101495-3540 ZEXEL F 019 Z20 416 BOSCH INJECTION-PUMP ASSEMBLY f019z20416 1014953540


 

Information injection-pump assembly

BOSCH F 019 Z20 416 f019z20416
ZEXEL 101495-3540 1014953540
101495-3540 INJECTION-PUMP ASSEMBLY
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Service parts 101495-3540 INJECTION-PUMP ASSEMBLY:

1. _
2. FUEL INJECTION PUMP 101049-4120
3. GOVERNOR 105401-1420
4. SUPPLY PUMP 105220-5960
5. AUTOM. ADVANCE MECHANIS
6. COUPLING PLATE
7. COUPLING PLATE
8. _
9. _
10. NOZZLE AND HOLDER ASSY 105119-4160
11. Nozzle and Holder
12. Open Pre:MPa(Kqf/cm2) 19.6{200}
13. NOZZLE-HOLDER 105048-4450
14. NOZZLE 105017-3630
15. NOZZLE SET

Include in #1:

101495-3540 as INJECTION-PUMP ASSEMBLY

Include in #2:

Cross reference number

BOSCH F 019 Z20 416 f019z20416
ZEXEL 101495-3540 1014953540


Zexel num
Bosch num
Firm num
Name
101495-3540 
101495-3541 
F 019 Z20 416 
   
INJECTION-PUMP ASSEMBLY
* K 14BC PE4A,5A, 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   6-2-600
Overflow valve   131425-1420
Overflow valve opening pressure kPa   255 221 289
Overflow valve opening pressure kgf/cm2   2.6 2.25 2.95
Tester oil delivery pressure kPa   255 255 255
Tester oil delivery pressure kgf/cm2   2.6 2.6 2.6
Direction of rotation (viewed from drive side)
Right
  R
Injection timing adjustment
Direction of rotation (viewed from drive side)
Right
  R
Injection order   1-2-4-3
Pre-stroke mm   3.2 3.15 3.25
Rack position
After adjusting injection quantity.
  R=A
Beginning of injection position
Drive side
  NO.1
Difference between angles 1
Cyl.1-2
deg.   90 89.5 90.5
Difference between angles 2
Cal 1-4
deg.   180 179.5 180.5
Difference between angles 3
Cal 1-3
deg.   270 269.5 270.5
Injection quantity adjustment
Adjusting point   A
Rack position   10.1
Pump speed r/min   1100 1100 1100
Average injection quantity mm3/st.   80.5 79.5 81.5
Max. variation between cylinders %   0 -2.5 2.5
Basic   *
Fixing the lever   *
Boost pressure kPa   45.3 45.3
Boost pressure mmHg   340 340
Injection quantity adjustment_02
Adjusting point   -
Rack position   7.3+-0.5
Pump speed r/min   550 550 550
Average injection quantity mm3/st.   13 12 14
Max. variation between cylinders %   0 -15 15
Fixing the rack   *
Boost pressure kPa   0 0 0
Boost pressure mmHg   0 0 0
Remarks
Adjust only variation between cylinders; adjust governor according to governor specifications.
 
Injection quantity adjustment_03
Adjusting point   E
Rack position   10.6++
Pump speed r/min   100 100 100
Average injection quantity mm3/st.   63 58 68
Fixing the lever   *
Boost pressure kPa   0 0 0
Boost pressure mmHg   0 0 0
Rack limit   *
Boost compensator adjustment
Pump speed r/min   750 750 750
Rack position   R2-1.55
Boost pressure kPa   6.7 5.4 8
Boost pressure mmHg   50 40 60
Boost compensator adjustment_02
Pump speed r/min   750 750 750
Rack position   R2-1.15
Boost pressure kPa   13.3 12 14.6
Boost pressure mmHg   100 90 110
Boost compensator adjustment_03
Pump speed r/min   750 750 750
Rack position   R2(10.4)
Boost pressure kPa   32 32 32
Boost pressure mmHg   240 240 240

Test data Ex:

Governor adjustment

Test data 101495-3540
N:Pump speed R:Rack position (mm) (1)Target notch: K (2)RACK LIMIT (3)Boost compensator stroke: BCL (4)Set idle sub-spring (5)Rack difference between N = N1 and N = N2
----------
K=10 BCL=1.55+-0.1mm N1=1100r/min N2=750r/min
----------

Speed control lever angle

Test data 101495-3540
F:Full speed I:Idle (1)Stopper bolt setting (2)Use the hole at R = aa
----------
aa=74mm
----------
a=3deg+-5deg b=27deg+-5deg

Stop lever angle

Test data 101495-3540
N:Pump normal S:Stop the pump. (1)Pump speed aa and rack position bb (to be sealed at delivery) (2)No return spring
----------
aa=0r/min bb=1-0.5mm
----------
a=5deg+-5deg b=(55deg)

0000001501 TAMPER PROOF

Test data 101495-3540
Tamperproofing-equipped boost compensator cover installation procedure (A): After adjusting the boost compensator, assemble then tighten the bolts to remove the heads. (B): Specified torque (1)Before adjusting the governor and the boost compensator, tighten the screw to the specified torque. (Tightening torque T = T1 maximum) (2)After adjusting the governor and the boost compensator, tighten to the specified torque to break off the bolt heads. (Tightening torque T = T2)
----------
T1=2.5N-m(0.25kgf-m) T2=2.9~4.4N-m(0.3~0.45kgf-m)
----------

0000001601 I/P WITH LOAD PLUNGER ADJ

Load plunger-equipped pump adjustment 1. Adjust the variation between cylinders and the injection quantity. 2. At Full point A, adjust the pre-stroke to the specified value. 3. After pre-stroke adjustment, reconfirm that the fuel injection quantity and the variation between cylinders is as specified.
----------

----------

Timing setting

Test data 101495-3540
(1)Pump vertical direction (2)Position of key groove at No 1 cylinder's beginning of injection (3)Stamp aligning marks on the pump housing flange. (4)B.T.D.C.: aa
----------
aa=7.4deg
----------
a=58deg+-3deg b=2deg+-30min




Information:

To receive satisfactory engine performance with maximum fuel economy and service life, the following engine operation instructions must be applied. In addition, it is necessary to also apply the recommendations of the vehicle manufacturer as well as the every day rules of good driving.After the engine starts, reduce engine RPM to low idle with no load. When normal oil pressure is reached, operate the engine at low load for 5 minutes before applying full load.Stop Engine At Once If Any Part Fails
Almost all failures give a warning to the operator before the part completely fails. If the operator is alert and heeds the warnings, further damage may not happen. A few of the warning signs are: abnormal gauge readings, abnormal fluid levels, fluid leaks, unusual engine noises and excessive smoke. Do not operate an engine if any sign of part failure is present, only a few seconds can ruin an entire engine.Start vehicle in motion by utilizing the lowest gear speed in the transmission that will enable the engine to easily start the load without slipping the clutch. Accelerate smoothly and evenly until the engine speed reaches approximately 100% of rated RPM. Rapid depression of accelerator will result in undesirable heavy exhaust smoke and high fuel consumption with no increase in vehicle performance. Upshift to the next higher gear speed. If properly done, the engine speed will be above approximately 80% of rated RPM when the load is applied. For best performance do not skip gears. Engine speed should not be permitted to drop appreciably below 80% of rated RPM, to avoid a lugging condition.Caterpillar engines have good lugging characteristics; however, operating in a lug condition for extended periods of time should be avoided as it causes exhaust temperatures to rise and also results in high fuel consumption. A lug condition exists when an increase in engine speed cannot be achieved with an increase in accelerator pedal position, or when engine speed decreases with the accelerator pedal in its maximum position. A lug condition can exist at any engine speed below full load speed. Continue to make successive upshifts through each gear speed in the transmission until cruising speed is reached. In each gear speed, accelerate smoothly to an engine speed of approximately 100% of rated RPM before upshifting to the next gear. For highway cruising, maintain the engine speed between approximately 80% and 100% of rated RPM. Operating in this range will give maximum fuel economy.When going up a grade and the engine speed drops to below approximately 80% of rated RPM, downshift successively until a gear speed is reached that will enable the engine to pull the load without operating in a lug condition. When pulling a long grade, such as encountered in mountain driving, make additional downshifts of one or two gears immediately prior to reaching the summit. This will allow the engine to cool more slowly than if the load on the engine is suddenly changed from a full load condition going uphill to

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