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- With reference to Figure 13.2 and Table 13.2, when the instrument is at I1, the staff reading observed at A is 2.365m. The elevation of the line of sight i.e., the height of instrument is 102.365m obtained by adding the elevation of A (100.0m) with the staff reading observed at A (2.365m). The elevation of S1 (101.130m) is determined by subtracting its foresight reading (1.235m) from the the height of instrument (102.365m) when the instrument is at I1 . Next, the instrument is set up at I2. S1 is considered as a point of known elevation and backsight reading ( 0.685m) is taken . The height of the instrument (101.815 m) is then calculated by adding backsight reading ( 0.685m) with the elevation (R.L.) of point S1 (101.130m). Foresight is taken at S2 and its elevation (98.245m) is determined by subtracting the foresight (3.570m) from the height of the instrument (101.815 m). In this way, elevation of points are calculated by Height of instrument method.
Table 13.2 Level book note for Height of instrument method
Staff Reading
|
Height of Instrument (m)
|
R.L. (m)
|
Remarks
| ||
Points
|
B.S (m)
|
F.S.(m)
| |||
A
|
2.365
|
102.365
|
100.000
|
B.M.
| |
S 1
|
0.685
|
1.235
|
101.815
|
101.130
|
T.P.1
|
S2
|
3.570
|
98.245
|
T.P.2
| ||
B
|
2.340
|
97.650
| |||
EXAMPLE PROBLEM: If you understood go through the following examples.
Example
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- Ex13-1 Data from a differential leveling have been found in the order of B.S., F.S..... etc. starting with the initial reading on B.M. (elevation 150.485 m) are as follows : 1.205, 1.860, 0.125, 1.915, 0.395, 2.615, 0.880, 1.760, 1.960, 0.920, 2.595, 0.915, 2.255, 0.515, 2.305, 1.170. The final reading closes on B.M.. Put the data in a complete field note form and carry out reduction of level by Rise and Fall method. All units are in meters.Solution :B.S. (m)F.S. (m)Rise (m)Fall (m)Elevation (m)Remark1.205150.485B.M.0.1251.8600.655149.8300.3951.9151.7290148.0400.8802.6152.220145.8201.9601.7600.880144.9402.5950.9201.040145.9802.2550.9151.680147.6602.3050.5151.740149.4501.1701.135150.535B.M.
Arithmetic Check for Reduction of Level In case of Rise and Fall method for Reduction of level, following arithmetic checks are applied to verify calculations.S B.S. - S F.S. = S Rise - S Fall = Last R.L. - First R.L.
With reference to Table 13.3:S B.S. - S F.S. = 4.795 - 7.145 = - 2.350S Rise - S Fall. = 1.130 - 3.480 = - 2.350Last R.L. - First R.L.= 97.650 - 100.000 = -2.350Table 13.3 Field book for Reduction of levelStaff Reading (m)Difference in elevation (m)H.I (m)R.L. (m)RemarksPointsB.S.I.S.F.S.RiseFallA2.365102.365100.000B.M.S 10.6851.2351.130101.815101.130T.P.1S21.7453.5702.88599.99098.245T.P.2B2.3400.595102.36597.650S4.7957.1453.480101.815
| Example |
- Ex13-2 Carry out the arithmetic checks for Reduction of level of Ex13-1.Solution :S B.S. = 11.720 m; S F.S. = 11.670 mTherefore S B.S - S F.S. = 0.050 mS Rise = 5.595 m; S Fall = 5.545 mTherefore S Rise - S Fall = 0.050 mLast R.L. - First R.L. = 150.535 - 150.485 = 0.050 m.S B.S - S F.S. = S Rise - S Fall = Last R.L. - First R.L.ExampleEx13-3 Complete the differential-level notes and determine the error of closure of the level circuit and adjust the elevations of B.M.2 and B.M.3 assuming that the error is constant per set up.Level book note for Level NetStaff ReadingHeight of Instrument (m)R.L. (m)PointsB.S (m)F.S.(m)B.M.12.125T.P.11.8302.945T.P.22.1003.225T.P.31.6503.605B.M.22.3652.805T.P.42.8852.530T.P.53.0652.350B.M.33.8551.100T.P.63.2701.660T.P.73.8652.110B.M.13.455Solution :Staff ReadingHeight of Instrument (m)R.L. (m)PointsB.S (m)F.S.(m)B.M.12.125102.125100.000T.P.11.8302.945101.01099.18T.P.22.1003.22599.88597.785T.P.31.6503.60597.9396.280B.M.22.3652.80597.4995.125T.P.42.8852.53097.84594.960T.P.53.0652.35098.5695.495B.M.33.8551.100101.31597.46T.P.63.2701.660102.92599.655T.P.73.8652.110104.680100.815B.M.13.455101.225Error of closure = 101.225 - 100 = + 1.225 mThere are ten (10) set up for the instrument. Thus for each set up, there is an error of 0.1225 m.Therefore correction for each set up = - 0.1225 mAdjusted elevation of B.M.2 = 95.125 - 4 x .1225 = 94.635 mAdjusted elevation of B.M. 3 = 97.46 - 7 x .1225 = 96.603 m
