Hello,
PC SW to manage the Scope and take screenshotsThanks to
mrprecisionhttps://www.eevblog.com/forum/testgear/tek-ths720a-portable-scope-teardowndiscussion/msg3566625/#msg3566625Video on how to install LED backlightThanks to
mrprecisionIn german language:
https://www.eevblog.com/forum/testgear/tek-ths720a-portable-scope-teardowndiscussion/msg3590917/#msg3590917FW UPDATEThanks to
superman13https://www.eevblog.com/forum/testgear/tek-ths720a-portable-scope-teardowndiscussion/msg1480909/#msg1480909Thanks to
yaromka, here the FW1.16
FW 1.16HACKThanks to
TurboTomhttps://www.eevblog.com/forum/testgear/tek-ths720a-portable-scope-teardowndiscussion/msg1073777/#msg1073777SCHEMATICSThanks to
R_G_B_https://www.eevblog.com/forum/testgear/tektronix-ths700-tekscope-component-level-information-package-and-schematic/ORIGINAL POST ON THS720AI just got a Tek THS720A on Ebay. I like this device a lot, there is isolation everywhere: each scope CH and also the DMM input are isolated from each other. For a portable scope a good isolation is a must. The price range is much affordable than a Fluke scope which cost an arm and a leg.
It is a 100Mhz scope 2 CH, see some specifications here:
Oscilloscope
Bandwidth 100-MHz Digital Real Time
Sample Rate 500 MS/s each channel
Time/Division Range 5 ns to 50 s/div
Channels Two
Sensitivity 5 mV to 50 mV/div (to 500 V/div with 10X probe)
Vertical Resolution 8 bits
Record Length 2500 points
Time Bases Main or delayed run after
Display Modes Vectors, dots, vector accumulate, dot accumulate, YT, XY
Triggering Main only, edge, pulse, video lines, video fields
Acquisition Modes Sample, envelope, average, peak detect
Autorange Controls volts/div, time/div, trig level and acquisition mode
Waveform Maths Ch1 + Ch2, Ch1 - Ch2, CH1 x Ch2
Cursors H bars, V bars, paired (volts @ time)
Measurements Pk-Pk, mean, min, max, rms, +width, -width, frequency, period, +duty, -duty, rise, fall
Multimeter
Resolution 4000 counts, 3.75 digits
DC Volts 400 mV-880 V True RMS
AC Volts 400 mV-640 V True RMS
Resistance 400-40 MW (with continuity beeper)
Diode Test Up to 2 V
Other DMM Features Autorange, true rms, average meas., hold, statistics, Min/Max Alarm
General Features
NV Storage 10 waveforms, 10 setups, 100 DMM saved screens
User Interface Simplified TDS 320 with pop-up menus
I/O RS-232 (to 38.4K baud)
Chassis Battery Operated, hand-held
Reliability Calculated MTBF 20,000 hours @ 25 degrees Celsius
The device needs 502mA (400mA when the LCD back light is off) from the 12VDC jack with no battery connected. In standby the current goes down to 8.45mA. With 5.5VDC on the 12VDC Jack the device was still on, but I did not went below that limit because I heard some funky noises (surely some switching DC/DC converter was screaming on me).
Regarding the battery, it is a 4.8V Ni-Cd (4xSize C) 2.8Ah. At 4.8V Battery voltage the device is asking 1.2A (1A when the back light LCD is off) to stay on. "Low Battery" warning appears at 4.6V. The power cuts off at 4.2V. In standby the current is about 176µA.
I performed a full discharge and then I charged it for 16 hours at C/10 280mA. Afterwards I did discharge test @1.2A CC:
not bad, 2.71 Ah Capacity and simulated 2:14 Lifetime to reach 4.2V (power cuts off).
The battery charger works like this (according to my reverse engineering):
VBatt <3.5V: CC charge at 110mA
VBatt >3.8V: charge current [mA]= -187.27*VBatt[V]+1283.63
3.5V<VBatt <3.8V: Previous state
Unfortunately It has a problem, see here for details
https://www.eevblog.com/forum/repair/tek-ths720a-thinks-there-are-110v-on-the-input-but-there-is-just-a-50-ohm-r/msg490731/so I decided to tear it down. I hope I can fix it.
Here we go:
Under the front panel, solid metal panel for EMI with on top the the flex keyboard
below we can find the inverter board for the back light and the LCD
inverter top side
inverter bottom side
Nice touch, very practical to remove the rear battery case
without the inverter and the LCD
rear panel with battery holder
Battery contacts, in this way you can´t use regular 4 Size C batteries
main board bottom side; clearly CH 1, CH 2 and DMM are isolated
CH 1 circuit bottom side
DMM input bottom side
central digital stuff, bottom side
LCD output and power supply circuit, bottom side
Main board top side, funny those two transformer for each channel
Power supply, top side
CH circuits, I don´t want to desolder the cans yet
Interesting DMM input, extra PCB piece above the main board for EMI?
Main processor stuff, top side. Debug/Service port on the top?
Todo List:1) Fix the offset Problem in CH1
2) Upgrade FW from 1.14 to 1.16, any advice? Looks like the FW is in U1 (from Memory_Erasure_071181500.pdf):
156--7404--01
U1
IC, MEMORY; CMOS, FLASH ;1MEG X 8, 5.0
VOLT--ONLY, SECTOR ERASE;
AM29F080--120EC , 40PIN TSOPT&R
Flash memory which contains instrument
firmware, current setup, saved setups, saved
waveforms, saved data, waveforms, and
calibration constants.
3) Calibration
Possible Mods:Does anybody has the schematics?
1) Build a switch to manage the back light LCD (turn off and on the inverter board). If there is enough ambient light, there is no need to use that energy. Why Tektronix did not built a back light switch?
2) Reverse Engineering the power supply and and battery charge circuit. Upgrade to Li ion by using three of those ones:
http://www.battery-matrix.com/3-2V26650-3300mah-LIFEPO4-IFR26650-3300mah.htmlwhich just fit perfectly in the 4xSize C battery compartment. Target is to achieve a battery life between 2x and 3x than the current one.
3) Develop a 4 leds battery gauge.
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High resolution pictures here:
http://postimg.org/gallery/6dfgsp1i/Sorry I did everything with an IPhone 5, a Canon 60D will be in my hands soon.