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CY7C68016A.pdf
EP2BCL[11] Endpoint 2 Byte Count L BC7/SKIPBC6 BC5 BC4 BC3 BC2 BC1 BC0 xxxxxxxx RW E692 2 reserved E694 1 EP4BCH [11] Endpoint 4 Byte Count H 0 0 0 0 0 0 BC9 BC8 000000xx RW E695 1 EP4BCL[11] Endpoint 4 Byte Count L BC7/SKIPBC6 BC5 BC4 BC3 BC2 BC1 BC0 xxxxxxxx RW E696 2 reserved E698 1 EP6BCH [11] Endpoint
in „CY7C68013A-56pins“ · Mikrocontroller und Digitale Elektronik ·
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LG4573A_DS_V1.1.5__1_.pdf
................................................................................19 5.1.1 Write/ Re ad Cycle Sequence...................................................................................19 5.2 MIPI DB I Type C ..............................................................................
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gps-spec-IS_GPS_200J.pdf
AB1BE13E44C590CC08255280835311B5B8623EBCDC96C46B2958D 4F10D72C01B 112 P 1t+72) DEAB62046E05324EAD7498317CA46457BE5F06BC689EA4207AD66 250BA3A9F35 148 P (t+72) 0CA62C7F9AF1EB1B2AC2FE5D487E1D23555D6A5C21B1670B4AB20 37 5B7C8276C06 149 P 1t+96) 555CE90F7396574DF1632E26F61B55C70612A415035DE606C04BE 275F5AD9320 185 P37t+96) 29C54899D24E93AB9B1BC80D7DBF66422DF699452A35BD21DC0E3
in „Magisches Auge für GPS-Empfänger“ · Mikrocontroller und Digitale Elektronik ·
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AoE3_chapter9.pdf
Real-time I/O 992 13.11.1 ADE7753 multifunction ac power metering IC 943 14.1.6 Data bus 992 13.11.2 AD7873 touchscreen digitizer 944 14.2 A computer instruction set 993 13.11.3 AD7927 ADC with sequencer 945 14.2.1 Assembly language and 13.11.4 AD7730 precision machine language 993 bridge-measurement subsystem
in „Labornetzgerät - Fragen zum Schaltplan“ · Analoge Elektronik und Schaltungstechnik ·
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Switch.pdf
Ein) 108-1AS3T1173-EVX A 0.26 SPDT Ein-Aus-Ein B C 108-1AS5T1174-EVX A 0.26 SPDT Ein-Aus-(Ein) 108-1AD1T1175-EVX A 0.45 DPDT Ein-Ein .215 108-1AD2T1176-EVX A 0.45 DPDT Ein-(Ein) .50 108-1AD3T1177-EVX A 0.45 DPDT Ein-Aus-Ein .24 .346 108-1AD5T1179-EVX A 0.45 DPDT Ein-Aus-(Ein) .409 108-1A31T1280-EVX B
in „Ausfallursache Printtaster DeLonghi Kaffeeautomat?“ · Mikrocontroller und Digitale Elektronik ·
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ttester.pdf
B=764, 1.23V BC516 PNP B=75.9k, 1.21V B=76.2k, 1.20V B=76.2k, 1.20V B=760, 1.23V BC546B NPN B=285, 694mV B=427, 687mV B=427, 687mV B=369, 683mV BC556B PNP B=304, 704mV B=254, 668mV B=235, 709mV B=255, 668mV AC128 (Ge.) PNP B=63, 191mV B=59, 191mV B=57, 193mV B=43, 117mV BUL38D NPNp B= 37, 627mV B=41,
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ttester.pdf
B=764, 1.23V BC516 PNP B=75.9k, 1.21V B=76.2k, 1.20V B=76.2k, 1.20V B=760, 1.23V BC546B NPN B=285, 694mV B=427, 687mV B=427, 687mV B=369, 683mV BC556B PNP B=304, 704mV B=254, 668mV B=235, 709mV B=255, 668mV AC128 (Ge.) PNP B=63, 191mV B=59, 191mV B=57, 193mV B=43, 117mV BUL38D NPNp B= 37, 627mV B=41,
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ttester.pdf
B=764, 1.23V BC516 PNP B=75.9k, 1.21V B=76.2k, 1.20V B=76.2k, 1.20V B=760, 1.23V BC546B NPN B=285, 694mV B=427, 687mV B=427, 687mV B=369, 683mV BC556B PNP B=304, 704mV B=254, 668mV B=235, 709mV B=255, 668mV AC128 (Ge.) PNP B=63, 191mV B=59, 191mV B=57, 193mV B=43, 117mV BUL38D NPNp B= 37, 627mV B=41,
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1151463626.pdf
two feedback loops - one through the error amplifier, and one directly from the output through R aAd the transistor. M A G N E T I C S • T A P E W O U N D C O R E S • P A G E 3 0 Full-wave outputs can be handled in the same manner as the forward converter discussed earlier. The circuit of Figure 16
in „Stromwandler MBS ASK31.3 50/5A Nachbau?“ · Analoge Elektronik und Schaltungstechnik ·
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PIC16F1503.pdf
DS41607A-page 118 Preliminary 2011 Microchip Technology Inc. PIC16(L)F1503 TABLE 15-1: ADC CLOCK PERIOD (T AD ) VS . DEVICE OPERATING FREQUENCIES ADC Clock Period (T AD) Device Frequency (F OSC) ADC Clock Source ADCS<2:0> 20 MHz 16 MHz 8 MHz 4 MHz 1 MHz Fosc/2 000 100 ns (2) 125 ns(2) 250 ns(2) 500 ns(2) 2.0
in „Versorgungsspannung vom PIC mit PIC messen“ · Mikrocontroller und Digitale Elektronik ·
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ttester_110k_20140511.diff
0x6A,0x50}, // 0xAB +{0x00,0x17,0x08,0x34,0x2A,0x78}, // 0xAC +{0x00,0x00,0x30,0x7D,0x30,0x00}, // 0xAD +{0x00,0x08,0x14,0x00,0x08,0x14}, // 0xAE +{0x00,0x14,0x08,0x00,0x14,0x08}, // 0xAF +{0x44,0x11,0x44,0x11,0x44,0x11}, // 0xB0 +{0xAA,0x55,0xAA,0x55,0xAA,0x55}, // 0xB1 +{0xBB,0xEE,0xBB,0xEE,0xBB,0xEE
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Datenblatt_PIC12F1822.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „PIC12F1822-PWM Mode“ · Mikrocontroller und Digitale Elektronik ·
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Datenblatt_PIC12F1822.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „Interrupt-PIC12F1822“ · Mikrocontroller und Digitale Elektronik ·
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12F1822_1823.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „Auflösung PWM-Mode“ · Mikrocontroller und Digitale Elektronik ·
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12F1822_1823.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „8Bits und 2Bits in eine Integer-Variable“ · Mikrocontroller und Digitale Elektronik ·
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12F1822_1823.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „Timer2 auf 10bit einstellen“ · Mikrocontroller und Digitale Elektronik ·
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PIC12FLF1822PIC16FLF1823.pdf
s1,4) Legend: Shaded cells are outside of recommended range. Note 1: The FRC source has a typicalAD time of 1.6 s forDD. 2: These values violate the minimum requiredAD time. 3: For faster conversion times, the selection of another clock source is recommended. 4: The ADC clock period (TAD) and total
in „PIC16lf1823 General purpose I/Os mit Schmitt Trigger ?“ · Mikrocontroller und Digitale Elektronik ·
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KSZ8851SNL.pdf
0xA8 0xA8 0xA8 - 0xA9 0xA9 to Reserved Don’t Care None 0xAB 0xAA - 0xAB 0xAA 0xAB 0xAC 0xAC 0xAC - 0xAD to 0xAD Reserved Don’t Care None 0xAE 0xAF 0xAE - 0xAF 0xAF DS00002381C-page 36 2017-2021 Microchip Technology Inc. KSZ8851SNL/SNLI TABLE 4-1: INTERNAL I/O REGISTERS SPACE MAPPING (CONTINUED) I/O Register
in „KSZ8851 Ethernet komplizierte Frage.“ · Mikrocontroller und Digitale Elektronik ·
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HX8352-A.pdf
7487 271 633 G130 6527 271 693 G10 5567 271 514 G368 8431 393 574 G248 7471 393 634 G128 6511 393 694 G8 5551 393 515 G366 8415 271 575 G246 7455 271 635 G126 6495 271 695 G6 5535 271 516 G364 8399 393 576 G244 7439 393 636 G124 6479 393 696 G4 5519 393 517 G362 8383 271 577 G242 7423 271 637 G122 6463
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PIC16F18344.pdf
Technology Inc. Preliminary DS40001800A-page 233 PIC16(L)F18324/18344 TABLE 21-1: ADC CLOCK PERIOD (T AD ) V S. DEVICE OPERATING FREQUENCIES ADC Clock Period (T AD ) Device Frequency (F OSC ) ADC Clock Source ADCS<2:0> 32 MHz 20 MHz 16 MHz 8 MHz 4 MHz 1 MHz FOSC /2 000 62.5ns (2) 100 ns (2) 125 ns (2) 250
in „EEPROM Verständnisproblem beim PIC 16F18344“ · Mikrocontroller und Digitale Elektronik ·
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devlist.txt
------------------------------------------------------------------- 1220AB . . . . .1) 5718 D1 1220AD . . . . .1) 5719 D1 1220Y . . . . . .1) 5720 D1 1225AB . . . . .1) 5721 D1 1225AD . . . . .1) 5722 D1 1225D . . . . . .1) 5723 D1 1225E . . . . . .1) 5724 D1 1225Y . . . . . .1) 5725 D1 1230AB . . .
in „PROM lesen /schreiben / Programmiergerät“ · Mikrocontroller und Digitale Elektronik ·
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PIC16F1939.pdf
2017 Microchip Technology Inc. DS40001574D-page 145 PIC16(L)F1938/9 TABLE 15-1: ADC CLOCK PERIOD (T AD ) V S. DEVICE OPERATING FREQUENCIES ADC Clock Period (T AD) Device Frequency (F OSC) Device Frequency (F OSC) ADC Clock Source ADCS<2:0> 32 MHz 20 MHz 16 MHz 8 MHz 4 MHz 1 MHz Fosc/2 000 62.5ns(2) 100
in „MPLAB delay und xtalfreq richtig benutzen“ · Mikrocontroller und Digitale Elektronik ·
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Bestandsliste.pdf
142Stk 3,66 € 519,37 € 396 BB1F Diode 30Stk 0,22 € 6,53 € 397 SF64G Diode 6A 200V Superschnell DO201AD 3Stk 0,27 € 0,82 € 398 70HF80 Diode 70A 800V An.am Gew.1/4"28UNF 9Stk 4,18 € 37,64 € 399 AA138 Diode Ge TV Demodulator 15V 20mA 23Stk 0,13 € 2,88 € 400 AA118 Diode Ge Uni 115V 50mA 16Stk 0,16 € 2,56
in „Auflösung Elektronik Shop“ · Markt ·
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openocd_log.txt
at91sam4.c:1454 efc_get_status(): Status: 0x00000000 (lockerror: 0, cmderror: 0, ready: 0) Debug: 694 3170 target.c:2600 target_read_u32(): address: 0x400e0a08, value: 0x00000000 Debug: 695 3170 at91sam4.c:1454 efc_get_status(): Status: 0x00000000 (lockerror: 0, cmderror: 0, ready: 0) Debug: 696 3185
in „OpenOCD sehr langsam beim flashen“ · Mikrocontroller und Digitale Elektronik ·
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technical.pdf
f is frequency. The side arm displacement of the reference planes from the center lines is: d2= D aD ·b(0.5 − R· (0.05 + 0.7· exp(−1.6·R) + 0.25·Q − 0.17· lnR)) (12.222) The length of the line in the side arm is: L2= 0.5·max(W ,W )a− db 2 (12.223) where max(x,y) is the larger of the both quantities,
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MPASM__MPLINK__MPLIB_User_s_Guide.pdf
1000190000284068A8E8C82868A989EA28086ABFAA :10002900E0E82868BFE8C8080808034303E8E8FFD0 :03003900FFFF19AD :00000001FF file_name.hxh :0A0000000000000000000000000000F6 :1000190000000000000000010101010102020202CA :100029000202030303030304040404050607070883 :0300390008080AAA :00000001FF 1.7.5.3 INTEL HEX 32
in „Anfängerfrage zu Assembler“ · Mikrocontroller und Digitale Elektronik ·
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Ultraschallotrungssystem_Lego_Mindstorms.pdf
DS_SERIAL_NOHANDLER }; void ds_serial_bithandler() { unsigned channel = ds_channel; unsigned raw = (*((&AD_A)+channel)); if (ds_serial_bitcount[channel] == 0) { if (raw>=DS_SERIAL_THRESHOLD) ds_serial_bitcount[channel] = 8; else ds_serial_sequence[channel]=0; } else { ds_serial_data[channel] = (ds_serial_data
in „Ortung mittels Ultraschall - Projektvorstellung / Hilfegesuch“ · Mikrocontroller und Digitale Elektronik ·
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mindstorms.pdf
DS_SERIAL_NOHANDLER }; void ds_serial_bithandler() { unsigned channel = ds_channel; unsigned raw = (*((&AD_A)+channel)); if (ds_serial_bitcount[channel] == 0) { if (raw>=DS_SERIAL_THRESHOLD) ds_serial_bitcount[channel] = 8; else ds_serial_sequence[channel]=0; } else { ds_serial_data[channel] = (ds_serial_data
in „Suche Transreceiver Ultraschallkapseln mit 80° Detektionswinkel“ · Mikrocontroller und Digitale Elektronik ·
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Read_Save_CMU_Config_Experiments.txt
1.152 -1.087 -1.115 0 75: 34 -1.102 -1.038 -1.060 0 76: 35 -1.018 -0.923 -0.953 0 77: 36 -0.851 -0.694 -0.742 0 78: 37 -0.517 -0.234 -0.318 0 79: 38 0.152 0.683 0.533 0 80: 39 1.491 2.521 2.242 0 81: 40 4.171 6.191 5.646 0 82: 41 9.521 13.541 12.492 0 83: 42 20.201 28.201 26.107 0 84: 60 -0.055 0.315
in „Option B41 bei einer CMU200 nachrüsten.“ · HF, Funk und Felder ·
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Datei
Read_Save_CMU_Config_Experiments.txt
1.152 -1.087 -1.115 0 75: 34 -1.102 -1.038 -1.060 0 76: 35 -1.018 -0.923 -0.953 0 77: 36 -0.851 -0.694 -0.742 0 78: 37 -0.517 -0.234 -0.318 0 79: 38 0.152 0.683 0.533 0 80: 39 1.491 2.521 2.242 0 81: 40 4.171 6.191 5.646 0 82: 41 9.521 13.541 12.492 0 83: 42 20.201 28.201 26.107 0 84: 60 -0.055 0.315
in „Option B41 bei einer CMU200 nachrüsten.“ · HF, Funk und Felder ·
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DM00031020.pdf
24.9.3 CAN mailbox registers . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 694 24.9.4 CAN filter registers . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 701 24.9.5 bxCAN register map . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
in „fsmc am stm32f4“ · Mikrocontroller und Digitale Elektronik ·
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r_manuel.pdf
24.9.3 CAN mailbox registers . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 694 24.9.4 CAN filter registers . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 701 24.9.5 bxCAN register map . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
in „Hilfe bei Programmierung STM32F407VG bei TIM1“ · Mikrocontroller und Digitale Elektronik ·
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DM00043574.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 694 Figure 265. Counter timing diagram, update event when ARPE=1 (TIMx_ARR preloaded). . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 694 Figure 266. Update rate examples depending on mode and TIMx_RCR register settings . . . . . . . . . 696 Figure 267. Control circuit in normal mode, internal clock divided by 1. . . . . . . . . . . .
in „STM32F3 Discovery als USB Keyboard“ · Mikrocontroller und Digitale Elektronik ·
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id_vrla_handbook_e.pdf
additional charge after the battery is fully is load current. Consideration should be given to secure ad- charged. Continued overcharging shortens the battery life. equate charging because, in fact, load current is not constant Fig. 6 Relation between standard voltage value in constant 2.6 Select a charge
in „Bleiakku richtig lagern“ · Analoge Elektronik und Schaltungstechnik ·
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DM00135183.pdf
23.4.1 FMPI2C block diagram . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 694 23.4.2 FMPI2C clock requirements . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 695 23.4.3 Mode selection . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .
in „STM32F446 FMP I2C kein Open Drain möglich?!“ · Mikrocontroller und Digitale Elektronik ·
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HBD855-D_Thyristor_Theory.pdf
levels. 8 19 1.25 7 0.687 Although they are more expensive and difficult to design, 9 19 1.25 8.4 0.694 there is less power loss with inductor ballasting as well as 10 16 1.25 6.9 0.679 other benefits. The degree of peak current sharing is shown in LINE SYNCHRONIZED DRIVE CIRCUIT Figure 5.27 for four
in „Ansteuerschaltung Thyristor und Triac“ · Analoge Elektronik und Schaltungstechnik ·