参数资料
型号: SSQE48T20033-NABNG
厂商: Power-One
文件页数: 8/12页
文件大小: 0K
描述: CONVERTER DC-DC 3.3V 20A
标准包装: 100
系列: 1/16 砖
类型: 隔离
输出数: 1
电压 - 输入(最小): 36V
电压 - 输入(最大): 75V
Voltage - Output 1: 3.3V
电流 - 输出(最大): 20A
电源(瓦) - 制造商系列: 66W
电压 - 隔离: 2.25kV(2250V)
安装类型: 通孔
封装/外壳: 8-DIP 模块,1/16 砖
尺寸/尺寸: 1.30" L x 0.90" W x 0.37" H(33.0mm x 22.9mm x 9.4mm)
包装: 托盘
工作温度: -40°C ~ 85°C
效率: 91%
电源(瓦特)- 最大: 66W
产品目录页面: 2738 (CN2011-ZH PDF)
其它名称: 179-2361
SSQE48T20033-NAB0G
SSQE48T25033 DC-DC Converter
36-75 VDC Input; 3.3 VDC, 25 A Output
Preliminary Data Sheet
Characterization
General Information
The converters have been characterized for many
operational aspects, to include thermal derating
(maximum load current as a function of ambient
(ii) The temperature of the transformer does not
exceed 125 °C, or
(iii) The nominal rating of the converter.
During normal operation, derating curves with
maximum FET temperature less or equal to 125°C
temperature and airflow) for vertical and horizontal
should not be exceeded.
Temperature
at
mounting, efficiency,
startup
and shutdown
thermocouple locations TC1 and TC2 shown in Fig. H
parameters, output ripple and noise, transient
response to load step-change, overload, and short
circuit.
Test Conditions
All data presented were taken with the converter
soldered to a test board, specifically a 0.060” thick
printed wiring board (PWB) with four layers. The top
and bottom layers were not metallized. The two inner
layers, comprised of two-ounce copper, were used to
provide traces for connectivity to the converter.
The lack of metallization on the outer layers as well
as the limited thermal connection ensured that heat
transfer from the converter to the PWB was
minimized. This provides a worst-case but consistent
scenario for thermal derating purposes.
All measurements requiring airflow were made in the
vertical and horizontal wind tunnel using Infrared (IR)
thermography and thermocouples for thermometry.
Ensuring components on the converter do not
exceed their ratings is important to maintaining high
reliability. If one anticipates operating the converter
at or close to the maximum loads specified in the
derating curves, it is prudent to check actual
operating temperatures in the application.
Thermographic imaging is preferable; if this
capability is not available, then thermocouples may
be used. The use of AWG #40 gauge thermocouples
is recommended to ensure measurement accuracy.
Careful routing of the thermocouple leads will further
minimize measurement error. Refer to Fig. H for the
recommended measuring thermocouple location.
Thermal Derating
Load current vs. ambient temperature and airflow
rates are given in Figure 1. Ambient temperature
was varied between 25 °C and 85 °C, with airflow
rates from 30 to 500 LFM (0.15 to 2.5 m/s).
For each set of conditions, the maximum load
current was defined as the lowest of:
(i) The output current at which any FET junction
temperature does not exceed a maximum specified
temperature of 125 °C, or
should not exceed 105°C and 125°C respectively, in
order to operate inside the derating curves.
Fig. H: Locations of the thermocouple for thermal testing.
Efficiency
Figure 2 shows the efficiency vs. load current plot for
ambient temperature of 25 oC, airflow rate of 300 LFM
(1.5 m/s) with vertical mounting and input voltages of
36V, 48V, 65V, and 72V. Also, a plot of efficiency vs.
load current, as a function of ambient temperature
with Vin=48 V, airflow rate of 200 LFM (1 m/s) with
vertical mounting is shown in Figure 3.
Power Dissipation
Figure 4 shows the power dissipation vs. load current
plot for Ta = 25 oC, airflow rate of 300 LFM (1.5 m/s)
with vertical mounting and input voltages of 36V, 48V,
65V, and 72V. Also, a plot of power dissipation vs.
load current, as a function of ambient temperature
with Vin = 48V, airflow rate of 200 LFM (1 m/s) with
vertical mounting is shown in Figure 5.
Startup
Output voltage waveforms during the turn-on transient
using the ON/OFF pin for full rated load currents
(resistive load) are shown without and with external
load capacitance in Figure 6 and Figure 7,
respectively.
Ripple and Noise
Figure 10 shows the output voltage ripple waveform,
measured at full rated load current with a 10 μF
tantalum and 1 μF ceramic capacitor across the
output. Note that all output voltage waveforms are
measured across a 1 μF ceramic capacitor.
The input reflected-ripple current waveforms are
obtained using the test setup shown in Figure 11.
ZD-02119 Rev. 1.1
www.power-one.com
Page 8 of 12
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