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PDF
SSD1306.pdf
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
in „OLED Grafik Anzeige“ · Mikrocontroller und Digitale Elektronik ·
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PDF
littelfuse-PTC-Rline-Catalog.pdf
Resettable Devices Radial-Leaded Devices (Cont’d) Table R3 — Electrical Characteristics I I V I P MaxTime-to-trip R R R Part H T MAX MAX DTyp MIN MAX 1MAX Lead Size Number (A) (A) (VDC) (VAC RMS) (DC ADC) (AC ARMS) (W) (A) (s) (Ω) (Ω) (Ω) [mm (AWG)] RKEF 60V RKEF050 0.50 1.00 60 — 40 — 1.00 8.00 0.8
in „Batteriehalter mit unbekannten Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an-937_gateDrive.pdf
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 important factor in gate drive: the impedance of the gate drive circuit Switching 101 or Understanding the waveforms What happens if gate drive impedance
in „Gatekapazität (FET)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2240_2241.pdf
VID/PID/Language ID 28-character Manufacturer ID and Product string General Features 12-hex digit (max) Serial Number string 36-pin QFN (6x6mm) lead-free RoHS compliant package Customizable Vendor specific data LED blink interval or Targeted for applications in which single or "combo" media duration
in „USB Flash Media Controller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2240_2241.pdf
VID/PID/Language ID 28-character Manufacturer ID and Product string General Features 12-hex digit (max) Serial Number string 36-pin QFN (6x6mm) lead-free RoHS compliant package Customizable Vendor specific data LED blink interval or Targeted for applications in which single or "combo" media duration
in „Schaltplan USB2241“ · Mikrocontroller und Digitale Elektronik ·
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PDF
REN_ca3130-a_DST_20170525.pdf
= 15V, V- = 0V, Unless Otherwise Specified CA3130 CA3130A TEST PARAMETER SYMBOL CONDITIONS MIN TYP MAX MIN TYP MAX UNITS Input Offset Voltage |IO| VS= 7.5V - 8 15 - 2 5 mV Input Offset Voltage VIOT - 10 - - 10 - V/ C Temperature Drift Input Offset Current |I | V = 7.5V - 0.5 30 - 0.5 20 pA IO S
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PDF
SSD1306B_1.1.pdf
COM47 -3315 -285 33 VCC -1356.01 -352.83 113 COM10 3315 -85 193 SEG67 -139.5 356 273 COM48 -3315 -325 34 VCOMH -1266.955 -352.83 114 COM9 3315 -45 194 SEG68 -186.5 356 35 VCOMH -1206.955 -352.83 115 COM8 3315 -5 195 SEG69 -233.5 356 Padno. PadName X-pos Y-pos 36 VLSS -1125.155 -352.83 116 COM7 3315
in „OLED zeigt nur wirre Pixel am I2C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
nkat20-21.pdf
– Sortimente 0201 119 SMD - Nullohm - Widerstand 0201 Baugröße 0201 (0.6 x 0.3 x 0.2 mm) Spannung max. 50 Volt Widerstand < 50 Milliohm Temperaturbereich - 55 .... + 125 °C Strom max. 0.5 Ampere gegurtet (8mm Gurt) Best.Nr. ab 10 ab 100 ab 1000 ab 5000 ab 10.000 (=VPE) 8105/000 -.08 -.0120 -.0033 -.0019
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Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Kennlinie VDO Öltemperaturgeber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Temperatursensor Identifikation“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Siemens_NTC_Databook.pdf
spans and minimum distances have to be r observed: c Dip soldering Iron soldering i o Bath temperature max. 260 °C max. 360 °C s Soldering time max. 4 s max. 2 s Distance from thermistor min. 6 mm min. 6 mm Under more severe soldering conditions the resistance may change. 1.2 Leadless NTC thermistors In
in „Hellblauer Temperatursensor“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
EE42_core_15-z.pdf
Effective parameter Electrical characteristics Part No. C1 Ae e Ve AL-value (nH/N )∗ Core loss (W) max. Weight –1 2 3 100kHz, 200mT, (g) (mm ) (mm ) (mm) (mm ) Without air gap With air gap 100°C PC40EI12.5-Z 1.48 14.4 21.3 308 1200±25% 63±7% 0.12 1.9 100±10% 80±7% PC40EI16-Z 1.75 19.8 34.6 685 1100±25%
in „Resonanzkoverter: Tank dimensionieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SSD2119.pdf
circuit) • Output Voltages o Gate Driver: VGH-GND = 9V ~ 18V VGL-GND = -6 ~ -15V VGH-VGL = 30Vp-p max. o Source Driver: V0 – V63 = 0 – 6V max. o VCOM drive: VCOMH = 3.0V ~ 5.0V VCOML = -1.0V ~ -3.0V VCOMA = 6V max. • System Interface o 8/ 9/ 16/ 18-bit 6800-series / 8080-series Parallel Interface o
in „Display Module CFAF320240F-TS Ansteuerung --- ATMEGA 128 ---- STK600“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RC28F256J3C-125.pdf
Plane Y Side View No te : Drawing not to scale Dimensions Table Millimeters Inches Sy mbol Min Nom Max Notes Min Nom Max PackageHeight A 1.000 0.0394 BallHeight A 1 0.150 0.0059 PackageBody Thickness A 2 0.665 0.0262 Ball(Lead) Width b 0.325 0.375 0.425 0.0128 0.0148 0.0167 D 7.186 7.286 7.386 1 0.2829
in „Passender Ersatz für Intel RC28F256J3C-125“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX9271.pdf
EVALUATION KITAVAILABLE MAX9271 16-Bit GMSL Serializer with Coax or STP Cable Drive General Description Benefits and Features The MAX9271 compact serializer is designed to drive S Ideal for Camera Applications 50I coax or 100I
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PDF
Datasheet_DM00039193-490390.pdf
conditions. Table 50. I/O AC characteristics (1)(2) OSPEEDRy [1:0] Symbol Parameter Conditions Min Max Unit value (1) max(IO)out Maximum frequency (3) - 2 MHz x0 tf(IO)out Output fall time C L 50 pF - 125 ns tr(IO)out Output rise time - 125 max(IO)out Maximum frequency (3) - 10 MHz 01 tf(IO)out Output
in „STM32F05 SPI 3 Wire Verbindung mit Accelerometer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mirkonet_tmp.pdf
XC6206P502MR TOREX VREG LDO 5,0V 0,2A YES YES 0,625 0,750 3,750 Farnell SOT-23 N/A LDO 5,0V 0,2A 2% Drop max. 0,25V 2% -40/+85 N/A N/A 5,3 6 5 0,25W 8797005 10 VREG XC6206P332MR TOREX VREG LDO 3,3V 0,2A YES YES 0,554 0,665 6,648 Farnell SOT-23 N/A LDO 3,3V 0,2A 2% Drop max. 0,25V 2% -40/+85 N/A N/A 3,6 6 3,3
in „Komplettverkauf Bauteile, was wert? - Tabelle“ · Markt ·
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Datei
display_t.cpp
1]) { PBuf = SIGNAL_MAX[channel-1]; SIGNAL_MAX[channel-1] = SIGNAL_MIN[channel-1]; SIGNAL_MIN[channel-1] = PBuf; } #ifdef _Debug_QM_ //printf("channel: %d SIGNAL_MAX[channel-1] %d, SIGNAL_MIN[channel-1] %d, ixs %d, ixss %d
in „Wittig(welec) DSO W20xxA Open Source Firmware (Teil4)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
drv8811.pdf
over operating free-air temperature range (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT POWER SUPPLIES VM V Mperating supply current V M 35 V, fPWM < 50 KHz 4.5 8 mA VCC V CCoperating supply current fPWM < 50 KHz 0.4 4 mA I V sleep mode supply current V = 35 V 12 20 μA VMQ M M VCCQ
in „UV-Laserdrucker II“ · Platinen ·
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PDF
AD8253.pdf
Digital InputVoltage High Referred to GND 2.8 +VS V Digital Input Current 1 μA Gain SwitchingTime 5 325 ns t See Figure 3 timing diagram 15 ns SU tHD 30 ns tWR -LOW 20 ns tWR -HIGH 15 ns Rev. B | Page 4 of 24 Data Sheet AD8253 Parameter Conditions Min Typ Max Unit POWER SUPPLY Operating Range ±5 ±15 V
in „2 Fragen zur Verstärkerschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ca3140-a.pdf
at V = 15V, T = 25 C, Unless Otherwise Specified SUPPLY A CA3140 CA3140A PARAMETER SYMBOL MIN TYP MAX MIN TYP MAX UNITS Input Offset Voltage |VIO - 5 15 - 2 5 mV Input Offset Current |IIO - 0.5 30 - 0.5 20 pA Input Current I - 10 50 - 10 40 pA FN957 Rev.10.00 Page 3 of 24 Jul 11, 2005 CA3140, CA3140A
in „OpAmp Ausgang schwingt mit 50Hz (oder 100)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TC35_datasheet.pdf
durability 100 cycles of mating and withdrawal with a jig at 12 cycles/minute maximum Engage force 30N max Disengage force 3N min, 30N max Angle of engagement 15 degree max Mechanical stress to connector See Figure 36 for details • Stress to the housing: A and B: 4.9N max. • Stress to outer sleeve: C: 2.94N max and D: 1.96N max • Cable pull strength: E: 4.9N max Figure 36: Maximum mechanical stress to the connector The following figure illustrates the engagement/disengagement tool type P/N M22001 recommended
in „Schaltplan TC35-Modul?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm2841.pdf
(3) The maximum allowable power dissipation is a function of the maximum junction temperaJure, T (MAX), the junction-to-ambient thermal resistance, R , and the ambient temperature, T . The maximum allowable power dissipation at any ambient temperature is calculated θJA A using: PD(MAX) = (TJ(MAX)− A
in „LM2841 stirbt bei steilem Anstieg der Eingangsspannung auf 26V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1849588.pdf
00h 0x00 0Ah R/W Port Disable (Self) PDS 00h 0x00 0Bh R/W Port Disable (Bus) PDB 00h 0x00 0Ch R/W Max Power (Self) MAXPS 01h 0x00 0Dh R/W Max Power (Bus) MAXPB 32h 0x00 0Eh R/W Hub Controller Max Current HCMCS 01h 0x00 (Self) 0Fh R/W Hub Controller Max Current HCMCB 32h 0x00 (Bus) 10h R/W Power-on Time
in „[V] 2St. 7fach USB2.0 Hub Baustein Microchip/SMCS USB2517-JZX QFN64 (5€)“ · Markt ·
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PDF
1849588.pdf
00h 0x00 0Ah R/W Port Disable (Self) PDS 00h 0x00 0Bh R/W Port Disable (Bus) PDB 00h 0x00 0Ch R/W Max Power (Self) MAXPS 01h 0x00 0Dh R/W Max Power (Bus) MAXPB 32h 0x00 0Eh R/W Hub Controller Max Current HCMCS 01h 0x00 (Self) 0Fh R/W Hub Controller Max Current HCMCB 32h 0x00 (Bus) 10h R/W Power-on Time
in „[V] 2St. 7fach USB Hub Baustein Microchip/SMCS USB2517-JZX QFN64“ · Markt ·
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PDF
LED_Display_driver_chip_SSD1306_DataSheet.pdf
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
in „Spannungsversorgung Arduino läuft nicht über Vin oder 5V-Pin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LED_Display_driver_chip_SSD1306_DataSheet.pdf
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
in „SSD1306/1309 Library zum Darstellen von Text auf OLED Displays“ · Projekte & Code ·
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PDF
SSD1306.pdf
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
in „SH1106 Init-Sequenz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Solomon_Systech_LED_Display_driver_chip_SSD1306.pdf
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
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
106 NC 3315 -377.5 186 SEG60 189.5 356 266 COM41 -3315 -45 27 C1N -1762.865 -352.83 107 COM16 3315 -325 187 SEG61 142.5 356 267 COM42 -3315 -85 28 VBAT -1679.31 -352.83 108 COM15 3315 -285 188 SEG62 95.5 356 268 COM43 -3315 -125 29 VBAT -1619.31 -352.83 109 COM14 3315 -245 189 SEG63 48.5 356 269 COM44
in „SSD1306/1309 Library zum Darstellen von Text auf OLED Displays“ · Projekte & Code ·
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PDF
LG4573A_DS_V1.1.5__1_.pdf
1610 S1294 -8730 225 1685 S1369 -9855 338 1611 S1295 -8745 338 1686 S1370 -9870 225 ® (1-a) -11060 325 ® (1-b) 11060 325 1612 S1296 -8760 225 1687 S1371 -9885 338 1613 S1297 -8775 338 1688 S1372 -9900 225 1614 S1298 -8790 225 1689 S1373 -9915 338 1615 S1299 -8805 338 1690 S1374 -9930 225 1616 S1300 -
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PDF
048_Relaisschaltungen_fuer_Bastler.pdf
110 1250 3 4 111 110 1250 6 5 IV 110 1250 8 7 V 1900 5000 9 10 4.2. Flachrelais 48 Technische Daten max. Spulenbelastung 5 W max. Spannung der Kontaktfedern gegeneinander 100 V bzw. 200V Anspreehzeit 8 bis 60 ms Abfallzeit 8 bis 250 ms 4.3. Mittleres Rundrelais Technische Daten max. Spulenbelastung f,
in „Bistabilen Zustand mit einem Taster (12v dc)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
E-cap_2011.pdf
Max. 2.6 0.65 ± 0.1 1.8 ± 0.2 0.35 --- 0.20 ( E 8.0 6.5 8.3 9.5 Max. 3.4 0.65 ± 0.1 2.2 ± 0.2 0.35 + 0.15 --- 0.20 W L± 0.3 D ≥ ø8 = ±0.5 F 8.0 10.5 8.3 10.0 Max. 3.4 0.90 ± 0.2 3.1 ± 0.2 0.70 ± 0.20 (
in „TFT Monitor Elkos“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Mabuchi_Motors_Complete.pdf
0.070 6530 0.17 0.23 2.3 0.15 0.76 7.8 0.39 UNIT:MILLIMETERS DIRECTION OF ROTATION 25.5 4.9 18.9 0.2 MAX. 9.5 0.2 MAX. 1.1 1.0 (+) . . ø E . R . . ø 6 1 1 3 . 1 ø (–) 0.5 REF. 4.0 REF. 0 2 WEIGHT: 9.5g (APPROX) SU-020RA-1665 1.5V SU-020SA-1665 1.5V h I N h I N 75 3 30,000 75 3 15,000 50 2 20,000 50 2 10,000
in „12 V Motor aus der Al-ko Mover Einheit M20 Ams1“ · Fahrzeugelektronik ·
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PDF
ad7706.pdf
SCLK Only (Schmitt Triggered Input) V DD = 5 V NOMINAL V T+ 1.4/3 V min/V max V T– 0.8/1.4 V min/V max V – V 0.4/0.8 V min/V max T+ T– SCLK Only (Schmitt Triggered Input) V DD = 3 V NOMINAL V T+ 1/2.5 V min/V max V T– 0.4/1.1 V min/V max V T+– VT– 0.375/0.8 V min/V max MCLK IN
in „ADC7706 - Kommunikationsproblem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Intel_RC28fxxxj3_StrataFlash.pdf
Plane Y Side View No te : Drawing not to scale Dimensions Table Millimeters Inches Sy mbol Min Nom Max Notes Min Nom Max PackageHeight A 1.000 0.0394 BallHeight A 1 0.150 0.0059 PackageBody Thickness A 2 0.665 0.0262 Ball(Lead) Width b 0.325 0.375 0.425 0.0128 0.0148 0.0167 D 7.186 7.286 7.386 1 0.2829
in „Geschwindigkeit Flash Memory“ · 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
AMIS-30543-D.pdf
external decoupling capacitor) Supply Type 3 Table 2. ABSOLUTE MAXIMUM RATINGS Symbol Parameter Min Max Unit VBB Analog DC supply voltage (Note 1) −0.3 +40 V TST Storage temperature −55 +160 °C TJ Junction Temperature under bias (Note 2) −50 +175 °C V ESD Electrostatic discharges on component level, All
in „Puls aus Sinuswelle herausrechnen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
APPCHP7.pdf
powerdissipationhasa fixedlimitvalue (P tot max K usuallypresentedformountingbasetemperaturesof25 ˚C. is the maximum d.c. power dissipation below T ). If the mb K At higher temperatures, operating conditions must be transistor is subjected to a mounting-base
in „2N3055 , was sind aktuelle Alternativen ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
APPCHP7.pdf
powerdissipationhasa fixedlimitvalue (P tot max K usuallypresentedformountingbasetemperaturesof25 ˚C. is the maximum d.c. power dissipation below T ). If the mb K At higher temperatures, operating conditions must be transistor is subjected to a mounting-base
in „Lineares Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TL431A_432A.pdf
JA, andAT . The maximum allowable power dissipation at any allowable ambient temperature is P = (T (max) − T ). Operating at the absolute maximum T of 150°C can affect reliability. D J A JA J recommended operating conditions MIN MAX UNIT VKA Cathode voltage Vref 36 V KA Cathode current 1 100 mA TL43xxC
in „Spannung mit Bezug +Ub messen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
NCP1605-D.PDF
from 0°C to +125°C, unless otherwise specified; For NCP1605DR2G: for typical valuesJT = 25°C, for min/max valJes T = −55°C to +125°C, unless otherwise specified) (Note 7) Symbol Rating Min Typ Max Unit Gate Drive Section Trise Output Voltage Rise Time @LC = 1 nF, from 1 V to 10 V − 40 − ns T fall Output
in „Hilfe bei der Reparatur eines Schaltnetzteiles erbeten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HD66766R.PDF
324 SEG307 4142 1145 5 CEP -8398 -1168 85 IM1 1910 -1168 165 COM40 9155 -259 245 SEG386 7144 1145 325 SEG306 4104 1145 6 CEM -8298 -1168 86 GNDDUM9 2067 -1168 166 COM42 9155 -221 246 SEG385 7106 1145 326 SEG305 4066 1145 7 CEM -8198 -1168 87 IM0/ID 2223 -1168 167 COM44 9155 -183 247 SEG384 7068 1145
in „LCD-Modul F51661GNCJU-MLW-AA * Info *“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dac8512.pdf
(P Suffix) 8 5 0.280 (7.11) 9 0.240 (6.10) 1 1 4 1 – 0.070 (1.77) x 0.045 (1.15) – 0.430 (10.92) 0.325 (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)
in „µC soll Strom rausgeben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
4088fb.pdf
synchronous 4088fb 16 LTC4088 Applications Information Table 3. Recommended Inductors for the LTC4088 L MAX IDC MAX DCR SIZE IN mm INDUCTOR TYPE (µH) (A) (Ω) (L × W× H) MANUFACTURER LPS4018 3.3 2.2 0.08 3.9 × 3.9 × 1.7 Coilcraft www.coilcraft.com D53LC 3.3 2.26 0.034 5 × 5 × 3 Toko DB318C 3.3 1.55 0.070 3.8
in „[EAGLE Anfänger] Package finden oder herstellen“ · Platinen ·
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PDF
20002234D.pdf
4 N(MAX) Limit VOUT Accuracy VOUT % -3 — +3 % Includes Line and Load Regulation; V = 1.5V IN Line Regulation VOUT/VOUT) -1 0.01 1 %/V VIN= 1.5V to 3V /V | I = 25 mA IN OUT Load Regulation VOUT /VOUT| -1 0.01 1 % IOUT= 25 mA to 100 mA; V = 1.5V IN Maximum Duty Cycle DC MAX 88 90 — % Switching Frequency SW 425 500 575 kHz EN Input Logic High VIH 90 — — %of V IN IOUT= 1 mA EN Input Logic Low VIL — — 20 %of V IN IOUT= 1 mA EN Input Leakage Current I — 0.005 — µA V = 5V ENLK
in „NRF24L01+ durch MCP1640 gestört?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt32a1.pdf
JT RST CHIP MAX 0R05 1/10W TZAI YUAN ▯ R401 061G0603000 JT RST CHIP MAX 0R05 1/10W TZAI YUAN ▯ R1133 061G0603000 JT RST CHIP MAX 0R05 1/10W TZAI YUAN ▯ R1131 061G0603000 JT RST CHIP MAX 0R05 1/10W TZAI YUAN ▯ R1129
in „Philips LCD TV kein Bild aber Ton [46PFL7655K/02]“ · Haus & Smart Home ·
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PDF
INN3977CQ.pdf
winding helps reduce radiated K = K = (1 – D) x T/ t = V × (1 – D ) / ((V – V ) × D ) EMI. P DP OR MAX MIN DS MAX 4. Shield windings can also be used to improve conducted and It is recommended that a K close to 0.9 at the minimum expected DC radiated EMI margins. P bus voltage should be used for most
in „Frage zu PowerInc INN3977CQ“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TMC2209_datasheet_rev1.07.pdf
and DIR interface timing AC-Characteristics clock period is tCLK Parameter Symbol Conditions Min Typ Max Unit step frequency (at maximum f ½ f STEP CLK microstep resolution) fullstep frequency f f /512 FS CLK STEP input minimum low time tSL max(FILTSD 100 ns tCLK0) STEP input minimum high time tSH max(
in „Industrielle [3D-Drucker] Bastelgrundlagen“ · Mechanik, Gehäuse, Werkzeug ·
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PDF
ucc28c43.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 20 V (MAX ICC) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 30 mA Output current, OUT peak . . . . . . . . . . . . . .
in „SNT will nicht anlaufen - falsches TI Datenblatt?“ · Analoge Elektronik und Schaltungstechnik ·