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MCP1640.pdf
+25°C. Boldface specifications apply over the T range of -40 C to +85 C. A Parameters Sym Min Typ Max Units Conditions PMOS Switch ON Resistance RDS(ON)P — 0.9 — V IN= 3.3V,SW = 100 mA NMOS Peak Switch Current N(MAX) 600 850 — mA Note 5 Limit V Accuracy V % -3 — +3 % Includes Line and Load OUT OUT
in „ESP32-C6 an 18650 Akku betreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sla7024m.pdf
Figure 3 illustrates output current as a function of current-sensing resistance (R ). S 3.0 SLA7026M MAX. S2.5 R R1= 510 Ω P M2.0 R2= 100 Ω A RX= ∞ i Vb= 5 V N R1.5 R C I SLA7024M & SMA7029M MAX. R1.0 T U T O0.5 0 0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 CURRENT-SENSING RESISTANCE in OHMS Dwg. GK-014 FIGURE 3
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A300_25AA640A_25LC640A-MIC.pdf
P, SN, ST, MS, MF, MNY 25AA640A 1.8-5.5V 32 Byte I P, SN, ST, MS, MF, MNY Features: Description: • Max. Clock 10 MHz The Microchip Technology Inc. 25AA640A/25LC640A • Low-Power CMOS Technology (25XX640A ) are 64 kbit Serial Electrically Erasable PROMs. The memory is accessed via a simple Serial - Max
in „SPI funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LUWW5AM-KYLX-6P7Q.pdf
260˚C -5˚C T 250 255˚C 245˚C ±5˚C 240˚C +5˚C 235˚C -0˚C 217˚C 200 10smin 30smax RampDown 150 6K/s (max) 120s max 100smax 100 RampUp 50 3K/s (max) 25˚C 0 0 50 100 150 200 250 s 300 t Anm.: Das Gehäuse ist für Ultraschallreinigung nicht geeignet Note: Package not suitalbe for ultra sonic cleaning 2007-
in „LED-Beleuchtung: Warmweiß oder Kaltweiß?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TC4420.pdf
H1 Q b e3 e1 E e EJECTOR PIN ØP a (5X) C1 J1 A F D Units INCHES* MILLIMETERS Dimension Limits MIN MAX MIN MAX Lead Pitch e .060 .072 1.52 1.83 Overall Lead Centers e1 .263 .273 6.68 6.93 Space Between Leads e3 .030 .040 0.76 1.02 Overall Height A .160 .190 4.06 4.83 Overall Width E .385 .415 9.78 10.54
in „Peltier-Driver Flyback-Diode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CLC_Configurable_Logic_Cell_Tips__n_Tricks.pdf
(between V and V ). On many devices, problem of a signal floating in the undefined region of a IN0max IN1min normal input pin. The comparator is set up to sample these values can be significantly far apart, as digital and hold the input signal precisely at the bias point electronics are designed to
in „Funktionsgenerator, NCO, PIC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
70599B.pdf
GHz Parameters Condition Min Typ Max Units RF Input FrequencyCompatible to 2.405 — 2.480 GHz IEEE Std. 802.15.4™, 2003 RF Sensitivity — -102 — dBm Maximum RF Input -23 — — dBm LO Leakage Measured at Balun Matching — -60 — dBm Network Input
in „AVR32UC3B mit Funkmodul MRF24J40MB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP73832T.pdf
= -40°C to +85°C. Typical values are at +25°DD = [REG (typical) + 1.0V] Parameters Sym. Min. Typ. Max. Units Conditions Supply Input Supply Voltage VDD 3.75 — 6 V Supply Current I — 510 1500 µA Charging SS — 53 200 µA Charge Complete, No Battery — 25 50 µA PROG Floating — 1 5 µA VDD < (BAT - 50 mV)
in „LiPo-Charger mit MCP73832T“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MGA-62563__AV02-1237EN_.pdf
= 5OΩ,V = 3V (unldss otherwise specified) Symbol ParametersandTestConditions Freq Units Min. Typ. Max. StdDev Id [1,2] Device Current mA 47 62 77 2.09 NF test[1,2 Noise Figure in test circuit [1] f = 0.5 GHz dB 0.93 1.4 0.06 [1,2] [1] G test Associated Gain in test circuit f = 0.5 GHz dB 20.4 22 23.4
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PDF
MCP73831-2_ENG_TDS.pdf
= -40°C to +85°C. Typical values are at +25°DD = [REG (typical) + 1.0V] Parameters Sym. Min. Typ. Max. Units Conditions Supply Input Supply Voltage VDD 3.75 — 6 V Supply Current I — 510 1500 µA Charging SS — 53 200 µA Charge Complete, No Battery — 25 50 µA PROG Floating — 1 5 µA VDD < (BAT - 50 mV)
in „LiPo-IC MCP73831 kennt keine Ladeschlussspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
33963.pdf
2.468E+03 1.76 0.518 34 52 3.514E+02 3.02 1.924 0F 15 2.344E+03 1.80 0.555 35 53 3.338E+02 3.05 1.961 10 16 2.227E+03 1.83 0.592 36 54 3.171E+02 3.09 1.998 11 17 2.116E+03 1.86 0.629 37 55 3.013E+02 3.12 2.035 12 18 2.010E+03 1.90 0.666 38 56 2.862E+02 2.15 2.072 13 19 1.909E+03 1.93 0.703 39 57 2.719E
in „[V] 2St Dallas DS1633 Ladechip TO220 3 Pin für“ · Markt ·
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Mikrophon__Invensense_.pdf
with no sensitivity degradation. B O 1Protected by U.S. Patents 7,449,356; 7,825,484; 7,885,423; 7,961,897. Otherpatents are pending. Information furnished by Analog Devices is believed to be accurate and reliable. However, no rightsofthirdpartiesthatmayresultfromitsuse.Specificationssubjecttochangewithoutnotice.No
in „Ungewöhnliches SMD-Pad“ · Platinen ·
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PDF
MCP73811_2.pdf
= -40°C to +85°C. Typical values are at +25°DD = [REG (typical) + 1.0V] Parameters Sym. Min. Typ. Max. Units Conditions Supply Input Supply Voltage VDD 3.75 — 6 V Supply Current I — 510 1500 µA Charging SS — 53 200 µA Charge Complete, No Battery — 25 50 µA PROG Floating — 1 5 µA VDD < (BAT - 50 mV)
in „Hackbarer(?) 21 EUR Quadcopter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP_73831.pdf
= -40°C to +85°C. Typical values are at +25°DD = [REG (typical) + 1.0V] Parameters Sym. Min. Typ. Max. Units Conditions Supply Input Supply Voltage VDD 3.75 — 6 V Supply Current I — 510 1500 µA Charging SS — 53 200 µA Charge Complete, No Battery — 25 50 µA PROG Floating — 1 5 µA VDD < (BAT - 50 mV)
in „LiPo-IC MCP73831 kennt keine Ladeschlussspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
23810294.pdf
LUG02A 4.7K 2 % 3984 K 0.5 % RESISTANCE TEMPERATURE CHARACTERISTICS TEMP. RESISTANCE R/R T Rmin. R max. (°C) R (T) 25 () (%) (%/K) (K) () () - 40 33.43 157 109 3.90 - 6.63 0.59 150 982 163 236 - 35 24.13 113 422 3.72 - 6.41 0.58 109 206 117 638 - 30 17.61 82 782 3.54 - 6.19 0.57 79 851 85714 - 25
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studie-energiebilanz-nuklearindustrie-kurzfassung.pdf
Treibhausgasintensität der nuklearen Brennstoffkette – Vergleich der Bandbreiten verschiedener Studien (Min – Max) nach Sovacool (2008) 3 Ziel und Methodik der Energiebilanz Nuklear (EBN-Modell) Da die in der Literatur vorgefundenen Daten nicht den Detaillierungsgrad aufweisen, der zur Beantwortung der Forschungsfragen
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PDF
catalog.pdf
Battery Management [Desc]: Linear Charge Management Li-Ion/Li-Pol 500mA 4.1V 8-Pin HVSSOP EP Tube MPN: MAX1811ESA+ [ID]: 000284 [Price]: 2.46 USD [QTY]: 30 [Category]: Battery Management [Desc]: MAX1811 Series 6.5 V Single Cell Linear SMT Battery Charge Controller - SOIC-8 MPN: MAX712CPE+ [ID]: 000298 [Price
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PDF
catalog.pdf
Battery Management [Desc]: Linear Charge Management Li-Ion/Li-Pol 500mA 4.1V 8-Pin HVSSOP EP Tube MPN: MAX1811ESA+ [ID]: 000284 [Price]: 2.46 USD [QTY]: 30 [Category]: Battery Management [Desc]: MAX1811 Series 6.5 V Single Cell Linear SMT Battery Charge Controller - SOIC-8 MPN: MAX712CPE+ [ID]: 000298 [Price
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PDF
catalog-3.pdf
Battery Management [Desc]: Linear Charge Management Li-Ion/Li-Pol 500mA 4.1V 8-Pin HVSSOP EP Tube MPN: MAX1811ESA+ [ID]: 000284 [Price]: 3.3899 USD [QTY]: 30 [Category]: Battery Management [Desc]: MAX1811 Series 6.5 V Single Cell Linear SMT Battery Charge Controller - SOIC-8 MPN: MAX712CPE+ [ID]: 000298
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PDF
40146F.pdf
0°C to +70°C Industrial(I):Tamb = -40°C to BSEL = 0 BSEL = 1 +85°C Symbol Characteristic Min Typ. Max. Min. Typ. Max. Units TE Basic pulse element 260 400 620 130 200 310 μs TBP PWM bit pulse width 3 3 TE TP Preamble duration 28 28 TE TS Sync Pulse duration 10 10 TE TH Header duration 10 10 TE THOP
in „Fehlersuche Funksender Zentralverriegelung Toyota Yaris“ · Fahrzeugelektronik ·
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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
B1nn.pdf
Devices in the 5-lead SOT-23 and SC-70 packages. • Low-Power CMOS Technology: - Read current 1 mA, max. Package Types - Standby current 1 μA, max. (I-temp) PDIP, MSOP SOIC, TSSOP 2 • 2-Wire Serial Interface, I C™ Compatible A0 1 8 V CC • Schmitt Trigger inputs for Noise Suppression A0 1 8 VCC A1 2 7
in „IPL Lampe Blitzcounter rücksetzten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Microchip_AppNote_00994a.pdf
Current Power Factor Frequency Permission Error (cosφ) (Hz) Change (%) #1 0.05B 0.065 B 1.0 ±0.5 0.046 max 0.000 49 0.1B -0.016 I 0.5L ±0.7 -0.014 B max -0.034 0.05B 0.121 B 1.0 ±0.5 0.067 max 0.054 0.1I 51 0.056 b B 0.5L ±0.7 0.042 max 0.026 Note: Reference Voltage: 220V Current (B): 10A Reference Frequency
in „Strom 10A bis 300A messen mit Tiny26“ · Mikrocontroller und Digitale Elektronik ·
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PDF
51292S.pdf
................30 V PIC18F85J90 ...........................................................30 Vdd Max ............................................................... ,29 PIC18F86J10 ...........................................................30 Vddcore Max ............................................
in „PIC18F877 ICD2 bzw Brenner gesucht :-(“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DA-Converter.pdf
LJ & LCJ 4 8 8 bits ≤+10V LCN, LCWM & 8 8 bits LCV Gain Error Max Using Internal R 7 ±0.2 ±1 ± 1 % FS fb −10V≤V REF≤+10V Gain Error Tempco Max Using internalfb 0.0002 0.0006 % 3 www.national.com 2 8 0 Electrical Characteristics (Continued) C V REF=10.000 V DCunless
in „Problem mit DA-Wandler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an-978.pdf
” The minimum bootstrap capacitor value can be calculated from the following equation: 2 2 Q + Iqb(max)+Q +ls ICb( le)k ⎢ f f ⎥ C ≥ ⎣ ⎦ Vcc− V f− V LS−V Min where: Q g Gate charge of high-side FET f = frequency of operation ICbs (leak)ootstrap capacitor leakage current Iqbs (max)Maximum V BS quiescent
in „Isolierter High-Side Mosfet Treiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ir2110-app-note.pdf
” The minimum bootstrap capacitor value can be calculated from the following equation: 2 2 Q + Iqb(max)+Q +ls ICb( le)k ⎢ f f ⎥ C ≥ ⎣ ⎦ Vcc− V f− V LS−V Min where: Q g Gate charge of high-side FET f = frequency of operation ICbs (leak)ootstrap capacitor leakage current Iqbs (max)Maximum V BS quiescent
in „[Transistor Ansteuerung] Ausgang kein Rechteck?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an-978.pdf
” The minimum bootstrap capacitor value can be calculated from the following equation: 2 2 Q + Iqb(max)+Q +ls ICb( le)k ⎢ f f ⎥ C ≥ ⎣ ⎦ Vcc− V f− V LS−V Min where: Q g Gate charge of high-side FET f = frequency of operation ICbs (leak)ootstrap capacitor leakage current Iqbs (max)Maximum V BS quiescent
in „high-side gate driver mit LT-Spice simulieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an-978.pdf
” The minimum bootstrap capacitor value can be calculated from the following equation: 2 2 Q + Iqb(max)+Q +ls ICb( le)k ⎢ f f ⎥ C ≥ ⎣ ⎦ Vcc− V f− V LS−V Min where: Q g Gate charge of high-side FET f = frequency of operation ICbs (leak)ootstrap capacitor leakage current Iqbs (max)Maximum V BS quiescent
in „Halbbrücke Gate-Treiber Erklärung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an-978.pdf
” The minimum bootstrap capacitor value can be calculated from the following equation: 2 2 Q + Iqb(max)+Q +ls ICb( le)k ⎢ f f ⎥ C ≥ ⎣ ⎦ Vcc− V f− V LS−V Min where: Q g Gate charge of high-side FET f = frequency of operation ICbs (leak)ootstrap capacitor leakage current Iqbs (max)Maximum V BS quiescent
in „H-Brücke mit 100% Duty-Cycle“ · Analoge Elektronik und Schaltungstechnik ·
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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
24LC256_32k_I2C-EEPROM.pdf
(SOIC) E E1 p D 2 B n 1 h α 45° c A2 A φ β L A1 Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .050 1.27 Overall Height A .053 .061 .069 1.35 1.55 1.75 Molded Package Thickness A2 .052 .056 .061 1.32 1.42 1.55 Standoff § A1 .004 .007 .010 0.10 0.18 0.25
in „immer noch EEprom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NTCLE100E-SERIES_ENG_TDS.pdf
H2 I H 1 L 0 - 40 0 55 85 125 150 P d Tamb(°C) Note • Zero power is considered as measuring power max. 1 % of max. power. PHYSICAL DIMENSIONS FOR RELEVANT TYPE (all dimensions in millimeters) H1 R25VALUE BMAX. d H2 MAX. L P T MAX. MIN. MAX. 3.3 to 220 5.0 0.6 ± 0.06 1.0 4.0 6.0 24 ± 1.5 2.54 4.0
in „Gaggenau Backofen NTC-Luftfühler defekt“ · Haus & Smart Home ·
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PDF
NTCLE100E-SERIES_ENG_TDS.pdf
H2 I H 1 L 0 - 40 0 55 85 125 150 P d Tamb(°C) Note • Zero power is considered as measuring power max. 1 % of max. power. PHYSICAL DIMENSIONS FOR RELEVANT TYPE (all dimensions in millimeters) H1 R25VALUE BMAX. d H2 MAX. L P T MAX. MIN. MAX. 3.3 to 220 5.0 0.6 ± 0.06 1.0 4.0 6.0 24 ± 1.5 2.54 4.0
in „Defekt bei Sentiotec Sauna/Infrarotkabinen-Steuerung“ · Haus & Smart Home ·
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PDF
MCP73837.pdf
= -40°C to +85°C. Typical values are at +25= [VV (typical) + 1.0V] A DD REG Parameters Sym Min Typ Max Units Conditions USB-Port Fast Charge Current REG 80 90 100 mA PROG2 = Low 400 450 500 mA PROG2 = High TA=-5°C to +55°C Maximum Output Current Limit MAX — 1200 — mA PROG1 < 833Ω Precondition Current
in „Verständnissfrage - MCP73837“ · 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
0A1E438Cd01_batterypower_appnote.PDF
µF Ceramic Load VOUT C OUT 1 µF Ceramic MCP1702 Selected Product Specifications: Linear Regulators Max. Typical Typical Dropout Device Input Output Output Current Active Voltage @Max. Features Packages Voltage Voltage (V) (mA) Current (μA) OUT(mV) TC1016 6.0 1.8-3.0 80 50 150 Shutdown 5-pin SC-70 TC1017
in „mit Akku Microcontroller versorgen, 3,6V auf 5V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EEPROM.pdf
(SOIC) E E1 p D 2 B n 1 h α 45° c A2 A φ β L A1 Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .050 1.27 Overall Height A .053 .061 .069 1.35 1.55 1.75 Molded Package Thickness A2 .052 .056 .061 1.32 1.42 1.55 Standoff § A1 .004 .007 .010 0.10 0.18 0.25
in „EEPROM auslesen (24xx256) mit Pic16f819, an PC über RS232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CD_DS_SCD4x_Datasheet_D1.pdf
power_down command. 2. The I C master sends a measure_single_shot command and waits for the indicated max. command duration time. 3. The I C master reads out data with the read_measurement command (3.6.2) after the specified max. command duration time. 4. Repeat steps 2–3 as required by the application.
in „Review: USB→LT1763-3.3 V + SCD41-D-R2 (I²C), Funduino (ATMEGA2560)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an-978.pdf
ambient temperature can be calculated (and vice-versa) from the following expression: T = T - PD × R A,max J,max th,JA where R th,JAs the thermal resistance from die to ambient. The following example shows a typical breakdown of losses for two IRF830s in a half-bridge, from a 400 V rail, 100 kHz, no load
in „Treiber-IC Peripherie berechnen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
rd70hvf1c.pdf
CHARACTERISTICS (Tc=25°C , UNLESS OTHERWISE NOTED) LIMITS UNIT SYMBOL PARAMETER CONDITIONS MIN TYP MAX. DSS Zero gate voltage drain current Vds=17VGS=0V - - 300 uA GSS Gate to source leak current Vgs=10V, V DS=0V - - 5 uA VTH Gate threshold voltage Vds=12V, IDS=1mA 1.6 2.0 2.4 V Pout Output power f=175MHz
in „HF Transistoren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
12f1840_programming_41439A.pdf
stated) AC/DC CHARACTERISTICS Operating Temperature -40°C T+85°C Sym. Characteristics Min. Typ. Max. Units Conditions/Comments Supply Voltages and Currents VDD VDD PIC12F1840 2.1 — 5.5 V Read/Write and Row Erase PIC16F1847 operations PIC12LF1840 2.1 — 3.6 V PIC16LF1847 PIC12F1840 2.7 — 5.5 V Bulk
in „PIC16LF1847 flashen mit ATmega / USBasp / Arduino Nano / ponyser?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD7718B.pdf
) 2 SCLK Only (Schmitt-Triggered Input) V T(+) 1.4/2 V min/V max DV DD = 5 V V 0.8/1.4 V min/V max DV = 5 V T(–) DD V T(+) VT(–) 0.3/0.85 V min/V max DV DD = 5 V V T(+) 0.95/2 V min/V max DV DD = 3 V V T(–) 0.4/1.1 V min/V max DV DD = 3 V V –V 0.3/0.85 V min/V max
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PDF
AD7718_16Bit_SPI_AD-Wandler.pdf
) 2 SCLK Only (Schmitt-Triggered Input) V T(+) 1.4/2 V min/V max DV DD = 5 V V 0.8/1.4 V min/V max DV = 5 V T(–) DD V T(+) VT(–) 0.3/0.85 V min/V max DV DD = 5 V V T(+) 0.95/2 V min/V max DV DD = 3 V V T(–) 0.4/1.1 V min/V max DV DD = 3 V V –V 0.3/0.85 V min/V max
in „[V] Verschiedene SMD-IC's“ · Markt ·
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PDF
93LC46.pdf
mil (PDIP) E1 D 2 n 1 α E A2 A L c A1 β B1 eB p B Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch p .100 2.54 Top to Seating Plane A .140 .155 .170 3.56 3.94 4.32 Molded Package Thickness A2 .115 .130 .145 2.92 3.30 3.68 Base to Seating Plane A1 .015 0.38 Shoulder
in „Probleme mit SPI EEPROM“ · Mikrocontroller und Digitale Elektronik ·
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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
mcp23008.pdf
mil (PDIP) E1 D 2 α n 1 E A2 A c L A1 B1 β B p eB Units INCHES* MILLIMETERS Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 18 18 p Pitch .100 2.54 Top to Seating Plane A .140 .155 .170 3.56 3.94 4.32 Molded Package Thickness A2 .115 .130 .145 2.92 3.30 3.68 Base to Seating Plane A1 .015 0.38
in „MCP23008 Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
P14067EJ2V0DS00.pdf
Tstg –65 to +125 °C RECOMMENDED OPERATING CONDITIONS (T = +25°C) A Characteristics Symbol MIN. TYP. MAX. Unit Drain to Source Voltage VDS 1 2 3 V Drain Current I 5 10 15 mA Input Power P in – – 0 dBm The information in this document is subject to change without notice. Before using this document, please
in „Vorverstärker für magnetische Loop“ · HF, Funk und Felder ·
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PDF
PIC_Memory_Programming_Specification.pdf
TABLE 5-1: CHECKSUM COMPUTATIONS – PIC12F508 (1) 0x723 at 0 Device Code-Protect Checksum* Blank and Max Value Address PIC12F508 OFF SUM[0x000:0x1FE] + CFGW & 0x01F 0xEE20 0x0C68 ON SUM[0x00:0x3F] + CFGW & 0x01F + SUM_ID 0xEDF7 0xD363 Legend: CFGW = Configuration Word SUM[a:b] = [Sum of locations a to
in „Programm aus PIC12F508 laden und verstehen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MCP73831.pdf
VIEW TOP VIEW EXPOSED A1 A TIE BAR A3 (NOTE 3) Units INCHES MILLIMETERS * Dimension Limits MIN NOM MAX MIN NOM MAX Number of Pins n 8 8 Pitch e .020 BSC 0.50 BSC Overall Height A .031 .035 .039 0.80 0.90 1.00 Standoff A1 .000 .001 .002 0.00 0.02 0.05 Contact Thickness A3 .008 REF. 0.20 REF. Overall Length
in „Akku Ladetechnik“ · Mikrocontroller und Digitale Elektronik ·