·Ive been working with Windows CE for almost as long as its been in existence. A Windows programmer for many years, Im amazed by the number of different, typically quite small, systems to which I can a
Abstract: Class D amplifiers are typically very efficient, making them ideal candidates for portable applications that require longbattery life and low thermal dissipation. However, electromagnetic interference (EMI) is an issue that commonly accompanies theClass D switching topology. Active-emissions limiting reduces radiated emissions and enables "filterless" operation, allowingdesigners to create small, efficient portable applications with low EMI.
Photodiodes can be broken into two categories: largearea photodiodes with their attendant high capacitance(30pF to 3000pF) and smaller area photodiodes withrelatively low capacitance (10pF or less). For optimalsignal-to-noise performance, a transimpedance amplifi erconsisting of an inverting op amp and a feedback resistoris most commonly used to convert the photodiode currentinto voltage. In low noise amplifi er design, large areaphotodiode amplifi ers require more attention to reducingop amp input voltage noise, while small area photodiodeamplifi ers require more attention to reducing op amp inputcurrent noise and parasitic capacitances.
Most circuit designers are familiar with diode dynamiccharacteristics such as charge storage, voltage dependentcapacitance and reverse recovery time. Less commonlyacknowledged and manufacturer specifi ed is diode forwardturn-on time. This parameter describes the timerequired for a diode to turn on and clamp at its forwardvoltage drop. Historically, this extremely short time, unitsof nanoseconds, has been so small that user and vendoralike have essentially ignored it. It is rarely discussed andalmost never specifi ed. Recently, switching regulator clockrate and transition time have become faster, making diodeturn-on time a critical issue. Increased clock rates aremandated to achieve smaller magnetics size; decreasedtransition times somewhat aid overall effi ciency but areprincipally needed to minimize IC heat rise. At clock speedsbeyond about 1MHz, transition time losses are the primarysource of die heating.
Linear Technology’s high performance battery management ICsenable long battery life and run time, while providing precision charging control, constantstatus monitoring and stringent battery protection. Our proprietary design techniques seamlesslymanage multiple input sources while providing small solution footprints, faster charging and100% standalone operation. Battery and circuit protection features enable improved thermalperformance and high reliability operation.
精確度0.05%滿刻度±1位數(shù)(Accuracy 0.05%F.S.±1digit) 可測(cè)量交直流電流/交直流電壓/電位計(jì)/傳送器/Pt-100/荷重元/電阻等信號(hào)(Measuring DCA/DCV/ACA/ACV/Potentiometer/Transmitter/Pt-100/Load Cell/Resistor/etc……) 顯示范圍0-19999可任意規(guī)劃(Programmable rate 0 to 1999 digit) 小數(shù)點(diǎn)可任意規(guī)劃(Decimal point can be modified) 尺寸小,穩(wěn)定性高(Dimension small & High stability)
特點(diǎn)(FEATURES) 精確度0.1%滿刻度(Accuracy 0.1%F.S.) 多種輸入輸出選擇(Wide selection of input/output range) 三線式接線自動(dòng)補(bǔ)償線路阻抗效應(yīng)(3 wire configuration automatically compensate line resistance effects) 寬范圍交直流兩用電源設(shè)計(jì)(Wide input range for auxiliary power) 尺寸小,穩(wěn)定性高(Dimension small & High stability)
特點(diǎn)(FEATURES) 精確度0.1%滿刻度(Accuracy 0.1%F.S.) 寬輸入范圍200ohm 至 50Kohm(Wide inpuet ranges from 200ohm to 50Kohm) 多種輸入輸出選擇(Wide selection of input/output range) 輸入與輸出1/輸出2絕緣耐壓 2仟伏特/1分鐘(Dielectric strength 2KVac/1min.(input/output1/output2)) 寬范圍交直流兩用電源設(shè)計(jì)(Wide input range for auxiliary power) 尺寸小,穩(wěn)定性高(Dimension small & High stability)
特點(diǎn)(FEATURES) 精確度0.1%滿刻度(Accuracy 0.1%F.S.) 多種輸入輸出選擇(Wide selection of input/output range) 輸入與輸出1/輸出2絕緣耐壓 2仟伏特/1分鐘(Dielectric strength 2KVac/1min.(input/output1/output2)) 寬范圍交直流兩用電源設(shè)計(jì)(Wide input range for auxiliary power) 尺寸小,穩(wěn)定性高(Dimension small & High stability)