Sunday, 9 June 2019

Sony LCD TV WAX3 Chassis T’Con board faults and replacement procedure


TCON Troubleshooting and Replacement
In the relatively small percentage of units that experienced a failure of the TCON board, replacement of the entire LCD panel was mandatory. This is not only costly from a warranty standpoint but it also makes it near impossible to justify an out-of-warranty repair since the replacement LCD panel can easily cost 2/3 or more of the price of the entire television.
The reason why TCON assemblies have not been available in the past was due to the large amount of correction data stored within NVM data points located on the board. Tolerance issues during the manufacture of the LCD panels required white balance, gamma, and uniformity corrections to compensate for these inherent production issues. There are other items for correct panel operation but the above mentioned items are the most critical.
Over the years, panel tolerances have improved dramatically and variances in uniformity have been reduced to the point where a TCON loaded with average data results in a satisfactory picture when installed as a replacement on a panel. Most Sony television models also have white balance data located on the video process board. Although
the TCON is loaded with data to properly white balance the panel, the ability to adjust white balance from the B boards is present to compensate for shifts in white balancing due to panel ageing and this mainly involves colour balance shifting of the fluorescent backlight lamps which tend to shift towards the magenta spectrum as they age.
The main issue with previous LCD panel designs was the uniformity adjustment data. Due to variances across the LCD panel it was impossible to achieve even white balance across the screen. For this reason, small zones across and down the LCD panel required individual white balance compensation. Without this correction the
picture would have “blotches” of different colour in sections of the screen. Better tolerances during manufacturing have reduced the reliance on this uniformity data and allows for the replacement of TCON boards with satisfactory results.
not all LCD panels will have a TCON board available. This will mainly be determined by availability of components from the LCD panel vendor along with decisions by Sony based on sales quantity and failure history of the TCON assemblies. Most technicians have experienced the use of the LCD panel replacement manual. This manual was created to proper identify the type of LCD panel installed in a unit based on its serial number since some units changed to a different type of LCD panel during the manufacturing
production. The plan is to use this document to also provide TCON information and whether one is available and, if available, which TCON is the proper replacement part for that particular panel.
LCD panels have steadily evolved over the last several years. New designs of the physical structure of the LCD crystals have greatly improved the contrast ratio and viewing angle. Quicker response times and increased refresh rates have helped to reduce the motion “smear” associated with LCD displays. Back-lighting design has also aided in producing a picture with colour temperatures to make the images as true as possible. With all these design improvements, one aspect of the LCD panel remains relatively the same: Processing of the video signal.
A typical LCD panel and the associated video processing circuits as found in the WAX3 chassis. The various formats and resolutions of video signals are processed on the BU1 board. All video signals exit the video processor in the native resolution of the LCD panel. In this design, the resolution is for a 1280 by 768 at 60HZ refresh rate panel. 48 horizontal lines are discarded to match up to the 720p resolution of the ATSC specifications so the video will exit as 720p.
The LCD panel used in this model processes 8-bit RGB video data. Before the video information can be sent to the TCON board it must be converted to a format that allows for practical and noise-free transmission. The large number of parallel lines to transmit the 8-bit RGB data would need to be sent on differential lines for noise reduction. This would require 48 lines just for the video. The TCON circuit also requires B+, ground connections, a communications bus, sync, and a clocking line transmitted deferentially so we can see that up to 100 lines would be required. The practical way to transmit this information is to convert the parallel video data to a serial stream and this is accomplished by the Low-Voltage Differential Signalling (LVDS) transmitter.
The LVDS transmitter contains a circuit to serialise the parallel data. The parallel video information along with sync and clocking data are transmitted via twisted line pairs. Depending on the logic level, current is sent along one or the other of the twisted pair of wires. The receiving end of the wires is loaded with a resistor (usually around 100 to 120 ohms). The receiver detects the polarity of the voltage drop across the resistor to determine the logic level. The current level swings in the wire are about 3ma with a voltage differential of around 350mv.
This allows for transmission of the video signal with minimal EMI.
The LVDS receiver on the TCON board converts the serialised data back to parallel. This data is processed by the timing control IC to allocate the RGB data into serial streams for processing by the LCD panel. The LCD panel contains shift registers and drivers for all of the rows and columns of pixels on the panel. The drivers are mounted on flexible circuit boards and bonded to the top and side of the panel. Without this arrangement the TCON would require an IC and connectors to transmit on 4,560 lines.  All of this is accomplished by the TCON board. The term “TCON” is short for Timing Control. Other LCD panel manufacturers may have a different name for this particular circuit but the term used by Sony will always be TCON.
Diagnosing a Failed TCON
In order for this concept to move forward successfully, it is important that the service industry be able to properly identify the symptoms of TCON issues to avoid unnecessary service calls and repair costs. Accurate analysis of TCON failures will reduce costs significantly (both in parts costs and time) when warranty repairs are involved and will reduce the number of COD repairs that are lost.
A good approach when determining a TCON failure is a good understanding of which symptoms ARE NOT caused by the TCON. Examples are as follows:
Video Process Failures: All video inputs received by the video process circuits are handled on a frame-by-frame basis. The video frames are converted and scaled to 8 or 10-bit RGB information. It is virtually impossible for the video process circuits to cause a problem on a specific area of the screen. Failures on this board usually appear as distortions, color level shifts, video level shifts or noise that involves the entire picture. The TCON can generate symptoms that appear to be video process related but the video process circuits cannot produce the symptoms of a failed TCON circuit.
LVDS Cable Failures: Although problems with the LVDS cable or connectors can generate symptoms of TCON failures this usually tends to be intermittent and wiggling of the connectors will usually provoke a change in the symptom on the screen. LVDS cables and connectors have become rather robust over the past few years and most problems are caused by technicians who damage them and this is generally quite obvious upon close examination.
LCD Panel Failures: Some LCD panel failures could possibly be mistaken for TCON issues. Other than damage to the LCD glass, most panel failures are isolated to a particular area of the screen. Since the TCON disperses the pixel data to groups of line and column drive IC’s situated on the outer edges of the panel, it is unlikely that more than one of these IC’s would fail at the same time. Multiple columns of stuck on or stuck off pixels are, therefore, more likely to be the fault of the TCON circuits. The same applies to a single row of lit or unlit pixels.
The TCON simply cannot cut out a single line of information. Figure 2 illustrates some typical symptoms of failures that are caused by the LCD panel.
Failures in the timing control circuits of the TCON can produce symptoms of absolutely no video or generate lines and patterns that usually cover all or a substantial part of the screen. Determining if the TCON is the cause of a “no video” condition is a bit more difficult since there are no indications on the screen to analyse.
Troubleshooting a “dead” TCON
Many of the Sony television models over the last few years will detect a TCON that has completely failed. The communications data between the video process circuits and the TCON will cease to communicate if the TCON fails completely. This will cause the television to shut down and display a diagnostics code indicating a failure of the TCON. Not all chassis designs have this feature and it is not found on older models.
The typical scenario when this failure arises is for the technician to bring a video process board to the repair location. It is usually safe to assume that the problem lies on the TCON board if the replacement video board does not remedy the problem since it is highly unlikely that a replacement board with the same failure was received.
One trick to check most TCONS for functionality is to loosen the LVDS connector at the TCON (as shown In Figure) while the unit is turned on. Handle the LVDS connector with care and be certain to fully release the lock tabs. Gently rock the cable in and out of the connector while observing the screen for any response. Depending on the chassis, the symptoms of the screen may be gentle white flashes, intermittent coloured lines, or a screen full of random patterns. The idea at this point is to provoke some kind of response on the screen. TCON boards that have failed will not usually generate any type of response on the screen.
Another helpful procedure is to rapidly heat and/or cool the TCON with hot air devices or circuit coolant and watch for patterns to appear on the screen.
2 examples of a loss of control data to the drive IC’s. In the first example, an entire group of column drivers has lost the data stream for red. The second example involves the complete loss of drive data for all RGB information to the right side of the screen. This is sometimes caused by the flat cable connecting the TCON to the LCD panel coming loose. The area of missing video can be dark or completely white depending on the panel design.
Other TCON failures that have been encountered in the field. The idea is to get a grasp of the concept of TCON induced failures to avoid unnecessary parts replacement.
TCON Replacement
In many instances, replacement of the TCON board will be relatively straightforward. In some cases, other boards may have to be loosened or removed to allow access to the mounting screws and clearance to remove the TCON. The issue of most concern is keeping track of the heat transfer pads, standoffs and insulators. The TCON is heavily shielded and it is easy to have one or more of these components accidentally fall out of the assembly when removing.
TCON assemblies that use multiple heat transfer pads must be removed slowly and every attempt must be made to keep the shield and circuit board together as they are removed from the unit. Check for any service bulletins pertaining to the model and panel design that contain the subject line of “TCON heat transfer pad locations” for
pictures to show the proper location of these components.
The removal of the TCON board from a KDL40XBR6 is demonstrated. It serves as an excellent example since it requires the partial removal of the power supply board along with containing 6 heat transfer pads, 3 insulating pads, and 5 insulated standoff pads.
Unplug the LVDS connector from the TCON. Remove the screw from the LVDS cable ground strap so the cable can be moved away. Unplug CN6600 from the inverter board and remove the harness from the retainer as shown. Remove the 6 black machine screws securing the g board sub-chassis to the panel.
Pull the top of the G board towards you and downward to allow access to the bottom screws securing the TCON.
Carefully un-peel the conductive tape from the top bracket taking care not to tear them.
Leave the tape attached to the TCON shield. Remove the top bracket covering the gate and source driver components. This will allow access to the upper flat cable connectors.
Lift the locking tabs securing the flat cables. Leave the flat cables attached to the TCON. Remove the 8 silver machine screws securing the TCON and shield assembly. The TCON board has an insulating pad between it and the LCD panel that will cause the board to stick. Not much effort is required to release it. The goal at this point is to remove the board and shield together so as to avoid dropping heat transfer pads and insulators located between the front of the board and the shield.
If successful, both components should stay together as illustrated. Note the spacers mounted on the back side of the board. These will need to be transferred to the replacement board. In Figure the insulating pad can be observed sticking to the chassis.
The assembly is laid with the shield down on the work surface. Lift the circuit board upward slowly while observing the location of the heat transfer and insulating pads. In most cases the heat transfer pads will remain attached to their appropriate IC’s and the insulating pads will be stuck to the shield. If anything falls off, use the illustration to return them to their proper position. Transfer all heat and insulating pads along with the flat cables to the replacement board.
Once the components have been transferred to the front of the circuit board, attach the shield and flip the assembly over as shown.
Transfer any spacers or insulation pads to the replacement board.
Once the components have been transferred to the front of the circuit board, attach the shield and flip the assembly over as shown.
Transfer any spacers or insulation pads to the replacement board.
Temporarily secure the TCON board to the shield with electrical tape as shown in Figure. This helps in preventing movement of the circuit board while installing the assembly back onto the LCD panel.
Once the TCON assembly is secured to the panel, insert and lock the flat cables. Plug in all connectors and secure the G board sub-chassis. Don’t forget about the wire harness that was removed from its retainer.

Thursday, 6 June 2019

BN41 00256C / BN94 00443B Samsung LCD TV SMPS circuit diagram (Schematic)


Used with Samsung LW40A23W, Samsung LW32A23WX, Samsung LW32A30W, Samsung CK40BSNB 403T CK40PSNS and many other brand LCD TVs
Sub-block schematic
Main-block schematic

Wednesday, 29 May 2019

HP 17 Notebook – Disassembling procedure

How to remove the battery - How to remove the display unit -  HP 17 Notebook – Disassembling procedure

Disassembling procedure 
How to remove Battery
Before removing the battery, follow these steps:
1. Shut down the computer. If you are unsure whether the computer is off or in Hibernation, turn the computer on, and then shut it down through the operating system.
2. Disconnect all external devices connected to the computer.
3. Disconnect the power from the computer by first unplugging the power cord from the AC outlet and then unplugging the AC adapter from the computer.
Remove the battery:
1. Turn the computer upside down on a flat surface.
2. With the battery bay toward you, slide the battery lock latch (1) to unlock the battery and then slide the battery release latch (2) to release the battery.
3. Pivot the battery (3) upward and then remove it from the computer (4).
How to remove Optical drive
Before removing the optical drive, follow these steps:
1. Shut down the computer. If you are unsure whether the computer is off or in Hibernation, turn the computer on, and then shut it down through the operating system.
2. Disconnect all external devices connected to the computer.
3. Disconnect the power from the computer by first unplugging the power cord from the AC outlet and then unplugging the AC adapter from the computer.
4. Remove the battery
Remove the optical drive:
1. Remove the screw (1) that secures the optical drive to the computer.
2. Use a flat tool to press on the optical drive bracket tab (2) to release the optical drive.
3. Remove the optical drive from the computer.
How to remove Base enclosure
Before disassembling the computer, follow these steps:
1. Shut down the computer. If you are unsure whether the computer is off or in Hibernation, turn the computer on, and then shut it down through the operating system.
2. Disconnect all external devices connected to the computer.
3. Disconnect the power from the computer by first unplugging the power cord from the AC outlet and then unplugging the AC adapter from the computer.
4. Remove the battery
5. Remove the optical drive
Remove the base enclosure:
1. Turn the computer face down, and remove the rubber feet (1), the two screws (2) and lift the end caps (3).
2. Remove the ten Phillips screws.
3. Remove five screws (1) around the battery area, three broadhead screws (2) in the optical drive bay and one screw (3) near the display hinge.
4. Turn the computer right side up and carefully remove the top cover.
5. Carefully disconnect the following cables:
Power button cable (1)
Keyboard cable (2)
TouchPad cable (3)
Lift the top cover (4) to remove it from the computer.
How to remove Display panel
Before removing the display panel, follow these steps:
1. Shut down the computer. If you are unsure whether the computer is off or in Hibernation, turn the computer on, and then shut it down through the operating system.
2. Disconnect all external devices connected to the computer.
3. Disconnect the power from the computer by first unplugging the power cord from the AC outlet and then unplugging the AC adapter from the computer.
4. Remove the battery
5. Remove the optical drive
6. Remove the top cover from the base enclosure
Remove the display panel:
1. Open the computer.
2. Disengage the display cable (1) and disconnect the display connector (2) on the left side base of the display panel.
3. On the right side, disconnect the WLAN cable (3) and carefully remove the cable from the retaining tabs (4).
4. Remove the power connector cover by removing the two Phillips screws (1) and lifting the cover (2).
5. Remove the six Phillips screws (1) on the left and one broadhead screw (2) on the right side base of the display panel. Lift the panel up (3).
6. Open the panel cover (1), swivel the display panel hinges (2) on both sides and then tilt up the display panel hinge (3) to release it.
7. Loosen the edges of the back cover (1), (2), and (3) from all four sides of the display bezel and lift the display panel (4).
8. To remove the panel, remove the four Phillips screws (1) and any adhesive that secures the display panel to the back cover and lift the display panel (2) carefully.
9. If it is necessary to remove the display panel cable or access the webcamera and microphone, follow these steps. With the display bezel upside down, disconnect the webcamera/microphone connectors (1) and from the routing channel built into the back cover.
Carefully release the cable from the channel guides, the guides in the display hinge, and remove the display panel cable (2). Lift the cable to remove it.
10. On select models, removing the panel also requires disengaging the panel from the back cover latch. To disconnect the display panel, carefully rotate the display panel (1) to open it. Push upward on the connection latch (2)panel and then disengage the panel from the back cover (3)

Monday, 13 May 2019

Rolsen RL-26B01- how to enter the service mode, adjustments - Chassis MST9E19


Many electrical and mechanical parts in the chassis have special safety-related characteristics. These characteristics are often passed unnoticed by a visual inspection. When replacement parts are required, be sure the service technician uses replacement parts specified by us that have the same characteristics as the original part. Unauthorized substitutions may result in fire, electric shock and injury to persons or other hazards. This LCD TV product should be situated away from heat source such as radiation, stoves, or other product that produce heat.
This Panel is a TFT LCD module supports 1366 x 768 WXGA format and can display true 16.7M colors (8-bit colors).
Service Mode and Adjustment

Method-1 Use the remote control, first open MAIN MENU with MENU button, and choose PICTURE with the CHANNEL UP/DOWN button, then choose the Brightness with VOLUME UP, while Brightness value is 50, press 0,5,3,2. You can enter factory menu.
Method-2 Use the remote control, first open MAIN MENU with MENU button, and choose SOUND with the CHANNEL UP/DOWN button, then choose the Balance with VOLUME UP, while Balance value is 0, press 0,5,3,2. You can enter factory menu.
Factory Menu
White Balance
Auto Test
Auto Calibration
LOGO
OSD Language
Country
Option
Factory Init
Test Pattern
Version:
White Balance
R DRV 10
G DRV 10
B DRV 10
R CUT 128
G CUT 128
B CUT 128
BRIGHT_H 80
CONTRAST _H 80
BRIGHT_L 40
CONTRAST_L 40
Auto Calibration
Auto Color
Color Temp. Standard
RED COLOR 128
GREEN COLOR 128
BLUE COLOR 128
LOGO
NULL
HISENSE
WELCOME
Option
SOURCE
TV
BRIGHT 0
10
BRIGHT 50
100
BRIGHT 100
135
CONTRAST 0
60
CONTRAST 50
125
CONTRAST 100 155
TOFAC
M
HDMI Cable
Standard
Factory Initialization
QingDao
HuangDao
Guiyang
Hungary
France
Austria
CLEAR PROTECTLY
CLEAR UNPROTECTLY
Design Menu
Picture Mode
Sound Mode
Sound Settings
Power Save
PIP Option
EMI
MOVESHARPNESS
LipSync
Picture Mode
Standard
Brightness
50
Contrast
50
Colour
50
Bright
Brightness
60
Contrast
60
Colour
55
Soft
Brightness
45
Contrast
45
Colour
45
Sound Mode
Standard
120Hz
12
500Hz
10
1.5KHz
11
5KHz
8
10KHz
15
Music
120Hz
19
500Hz
11
1.5KHz
12
5KHz
14
10KHz
20
Speech
120Hz
4
500Hz
10
1.5KHz
12
5KHz
7
10KHz
5
Sound Settings
VOLUME 0 128
VOLUME 1 79
VOLUME 20 36
VOLUME 40 31
VOLUME 100 17
TVPRE SCALER 2
VOLUME SCALER 0

Thursday, 9 May 2019

DLM32C1 SL-223M chassis - Daewoo LCD TV Service mode, connector voltages, Power board circuit diagram


Daewoo DLM-26C2, DLM-26C3, DLM-32C1D, DLM-32C2, DLM-32C3, DLM-37C3, DLM-42C1
PAL, PAL-M, PAL-N,  NTSC, NTSC4.43,  SECAM
Entering SERVICE MODE
Using the Service Remote controller, you can enter service mode directly.
Adjustment REMOCON and EEPROM initial DATA
A. The adjustment Specification use the SERVICE REMOCON R-34SVC
(S/N: 48B3034SVC)
B. Adjustment DATA
Description of SERVICE MODE ITEM
A. S1(1) : Heat-Run Key
B. S2(2) : Gumi Channel Map Write
C. S3(3) : Volume Test
=> This key can check sound
D. S4(4) : EDIE WRITE
=> Using this key, you can update EDID data.
E. S5(5) : PANEL TEST
=> Using this key, you can test problem of PANEL, as confirm white pattern, red pattern, blue pattern, green pattern.
F. S6(6) : PICTURE TEST
=> Using this key, you can test brightness, contrast and color.
G. S7(7) : DEMPOL CHANNEL MAP WRITE
H. S8(8) : EEPROM Erase and White Balance adjustment
=> Using this key, you can erase EEPROM data and adjust White balance.
I. S9(9) : Device control
=> This key only use for R&D.
J. S10(10) : Option key
=> Using this key, you can adjust SSC, Dimming, Panel Type, Control key and etc.
K. S11(11) : I2C STOP key
=> This key only use for R&D.
L. S12(SLEEP) : Shipping key
=> Using this key, you can set up at shipping mode.
To adjust WHITE BALANCE, refer to below process.
6-1. Insert white pattern to component input Signal Generator : 802BT (By Quantum Data)
Resolution : 1280x720p @60Hz,
Pattern : Grey Scale (11 step)
6-2. Confirm ‘dimming’ in service mode (=s10) 32C3 = 0, 26C3 = 255
6-3. Attach white balance meter(CA-210) on center of Panel
6-4. Press the service key s8
6-5. Adjust white balance with valiable R.G.B cutoff / drive.
Color coordinates
X = 0.280 0.01, Y = 0.285
X = 0.280 0.01, Y = 0.290
0.01, cd/m2 = 50cd/m2
0.01, cd/m2 = 300cd/m2
6-6. Press s8 buttorn to escape SERVICE MODE
The difference of LCD Panel is not so much, therefore we don’t adjust white balance.
POWER PCB voltages
Other connector voltages
Power board [SMPS] schematic 
Service mode
Typical Symptoms of PCBs problem or bad connection
A. Symptom of initial latch up
- Define initial latch up : When turn on the power, both LEDs light up red and TV is not working.
- Repairing method : This is typical symptom when ROM(ICU3) is incorrectly connected at socket. So if you find this symptom, you must try to that ROM(ICU3) and socket have correct contact.
- As this method, TV set is not repaired, replace MAIN PCB.
B. Symptom of No image when LED and Back Light are working.
- Define No image : LED and BACK LIGHT of panel are correctly working but any image does not display.
- Repairing method : This is typical symptom when LVDS cable incorrectly connects.
So if you find this symptom, check LVDS connection.
- As this method, TV set is not repaired, replace Main or Sub PCB.
C. Representative Symptom caused by bad Connection between PCBs
=> Note: Dust or extraneous material may cause bad connections. Most of the time, applying soft brush, AIR FRESHIER, or breath to clean dust or extraneous materials can solve it. And then reassemble the Connector.

Monday, 22 April 2019

Lenovo YOGA Tablet 2-851F – Ac adapter test procedure – How to remove the case – How to check battery status


Lenovo YOGA Tablet 2-851F 
To verify a symptom, follow the steps below:
1. Turn off the computer.
2. Remove the battery pack.
3. Connect the AC adapter.
4. Make sure that power is supplied when you turn on the computer.
5. Turn off the computer.
6. Disconnect the AC adapter and install the charged battery pack.
7. Make sure that the battery pack supplies power when you turn on the computer.
If you suspect a power problem, see the appropriate one of the following power supply checkouts:
“Checking the Computer AC Charger”
“Checking the internal battery status”
Checking the Computer AC Charger
When you use the computer AC Charger to charge the tablet but no power is charged, see the instructions in this topic to check the computer AC Charger.
To check the computer AC Charger, do the following:
1. Disconnect the micro-USB cable from the tablet.
2. Measure the output voltage across the connector marked B of the micro-USB cable. Refer to the following figure:
Note: The output voltage across pin 3 of the micro-B connector might be different from the one you are servicing.
3. If the voltage is not correct, replace the micro-USB cable.
4. If the voltage is acceptable, replace the system board.
Checking the internal battery status
To check the battery status of the tablet, do either of the following:
Approximate information about the battery status
Get the approximate status of the battery at any time by checking the battery status icon on the system bar in the upper-right corner of the screen. The shorter the green bar is, the less the battery power remains.
Accurate information about the battery status
To get the accurate information about the battery status of the tablet, do the following:
1. Open the Android Settings screen.
To open the Android Settings screen, do either of the following:
From the main Home screen, touch the Android Settings icon on
Lenovo Launch Zone. The Android Settings screen is displayed.
Pull down the application icon from the action bar and then touch Settings. The Android Settings screen is displayed.
2. Touch Battery in the Device section on the Android Settings screen.
3. The accurate percentage of the remaining battery power is shown on the screen.
Disassembling procedure 
How to remove Rear cover
1. Open the hinge frame.
2. Open the card slot cover using a thin flat blade or guitar pick.
3. Remove screws 1 on the rear cover as shown in the figure below.
4. Separate the bottom right corner of the rear cover from the main body of the tablet using a suction tool as shown in the figure below.
5. Hold the tablet in one hand and use a guitar pick to unlock the rear cover from the tablet along the joint line as shown in the figure below.
6. Slowly remove the rear cover.

Friday, 19 April 2019

Telwin technica 150 inverter for welding – schematic – Part 2 of 2

Visual inspection of the machine
Make sure there is no mechanical deformation, dent, or damaged and/or disconnected connector.  Make sure the power supply cable has not been damaged or disconnected internally and that the fan works with the machine switched on. Inspect the components and cables for signs of burning or breaks that may endanger operation of the power source. Check the following elements:
Main power supply switch
Use the multimeter to check whether the contacts are stuck together or open. Probable cause:
- mechanical or electric shock (e.g. bridge rectifier or IGBT in short circuit, handling under load).
Current potentiometer R52
Probable cause:
- mechanical shock.
Relay K1
If the relay contacts are stuck together or dirty, do not attempt to separate them and clean them, just replace the relay.
Electrolytic capacitors C4,C5, C6, C7
Probable cause :
- mechanical shock;
- machine connected to power supply voltage much higher than the rated value;
broken rheophore on one or more capacitor: the remainder will be overstressed and become damaged by overheating;
- ageing after a considerable number of working hours;
- overheating caused by thermostatic capsule failure.
IGBT's Q1, Q2, Q3, Q4
Probable cause:
- discontinuation in snubber network;
- fault in driver circuit;
- poorly functioning thermal contact between IGBT and dissipator (e.g. loosened attachment screws: check);
- excessive overheating related to faulty operation.
Primary diodes D40, D41
Probable cause:
- excessive overheating related to faulty operation
Secondary diodes D20, D21, D22, D23
Probable cause:
- discontinuation in snubber network;
- poorly functioning thermal contact between IGBT and dissipator (e.g. loosened attachment screws: check);
- faulty output connection.
Power transformer and filter reactance
Inspect the windings for colour changes. Probable causes:
- power source connected to a higher voltage than 280Vac;
- ageing after a substantial number of working hours;
- excessive overheating related to faulty operation.
Checking the power and signal wiring
It is important to check that all the connections are in good  condition and the connectors are inserted and/or attached correctly. To do this, take the cables between finger and thumb (as close as possible to the fastons or connectors) and pull outwards gently: the cables should not come away from the fastons or connectors. N.B. If the power cables are not tight enough this could cause dangerous overheating.
Electrical measurements with the machine switched off
With the multimeter set in mode check the following components (junction voltages not less than 0.2V):
- rectifier bridge D1
- IGBT's Q1, Q2, Q3, Q4 (absence of short circuits between collector-gate and between emitter-collector );
- secondary board diodes D20, D21, D22, D23 between anode and cathode, The secondary diodes can be checked without removing the power board: with one prod on the secondary board dissipator diodes and the other in sequence on the two power transformer outlets;
- viper U2 (absence of short circuits between pin 3 - pin 4 and between pin 4 pin 2, )
With the multimeter set in ohm mode check the following
components:
- resistor R1: 47ohm (pre-charge );
- resistors R44, R45: 22ohm (primary snubber );
- resistor R20: 10ohm (secondary snubber );
- thermostat continuity test on the power transformer: clean the resin from the bump contacts of ST1 (A,B) and measure the resistance between the two bump contacts, it should be approx. 0 ohm.
if no signal is present, it may be necessary to replace the integrated circuit U2.
 Wiring diagram power board - power supply / control 
Wiring diagram - control board
Wiring diagram - change voltage board 115/230V (only for TECNICA)
Replacing the boards
If repairing the board is complicated or impossible, it should be completely replaced. The board is identified by a 6-digit code (printed in white on the component side after the initials TW). This is the reference code for requesting a replacement:
Telwin may supply boards that are compatible but with different codes.
Before inserting a new board check it carefully for damage that may have occurred in transit. When Technica supply a board it has already been tested and so if the fault is still present after it has been replaced correctly, check the other machine components. Unless specifically required by the procedure, never alter the board trimmers.
Before making the replacement make sure the components piloting the IGBT's are not also damaged:
- with the multimeter set in mode make sure there is no short circuit on the PCB between the 1 and 3 bump contacts (between gate and emitter) corresponding to each component;
- alternatively, resistors R40, R41, R42, R43 could have burst and/or diodes D32, D33, D34 and D35 may be unable to function at the correct Zener voltage (this should have shown up in the preliminary tests);
- clean any irregularity or dirt from the dissipaters. If the IGBT's have burst the dissipaters may have been irreversibly damaged: in this case they should be replaced;
- apply thermo-conductive grease following the general.
instructions.- Insert the new IGBT's between the dissipater and the spring, taking care not to damage the component during assembly (the spring should be inserted under pressure on the dissipater so as to lock the component);
- place the dissipaters with the new IGBT's and primary diodes D40 and D41 ( Make sure there is insulation between the case of diode D41 and the dissipater) in the PCB bump contacts, placing 4 spacers between the dissipater and the PCB (2 for each dissipater) and fasten them down with the screws (torque wrench setting for screws 1 Nm ±20%);
- solder the terminals taking care not to let the solder run along them;
- on the welding side cut away the protruding part of the rheofores and check they are not shorted (between the gate and emitter in particular).

The 4 SECONDARY DIODES are attached to the same dissipater, and when a replacement is required, all of them should be replaced:
- undo the screws attaching the dissipater to the board, to replace diodes D20, D21, D22 and D23;
- remove the 4 secondary diodes unsoldering the rheofores and cleaning any solder from the bump contacts on the board;
- remove the dissipater from the board;
- remove the spring locking the 4 diodes;
- clean any irregularity or dirt from the dissipater. If the diodes have burst the dissipater may have been irreversibly damaged: in this case it should be replaced;
- apply thermo-conductive grease following the general instructions;
- insert the new diodes between the dissipater and the spring, taking care not to damage the component during assembly (the screw should be inserted under pressure on the dissipater so as to lock the component);
- place the dissipater with the new components in the PCB bump contacts and fasten them down with the screws (torque wrench setting for screws 1 Nm ±20%);
- solder the terminals taking care not to let the solder run along them;
- on the soldering side cut away the protruding part of the rheofores and check they are not shorted (between cathode and anode); make sure resistor (R20) and capacitor (C20) on the snubber have been soldered to the PCB correctly.

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