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A06B6090H233 FANUC AC Servo Amplifier C series 2 axis type SVUC2 20-20

A06B6090H233

Jual A06B-6090-H233

Trade-in (Tukar tambah) A06B-6090-H233

Repair (Service) A06B-6090-H233

 Manufactured by FANUC

A06B-6090-H233, FANUC AC Servo Amplifier C series drive unit for 2 axis type SVUC2 20-20. 

Drive for FANUC Servo Motors Model 0-0SP, 0S, 5S, or 10S. FANUC Servo drive tested on Fanuc test rigs. Ready to install on your CNC Machine and replace your Fanuc C series defective drive.

This Servo drive A06B-6090-H233 comes with a warranty.
 
Weight: 13.35 lbs 

Available:

We will quickly reply to you via e-mail or phone with the our best available price. You can also call us at any time to CONTACT US or email to yamakikai.marketing@gmail.com.

Return Material Authorization Form (RMA) for send-in repairs and core returns.

If you need a specific firmware or series relating to A06B-6090-H233, we probably have it. Please call or email us with your request.

Estimated Retail Price -  CONTACT US

MAINTENANCE FANUC 6 SERIES CONTROLLER



6 SERIES CONTROLLER


When working on a machine with a Series 6 control it may be set up so that an over travel switch will cause a 400 series servo alarm. In this case, the PRDY LED will be turned off.

There is no keystroke combination to have the NC ignore the soft limits. The values are stored in the 140 to 160 range of parameters.

If the power supply keeps going in to fault status (red LED), you must first eliminate external causes by removing the wires from the 5 and 24 volt terminals. The cause of the fault when the external sources have been removed is almost always the voltage stabilizer. The stabilizer is connected to the power supply by a cable that runs from CP1 on the power supply to CP34 on the voltage stabilizer. If you remove this
cable from either unit before turning the power on, the power supply won't fault. After the power has been on for a while the components will warm up, then you can turn the power off, reconnect the cable and power up again.

Some machines with Fanuc controls, particularly older controls like 5 and 6 controls will use scales on the axes either with or without a pulse coder. On those machines not using a pulse coder they will typically have a tacho-generator for velocity feedback. The scale may be made by a manufacturer such as Heidenhain but often it will be a Fanuc induction scale. These are known as Inductosyn scales and sometimes referred to as resolvers. If the axis has the scale and a pulse coder it is easier to troubleshoot servo and positioning problems. When the axis has a scale, it uses the scale for positioning rather than the pulse coder. So if you have a positioning problem you can detach the scale (parametrically) and use the pulse coder for positioning. If the positioning problem goes away either the scale, its wiring or the Resolver/Inductosyn board is bad. This board conditions the signal from these peripheral devices for use by the NC. In the case of a Series 6 control, this board plugs into the Master Board. Also, in the case of a Series 6, the parameter for removing the scale is P316.0 for the X axis, P316.1 for the Y axis and P316.2 for the Z axis. This is also very useful in troubleshooting axis movement problems such as jerked or rough motion which can be caused by poor feedback. A 1 in the parameter means a scale is used for position feedback, 0 means a pulse coder is used. On the Res/Inductosyn board, you will find a 20 pin Honda connector for each axis. In the case of a three axis machine they are C31 for X, C34 for Y and C37 for Z. You will also find two circular connectors at the bottom of the board for each axis. Referring to the above example, C32 and C33 are for X, C35 and C36 are for Y and C38 and C39 are for Z. The machine can actually be run with the scale detached and using the pulse coder but, of course, will require either Grid Shift adjustment or re-touching of tools. Every control has this ability although the parameter numbers will vary from control to control. When troubleshooting servo problems on an axis such as rough or jerked movement you can swap the command and feedback cables just as you would with a machine using pulse coders. In the case of a machine using a pulse coder for positioning an axis you must swap the command cable which in most cases will be CN1 on the servo amplifier. In addition you must swap the feedback cable which normally runs from the pulse coder to the axes card. The number or name of this connector varies from control to control and also by axis. You have to swap both. Assuming the machine is standard setup such that the all axes have the same pulse coder (resolution, etc.), and the motor directions are set the same the axis swapped with will move when the other axis in the swap is commanded to move. This will allow you to either rule in or rule out either the mechanical or control part of the servo system as the cause of a given problem. In the case of a machine using the scales, the same is true with the exception that there are more cables to swap. You have to swap CN1 as well as the 20 pin Honda connector and the two circular connectors. For example, if you had a problem with the Z axis of a machine you could swap the Z axis with the Y axis. First swap CN1 between the two axes. Then switch C34 with C37. Next switch C35 and C36 with C38 and C39. Anytime you swap cables, make sure you DO NOT REFERENCE RETURN (ZRN) the machine. Obviously, this would cause problems since if the Z axis attempts to reference return, the Y axis will be moving so the Z axis decel switch will never be reached. Another test is to swap the feedback cables at the RES/INDUCTOSYN board and the motor leads at the servo amplifiers. In this case when you give the command for the X axis to move, for example, the Y axis would move, the Y feedback would be sent to the X axis feedback circuits. You will be using the X axis amplifier, axis control board or X axis section of this board and the X axis parameters to control the Y axis. This will eliminate these things as the cause of the problem. Another component to be aware of when these scales are used is a Fanuc board normally found close to the scale reader. This is a pre-amplifier and can sometimes cause problem. The reader is a four wire device. The wires are labeled A, B, C and D. Fanuc calls the reader a slider and sometimes the term will be applied to the complete scale. C31, C33 and C35 are connected to the X, Y and Z sliders. C32, C34 and C36 are connected to the X, Y and Z pre-amplifiers. The RES/INDUCTOSYN board Fanuc number is A20B-0008-0461. The connectors from left to right looking at the front of the board are:

C32  C33  C35  C36  C38  C39

The Tach feedback comes in on the Honda 20 pin connectors C31 for X, C34 for Y and C37 for Z.

On a 6M control if you have certain servo alarms, particularly SV008, you can try to swap just the top board of the drive rather than the entire drive. This can be done by removing only two cables. If you experience new alarms, it may be necessary to change the shorting pins on the boards to make them match how they were before the boards were swapped. This is probably due to a mismatch between either the control or the parameters for that axis and the shorting pin configuration. When this alarm occurs an axis designation will be displayed along with the alarm. The alarm means that the axis position deviated by an amount greater than the value set in parameter 1829 while the axis was stopped (not moving). If the axis position deviates while in motion the parameter where the value is stored is 1828. 

The drives on this control use a single Honda 20 pin connector for both the command and feedback. This cable goes from the drive to the Main Board.

The Grid Shift Parameters for X, Y and Z on a 6M control are 82, 83 and 84 respectively.


6M Controller

If parameter 318.7 is set to 0 the 9000 series programs will be protected and cannot be viewed or edited. If parameter 319.7 is set to 0 the 8000 series programs are protected and cannot be viewed or edited. M-Codes can be attached to specific programs by using parameters 320-332. Certain program numbers are assigned to the parameters, parameter 320 is assigned to program number 9001, parameter 321 is assigned to 9002, etc. The way this works is that, for example, if you assign a value of 70 to parameter 320, when M70 is commanded the control will call up and execute program 9001.

To view the PC parameters on a 6M control that does not have an NC/PC button, press the PARAM button twice then enter the number of the parameter you want to access. Press INPUT. It may be necessary to use put N in front of the number. I.E. N2001. In order to change the value of the parameter you must put a P before the number. I.E. P0 

On machines that will controls such as the 6M which use a spindle amplifier with an orientation board, the IN POSITION LED (LED 6) should be on whenever the spindle is within one degree of it's orientation position. If this LED does not come on after spindle orientation is performed the SPINDLE ORIENTATION COMPLETION SIGNAL will not be output form the CNC. In this case, any function which is waiting for this signal to turn on will not be able to activate. If the spindle is in position but the LED is off you can adjust RV7 IN-POSITION to bring it on.

The axis interlock signals for a 6M control are:

ITX - G96.4
ITY - G97.4
ITZ - G98.4

These are active low signals so a value of 0 will allow axis motion. In the case of a machine that uses hardware inputs to interlock the axes:

ITX - X32.4
ITY - X33.4
ITZ - X35.4

Of course, these are the Fanuc defined and recommended addresses but the machine builder can define their own addresses.

On a 6T control the Backlash Parameters are 115 for X and 116 for Z.

For alarm 087 on 6T control check parameter 310.5 for I/O device 1 or parameter 311.5 for I/O device 2. If set to 1, control codes are not used.  In most cases setting does not matter but in a few it does. 

 310.5 = RSCB1
 311.5 = RSCB2.

A02B0120C051TA OPERATOR PANEL WITH CRT

A02B0120C051TA

Jual A02B-0120-C051/TA

Trade-in (Tukar tambah) A02B-0120-C051/TA

Repair (Service) A02B-0120-C051/TA

 Manufactured by GE FANUC

OPERATOR PANEL WITH CRT
Weight: 10.75 lbs
 
Available:
We will quickly reply to you via e-mail or phone with the our best available price. You can also call us at any time to CONTACT US or email to yamakikai.marketing@gmail.com.
Return Material Authorization Form (RMA) for send-in repairs and core returns.

If you need a specific firmware or series relating to A02B-0120-C051/TA, we probably have it. Please call or email us with your request.

Estimated Retail Price -  CONTACT US

A06B6066H244 FANUC AC Servo Amplifier C series 2 axis type SVUC2 40-40.

A06B6066H244

Jual A06B-6066-H244

Trade-in (Tukar tambah) A06B-6066-H244

Repair (Service) A06B-6066-H244

 Manufactured by FANUC

A06B-6066-H244, FANUC AC Servo Amplifier C series drive unit for 2 axis type SVUC2 40-40.

Drive for FANUC Servo Motors Model 0-0SP, 0S, 5S, or 10S. FANUC Servo drive tested on Fanuc test rigs. Ready to install on your CNC Machine and replace your Fanuc C series defective drive.

This Servo drive A06B-6066-H244 comes with a warranty.
 
Weight: 13.35 lbs 

Available:

Send-in Repair -> Contact us for Quick Online Repair Price Quote Request.

Exchange program -> Contact us for Quick Online Exchange Price Quote Request.

Buy (brand new or rebuild) -> Contact us for Quick Online Sale Price Quote Request.

We will quickly reply to you via e-mail or phone with the our best available price. You can also call us at any time to CONTACT US or email to yamakikai.marketing@gmail.com.

Return Material Authorization Form (RMA) for send-in repairs and core returns.
If you need a specific firmware or series relating to A06B-6066-H244, we probably have it. Please call or email us with your request.

Estimated Retail Price -  CONTACT US

JUAL A06B-6111-H011#H570 SPM-11i FANUC Alpha Spindle Amplifier Module

A06B-6111-H011#H570 SPM-11i FANUC Alpha Spindle Amplifier Module

When you need FANUC repair services and replacement FANUC parts for your A06B-6111-H011#H570 SPM-11I alpha spindle power amplifier, contact the CNC machine repair technicians at YAMAKIKAI INDONESIA.

 
JUAL FANUC:

αi SPM 11i for sale online, Alpha Spindle Amplifier Module manufactured by Fanuc Japan. Part ready to install on your CNC Machine-tools and replace your defective FANUC A06-61111-H011#H570. This Alpha SPM 11i. All of our FANUC Alpha Spindle Amplifier Module supplies from the i series modules are tested on our FANUC Test rigs. Each Fanuc SPM i sold have a warranty listed below. The A06B-6111-H011#H570 SPM-11i is a FANUC alpha spindle power amplifier often utilized in small CNC machining centers. The A06B-6111-H011#H570 SPM-11I is a 200v, 11Kw powered spindle amplifier fitted with smaller sized spindle motors. YAMAKIKAI INDONESIA offers the best CNC machine repair services and carries a plethora of replacement FANUC parts for the A06B-6111-H011#H570 alpha spindle amplifier.
Warranty - for Service (3 Month) The product A06B-6140-H011 Fanuc iPS 11 Alpha Power Supply is under warranty for a repair of the product throughout the entire duration of its contractual period (Subject to conditions).

Price/PC : IDR ,- (Negotiable)

(Contact us)
Phone             : 021 4707 129
               021 9666 6143

Contact Person Bapak Tono
Mobile           : 0812 9114 0555
                        :  0857 7555 2777
Pin                  : 7ED0AC5A

Office             : Jl. Perintis Kemerdekaan No.38, Pulogadung,
  Jakarta Timur, Indonesia 134620
Workshop     : Jl. Raya Penggilingan Km.8, Cakung,
                          Jakarta Timur, Indonesia 13940
Email             : yamakikai.marketing@gmail.com
Web                : www.yamakikai-indonesia.blogspot.com

MAINTENANCE FANUC 5 SERIES CONTROLLER



5 SERIES CONTROLLER


This is a very old control which does not have a CRT. Data input is accomplished by scrolling across the LED display with the Address buttons until you are beneath the appropriate code (M, S, T, X, Y, Z, etc.) Once you are under the code letter, use the keypad to enter the desired value and press the Input button.

To check for an Alarm, scroll to ALM. If an alarm is present the corresponding LED will be lit in the Alarm window (OH, OT, etc.)  The OT indicates an over travel condition. With a 5TC control, the power supply for both axes is mounted on the X axis servo amplifier. These amplifiers are DC Servo Units. To see if the power supply is operating properly, check the test points on either unit. Pin 17 should be -15vdc, Pin 16 should be +15vdc, Pin 15 should be +24vdc. All measurements are referenced to Pin 14, 0vdc.

The incoming AC is supplied to the rear of the servo. The MCC contactor is also located here. MCC has a different meaning on the older controls. On the newer controls, MCC is one large contactor which supplies power to all of the servo amps and the spindle amp whenever the control is in a ready state. On this control, each axis and the spindle controller are equipped with their own MCC which may or may not be energized at the same time depending on the state of the NC. Terminals 1 and 2 on the Servo Unit should be about 170-210 VAC while terminals 3 and 4 should be around 100 VAC.

In order to change parameters on the Series 5 you must place the PRM/NOR toggle switch in the PRM position. 

The parameters on a Series 5 are easily scrambled. Look for the software version on the upper IC's on the CPU board. The  software is typically numbered 130,135,153,etc.

The Velocity Control Units (Servos) have a toggle switch to select either 50 or 60 hertz operation.

When the control is operating normally, you should be able to observe the following at power up.

1. Power comes on; after about two seconds the servos are sent the position ready signal (PRDY) 24vdc.

2. Once the servos are ready they send the signal to the NC. You should hear the MCC's energize and stay  
    energized. If they energize and then drop back out there is a problem with one of the servos.

A problem with one servo will disable the PRDY causing the other MCC's to drop out. You can isolate this condition by removing the fuses on the rear of the servo. In most cases these will be 15 amp fuses. The NC is not aware if these fuses are present or not so removing them will prevent the servo from sending a fault signal thereby allowing the control to come up. Even if the fuses are removed while the NC is in a ready state it will remain in a ready state. These fuses may be purchased from Fanuc USA for about $6.00. The part number for the 15 amp fuses is PL4150/SFAB250/402G. Also, these fuses have a contact which close when the fuse is blown. Closing of this contact will prevent the control from coming up but will not generate an alarm. Even momentary closure of this contact will cause both servos to drop out and stay out.

This is very important! If you have a machine that will not come up but the ALARM LED is off as well as the READY LED you almost certainly have either a servo problem or an E-Stop condition.(E-Stop button, Over Travel, etc.) When you have a true servo fault, the ALARM LED will be on and there will be a 1 under SV in the diagnostics. 

The Series 5 control has the capability of storing just one program in battery backed RAM, but it can be a long one ( 10 or 20 meters). This RAM board was an option that most controls were ordered without. If it is present on a control it can be recognized as a board riding "piggy-back" on one of the two main boards.

A Series 5 control has no RS-232 ability, but there are aftermarket devices which will interface with the Tape Reader. The tape readers Baud Rate is 300. 

To return to G Code programming from Conversational programming, press the soft key at the far left of the screen several times. When in graphics, press the PRGRM key on the keypad then use the soft key. Most Spindle functions are controlled by the MTB. They are controlled by affecting the values of the 6000 series parameters and by setting Diagnostic bits.

On a Mazak with a 5M control, if the control skips M Codes or does not execute them properly try replacing one of the I/O modules particularly the M-FIN module.

STOCK Power Supply Module/Unit

Berikut kami list stock Sparepart INDENT over 1 month FANUC, YASKAWA, FUJITSU, HITACHI,MITSUBISHI. Untuk Pemesanan dan Harga hubungi kami di SINI.

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STOCK SPAREPART YASKAWA

Berikut kami list stock Sparepart INDENT over 1 month FANUC, YASKAWA, FUJITSU, HITACHI,MITSUBISHI.
Untuk Pemesanan dan Harga hubungi kami di SINI.

JUAL JANCD-FC900B-2 Yaskawa YASNAC i80 PCB PANEL I/F BOARD (Hanya untuk pemesanan indent)

JUAL JANCD-FC900C-1 Yaskawa PCB CRT PANEL CONTROL (Hanya untuk pemesanan indent)

JUAL JANCD-FC903-1 Yaskawa / Yasnac i80 CNC I/O Card PCB  (Hanya untuk pemesanan indent)

Jual IGBT Module

Berikut kami list stock IGBT Module Unit FANUC Series.     Untuk Pemesanan dan Harga hubungi kami di SINI.


Jual IGBT Module 2DI200A-050 FUJI
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Stock FANUC Monitor Unit

Berikut kami list stock Monitor Unit FANUC Series.    
Untuk Pemesanan dan Harga hubungi kami di SINI.



Fanuc Mono Monitors

Jual FANUC Monitor A61L-0001-0072
Jual FANUC Monitor A61L-0001-0073
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