參數(shù)資料
型號(hào): IXDP631
廠商: IXYS Corporation
英文描述: Inverter Interface and Digital Deadtime Generator for 3-Phase PWM Controls
中文描述: 逆變器接口和數(shù)字死區(qū)發(fā)生器3相PWM控制
文件頁(yè)數(shù): 5/7頁(yè)
文件大小: 623K
代理商: IXDP631
I - 18
1998 IXYS All rights reserved
IXDP630
IXDP631
Selecting Components for a Specific
Requirement
Deadtime in the IXDP630/631 is exactly
8 clock periods: DT= 8/fclk.
Once the
worst case (minimum) deadtime has
been determined (from Power switching
component manufacturer data sheets,
drive circuit analysis, breadboard
measurements, etc.) the clock
frequency is calculated: fclk(max) =
8/ DT(min).
This is the highest allowable clock
frequency, including the effects of initial
accuracy, tolerance, temperature coeffi-
cient, etc. When choosing oscillator
components, special attention to
resistor and capacitor construction is
mandatory.
Oscillator Design
There are two versions of the deadtime
generator. They have distinctly different
internal oscillator designs to serve
different application. In either case,
however, the internal oscillator can be
disabled by simply leaving its external
components off. An HCMOS compatible
clock up to 24 MHz can be fed directly
into the RCIN or XTLIN pin.
IXDP630 RC Oscillator Design
The IXDP630 uses a Schmitt trigger
inverter oscillator (Fig. 3). Two external
components,
R
and C
, determine
the clock frequency and consequently
the deadtime. This design allows a
significant cost reduction over a
standard crystal oscillator, but entails a
trade-off in frequency accuracy. The
initial accuracy and drift are a function
of the external component tolerance
and temperature coefficients, supply
voltage, and IXDP630 internal para-
meters. At frequencies under 1 MHz,
assuming the external components
were perfect, the IXDP630 would
introduce an initial accuracy error of
5 %, and a temperature dependence of
-400 ppm. The shift in frequency over
the V
range 4.5 V to 5.5 V is typically
less than 5 %.
At higher frequencies and with resistor
values below 1 k
, the IXDP630
internal parameters become more
influential factors. This results in
greater frequency variation from one
device to another, as well as with
temperature and supply voltage
variations. If high accuracy is a
requirement, the IXDP631 with a crystal
oscillator would be the better choice.
Oscillator frequency vs. Rosc and Cosc
is shown in Fig. 4. For an analytical
method of setting the oscillator, the
design equation is for operation below
1 MHz approximately:
0.95
f
OSC
Cosc Rosc
For operation above 1 MHz,
0.95
f
OSC
Cosc (Rosc+30) + 3 10
-
8
IXDP631 Precision Crystal Oscillator
Design
The IXDP631 uses a more common
standard internal crystal oscillator
design. For proper operation the crys-
tal must be of the parallel resonant
type, resonating at the crystal's funda-
mental frequency. Fig. 5 illustrates the
recommended oscillator configuration.
Note the external components required.
The capacitors are needed to achieve
the calibrated crystal frequency (their
value is determined by the crystal
manufacturer), and the resistor is
necessary to assure that the circuit
starts in every case. While the circuit
will
usually
operate without these extra
parts, this is not recommended.
The crystal oscillator in the IXDP631 is
significantly more accurate than the RC
oscillator in the IXDP630. The total
tolerance (including effects of initial
accuracy, temperature, supply voltage,
drift, etc.) is better than
±
100 ppm. This
improves the accuracy and repeatability
of the desired deadtime, but at the
added expense of a crystal.
Which version is appropriate for your
application That depends on how you
are willing to trade off component cost
for deadtime accuracy.
Fig. 4. Oscillator frequency component selection for IXDP630.
Fig. 3: IXDP630 internal Schmitt Trigger
inverter oscillator (R
OSC
, C
OSC
are
external)
C
OSC
= 470 pF
C
OSC
= 270 pF
C
OSC
= 100 pF
C
OSC
= 47 pF
C
OSC
= 1 nF
C
OSC
= 2.2 nF
C
OSC
= 4.7 nF
C
OSC
= 10 nF
0.1 1 10 100 1000 10 000
Oscillator - kHz
相關(guān)PDF資料
PDF描述
IXDP631PI Inverter Interface and Digital Deadtime Generator for 3-Phase PWM Controls
IXDR30N120 High Voltage IGBT with optional Diode ISOPLUSTM package
IXDR30N120D1 High Voltage IGBT with optional Diode ISOPLUSTM package
IXEN60N120 NPT IGBT
IXEN60N120D1 NPT IGBT
相關(guān)代理商/技術(shù)參數(shù)
參數(shù)描述
IXDP631PC 制造商:未知廠家 制造商全稱(chēng):未知廠家 功能描述:Analog Delay Circuit
IXDP631PI 功能描述:馬達(dá)/運(yùn)動(dòng)/點(diǎn)火控制器和驅(qū)動(dòng)器 Invrtr Intrfac/Digtl Deadtime Generator RoHS:否 制造商:STMicroelectronics 產(chǎn)品:Stepper Motor Controllers / Drivers 類(lèi)型:2 Phase Stepper Motor Driver 工作電源電壓:8 V to 45 V 電源電流:0.5 mA 工作溫度:- 25 C to + 125 C 安裝風(fēng)格:SMD/SMT 封裝 / 箱體:HTSSOP-28 封裝:Tube
IXDR30N120 功能描述:IGBT 晶體管 30 Amps 1200V RoHS:否 制造商:Fairchild Semiconductor 配置: 集電極—發(fā)射極最大電壓 VCEO:650 V 集電極—射極飽和電壓:2.3 V 柵極/發(fā)射極最大電壓:20 V 在25 C的連續(xù)集電極電流:150 A 柵極—射極漏泄電流:400 nA 功率耗散:187 W 最大工作溫度: 封裝 / 箱體:TO-247 封裝:Tube
IXDR30N120D1 功能描述:IGBT 晶體管 30 Amps 1200V RoHS:否 制造商:Fairchild Semiconductor 配置: 集電極—發(fā)射極最大電壓 VCEO:650 V 集電極—射極飽和電壓:2.3 V 柵極/發(fā)射極最大電壓:20 V 在25 C的連續(xù)集電極電流:150 A 柵極—射極漏泄電流:400 nA 功率耗散:187 W 最大工作溫度: 封裝 / 箱體:TO-247 封裝:Tube
IXDR35N60BD1 功能描述:IGBT 晶體管 35 Amps 600V RoHS:否 制造商:Fairchild Semiconductor 配置: 集電極—發(fā)射極最大電壓 VCEO:650 V 集電極—射極飽和電壓:2.3 V 柵極/發(fā)射極最大電壓:20 V 在25 C的連續(xù)集電極電流:150 A 柵極—射極漏泄電流:400 nA 功率耗散:187 W 最大工作溫度: 封裝 / 箱體:TO-247 封裝:Tube