 74926 1911 91701 8000 384000 1581 75851 9 1293 62060 1543 74042 6400 307200 1307 62693 10 1143 54857 1348 64673 5566 267130 1154 55351 11 993 47627 1154 55351 4741 227555
in „Dev-Board mit mind. 4 x Delta-Sigma-ADC & CAN-BUS“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HX8238A.pdf
370 18x100 1094 S667 -3348 370 18x100 1045 S618 -2466 240 1095 S668 -3366 240 18x100 18x100 1046 S619 -2484 370 18x100 1096 S669 -3384 370 18x100 1047 S620 -2502 240 18x100 1097 S670 -3402 240 18x100 1048 S621 -2520 370 18x100 1098 S671 -3420 370 18x100 1049 S622 -2538 240 18x100 1099 S672 -3438 240
in „TFT- Ansteuerung ET0350G0DH6 (Glyn) mit HX8238 LCD Driver und Microchip Graphic Lib“ · Mikrocontroller und Digitale Elektronik ·
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PDF
22103a.pdf
A1, A0 in opcode ratio = R2/(R1+R2) V2 = voltage on ADDR pin V2(min) = V2 - (VDD/8) x %tolerance V2(max) = V2 + (VDD/8) x %tolerance VDD= 1.8 10% Tolerance (total) n R2=2n+1 R1=16-R2 R2/(R1+R2) V2 V2(min) V2(max) 0 1 15 0.0625 0.113 0.00 0.14 1 3 13 0.1875 0.338 0.32 0.36 2 5 11 0.3125 0.563 0.54 0.59
in „MCP23S18 I/O Expander“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „SPI, ISP, USI, TWI, I2C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „I²c mit Bascom und ATmega“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „Reset auf I2C-Bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Philips_Semiconductors_-_I2C_Bus_Specification_v2.1.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „GND-Fäche sinnvoll???“ · Platinen ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „i2c und Takt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „I2C Speicher HotSwap?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „I²C Bus Schnittstelle extern ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_BUS_SPECIFICATION_3.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „SPI oder TWI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spezifikation.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „Unterschied Defintion I²C und SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
i2c_bus_specification_3.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „IIC-Bus Verständnisfrage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2C_SPEC.pdf
level input V = 0.4 V for the output stages. V as a function of current is shown as a function of R p max in Fig.40. OLmax DD 39 Philips Semiconductors 2 The I C-bus specification MBC635 MBC628 20 6 maximum hminimum, halfpage value p value Rp (k ) (k ) 16 5 R = 0 4 S 12 R = 0 3 S 8 max. RS 2 max. R 4 S
in „I2C abstrakt“ · Mikrocontroller und Digitale Elektronik ·