106671-5920 ZEXEL 9 400 613 299 BOSCH INJECTION-PUMP ASSEMBLY 9400613299 1066715920 1671496514


 

Information injection-pump assembly

BOSCH 9 400 613 299 9400613299
ZEXEL 106671-5920 1066715920
NISSAN-DIESEL 1671496514 1671496514
106671-5920 INJECTION-PUMP ASSEMBLY
Rating:
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Buy INJECTION-PUMP ASSEMBLY 106671-5920 zexel genuine, new aftermarket engine parts with delivery

Service parts 106671-5920 INJECTION-PUMP ASSEMBLY:

1. _
2. FUEL INJECTION PUMP 106061-7690
3. GOVERNOR 105487-7560
4. SUPPLY PUMP 105237-4210
5. AUTOM. ADVANCE MECHANIS 105681-1660
6. COUPLING PLATE 105663-0650
7. COUPLING PLATE
8. _
9. _
10. NOZZLE AND HOLDER ASSY 105101-7930
11. Nozzle and Holder 16600-96609
12. Open Pre:MPa(Kqf/cm2) 17.7{180}/22.6{230}
13. NOZZLE-HOLDER 105030-4210
14. NOZZLE 105015-8770
15. NOZZLE SET

Include in #1:

106671-5920 as INJECTION-PUMP ASSEMBLY

Cross reference number

BOSCH 9 400 613 299 9400613299
ZEXEL 106671-5920 1066715920
NISSAN-DIESEL 1671496514 1671496514


Zexel num
Bosch num
Firm num
Name
106671-5920 
9 400 613 299 
1671496514  NISSAN-DIESEL
INJECTION-PUMP ASSEMBLY
PF6TA K 14CA INJECTION PUMP ASSY PE6P,6PD PE

Calibration Data:

Adjustment conditions
Test oil
1404 Test oil
  ISO4113 or {SAEJ967d}
Test oil temperature degC   40 40 45
Nozzle and nozzle holder   105780-8140
Bosch type code   EF8511/9A
Nozzle   105780-0000
Bosch type code   DN12SD12T
Nozzle holder   105780-2080
Bosch type code   EF8511/9
Opening pressure MPa   17.2
Opening pressure kgf/cm2   175
Injection pipe
Outer diameter - inner diameter - length (mm)
mm   8-3-600
Overflow valve   134424-0020
Overflow valve opening pressure kPa   157 157 157
Overflow valve opening pressure kgf/cm2   1.6 1.6 1.6
Tester oil delivery pressure kPa   157 157 157
Tester oil delivery pressure kgf/cm2   1.6 1.6 1.6
Direction of rotation (viewed from drive side)
Right
  R
Injection timing adjustment
Direction of rotation (viewed from drive side)
Right
  R
Injection order   1-4-2-6- 3-5
Pre-stroke mm   3.9 3.85 3.95
Beginning of injection position
Drive side
  NO.1
Difference between angles 1
Cal 1-4
deg.   60 59.5 60.5
Difference between angles 2
Cyl.1-2
deg.   120 119.5 120.5
Difference between angles 3
Cal 1-6
deg.   180 179.5 180.5
Difference between angles 4
Cal 1-3
deg.   240 239.5 240.5
Difference between angles 5
Cal 1-5
deg.   300 299.5 300.5
Injection quantity adjustment
Adjusting point   A
Rack position   11.3
Pump speed r/min   700 700 700
Average injection quantity mm3/st.   180.5 178.5 182.5
Max. variation between cylinders %   0 -4 4
Basic   *
Fixing the lever   *
Boost pressure kPa   86.6 86.6
Boost pressure mmHg   650 650
Injection quantity adjustment_02
Adjusting point   D
Rack position   6.1+-0.5
Pump speed r/min   250 250 250
Average injection quantity mm3/st.   11 10 12
Max. variation between cylinders %   0 -10 10
Fixing the rack   *
Boost pressure kPa   0 0 0
Boost pressure mmHg   0 0 0
Boost compensator adjustment
Pump speed r/min   500 500 500
Rack position   9.35
Boost pressure kPa   6.7 1.4 12
Boost pressure mmHg   50 10 90
Boost compensator adjustment_02
Pump speed r/min   500 500 500
Rack position   (11.3)
Boost pressure kPa   77.3 74.6 80
Boost pressure mmHg   580 560 600
Timer adjustment
Pump speed r/min   750--
Advance angle deg.   0 0 0
Remarks
Start
 
Timer adjustment_02
Pump speed r/min   700
Advance angle deg.   0.5
Timer adjustment_03
Pump speed r/min   1050
Advance angle deg.   2 1.5 2.5
Remarks
Finish
 

Test data Ex:

Governor adjustment

Test data 106671-5920
N:Pump speed R:Rack position (mm) (1)Lever ratio: RT (2)Target shim dimension: TH (3)Tolerance for racks not indicated: +-0.05mm. (4)Rack limit using stop lever: set at R1 (at N = N1) before boost compensator adjustment (5)Boost compensator stroke: BCL (6)Damper spring setting (7)Perform governor adjustment at an ambient temperature of at least 15 deg C (boost compensator start spring is shape memory alloy).
----------
RT=1 TH=2.1mm R1=12.5+-0.1mm N1=100r/min BCL=(1.95)mm
----------

Speed control lever angle

Test data 106671-5920
F:Full speed
----------

----------
a=(11deg)+-5deg

0000000901

Test data 106671-5920
F:Full load I:Idle (1)Stopper bolt setting (2)Use the hole at R = aa
----------
aa=17mm
----------
a=15deg+-5deg b=28.5deg+-3deg

Stop lever angle

Test data 106671-5920
N:Pump normal S:Stop the pump. (1)Drive side (2)Rack position = aa (3)Use the hole at R = bb
----------
aa=12.5+-0.1mm bb=32mm
----------
a=32deg+-5deg b=6.5deg+-5deg

Timing setting

Test data 106671-5920
(1)Pump vertical direction (2)Coupling's key groove position at No 1 cylinder's beginning of injection (3)- (4)-
----------

----------
a=(20deg)




Information:

The troubleshooting chart provides a definite sequence to be followed for a logical procedure to determine the frequency and amplitude of vibration so that the source of the vibration can be located and corrected.1. The customer must be asked questions to determine whether his complaint is valid, or whether his diagnosis of the actual problem is correct.Some of the questions that must be asked are as follows:a. What components are vibrating?b. In what speed range does this vibration become excessive?c. Does clutch operation affect the vibration?d. What is the history of the problem?2. Run the engine through the idle speed range and note all vibrating components. Look for any loose or broken mounts, brackets, and fasteners. Repair and tighten any fixtures.3. Check idle speed range with clutch disengaged. If vibrations subside, there is a balance problem with the clutch disc. The clutch disc must be repaired or replaced.4. Further analysis requires the use of a vibration instrument. Any instrument which can accurately measure the displacement of the vibration (usually in mils-inch/1000) and the frequency (cycles per second) will be sufficient. A vibration instrument such as the IRD Mechanalysis Model 320 or an equivalent instrument can be used to analyze vibration.5. Measure vibration of cab components which have the objectionable vibration.Run engine slowly through the speed range and measure vibration with the instrument filter OUT. When peak amplitudes are found, run the engine at the speeds they occur and with the instrument filter IN, find the frequency of the vibration.If the frequency of vibration is 1/2 times of engine rpm (1/2 order), the vibration is caused by a cylinder misfiring. This must be corrected before further vibration analysis is made.If the frequency of vibration is 3 times engine rpm, no corrective action can be taken on the engine because this is the firing frequency of the 3306 engine. The problem is in the cab or chassis resonance.If frequency is some order other than 1/2 or 3rd, then further measurements must be made on the engine.6. Measurements taken on the engine must be made perpendicular to the crankshaft at the front and, rear of the engine in vertical and horizontal directions.7. Record all vibrations over 4.0 mils and the engine rpm at which it occurs (100 rpm intervals are sufficient) with instrument filter OUT. Note any sudden increase and decrease in amplitudes. These occur in resonant speed ranges.If no amplitudes exceed 4.0 mils, the engine is within Caterpillar Specifications.If amplitudes exceed 4.0 mils, the vibrations must be measured with the instrument filter IN to obtain the frequency of the vibrations.8. Run the engine at high idle. With the instrument filter IN, check the frequency range and record any amplitudes over 4.0 mils and the corresponding frequency. Analysis of vibrations for the possible causes is done by identifying the frequency of the vibration and where on the engine it is the greatest magnitude. Make reference to Special Instruction, Troubleshooting Engine Vibration In Vehicular Equipment, SEHS7914 for additional information for troubleshooting vibration complaints.

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