Find, by Mercator Sailing, the course and distance:-
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FROM |
TO |
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LATITUDE |
LONGITUDE |
LATITUDE |
LONGITUDE |
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| 1. | 24˚ 00.0’ N | 074˚ 15.0’ W | 46˚ 00.0’ N | 053˚ 45.0’ W |
| 2. | 06˚ 00.0’ N | 079˚ 00.0’ W | 38˚ 00.0’ S | 179˚ 00.0’ E |
| 3. | 40˚ 18.0’ N | 100˚ 20.0’ W | 68˚ 00.0’ N | 140˚ 10.0’ E |
| 4. | 70˚ 20.0’ N | 010˚ 22.0’ W | 52˚ 50.0’ N | 009˚ 45.0’ E |
| 5. | 32˚ 29.0’ S | 064˚ 00.0’ E | 49˚ 50.0’ S | 005˚ 15.0’ E |
NOTE:
- Where the distance exceeds 600 M,
it is generally recommended to use Mercator sailing so that results are more accurate results obtained.
- To get DMP, apply same rule as for D’Lat i.e, same names subtract, different names add.
- To get distance, use plane sailing formula.
- In order to understand and solve such questions in a better and easy way, one must always draw the diagram.
SOLUTION:
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LAT P 24˚ 00.0’ N LONG P 074˚ 0’ W MP OF P 1474.54 N
LAT Q 46˚ 00.0’ N LONG Q 053˚ 45.0’ W MP OF Q 3098.70 N
D’LAT 22˚ 00.0’ N D’LONG 020˚ 30.0’ W DMP 1624.16
We know that:
TAN CO. = (D’LONG / DMP)
= (1230 / 1624.16)
COURSE = N 37˚ 08.23’ W
DISTANCE = (D’LAT × SEC CO.)
DIST. = 1655.81 M
COURSE = N 37˚ 08.23’ W DIST. = 1655.81 M
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LAT P 06˚ 00.0’ N LONG P 079˚ 0’ W MP OF P 0358.20 N
LAT Q 38˚ 00.0’ S LONG Q 179˚ 00.0’ E MP OF Q 2453.85 S
D’LAT 44˚ 00.0’ S D’LONG 102˚ 00.0’ W DMP 2812.05
We know that:
TAN CO. = (D’LONG / DMP)
= (6120 / 2812.05)
COURSE = S65˚ 19.31’ W
DISTANCE =( D’LAT × SEC CO.)
DISTANCE = 6323.03 M
COURSE = S65˚ 19.31’ W DISTANCE = 6323.03 M
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LAT P 40˚ 18.0’ N LONG P 100˚ 0’ W MP OF P 2631.10 N
LAT Q 68˚ 00.0’ N LONG Q 140˚ 10.0’ E MP OF Q 5609.09 N
D’LAT 27˚ 42.0’ N D’LONG 119˚ 30.0’ W DMP 2978.00
We know that:
TAN CO. = (D’LONG / DMP)
= (7170 /2978)
COURSE = N 67˚ 26.7’ W
DISTANCE = (D’LAT × SEC CO.)
DIST. = 4332.97 M
COURSE = N 67˚ 26.7’ W DIST. = 4332.97 M
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LAT P 70˚ 20.0’ N LONG P 010˚ 0’ W MP OF P 6002.80 N
LAT Q 52˚ 50.0’ N LONG Q 009˚ 45.0’ E MP OF Q 3728.51 N
D’LAT 17˚ 30.0’ S D’LONG 020˚ 07.0’ E DMP 2274.29
We know that:
TAN CO. = (D’LONG / DMP)
= (1207/2274.29)
COURSE = S27˚ 57.3’ E
DISTANCE = (D’LAT × SEC CO.)
DIST. = 1188.7 M
COURSE = S27˚ 57.3’ E DIST. = 1188.7 M
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LAT P 32˚ 29.0’ S LONG P 064˚ 0’ E MP OF P 2050.10 N
LAT Q 49˚ 50.0’ S LONG Q 005˚ 15.0’ E MP OF Q 3441.05 N
D’LAT 17˚ 21.0’ S D’LONG 058˚ 45.0’ W DMP 1390.95
We know that:
TAN CO. = (D’LONG/DMP)
= (3525/1390.95)
COURSE = S 68˚ 28.00’ W
DISTANCE = D’LAT × SEC CO
DIST. = 2836.18 M
COURSE = S68˚ 28.00’ W DIST. = 2836.18 M
FIND, BY MERCATOR’S PRINCIPLE, THE POSITION ARRIVED:-
STARTING POSITION |
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LATITUDE |
LONGITUDE |
COURSE |
DISTANCE |
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| 6. | 36˚ 48.0’ N | 085˚ 53.0’ W | 241˚ | 1897 M |
| 7. | 06˚ 10.0’ S | 176˚ 47.0’ W | 333˚ | 4450 M |
| 8. | 38˚ 18.0’ S | 005˚ 11.0’ W | 124˚ | 3256 M |
| 9. | 44˚ 11.0’ N | 140˚ 20.0’ W | 056˚ | 2222 M |
| 10. | 18˚ 58.0’ N | 072˚ 52.0’ E | 265˚ | 7126 M |
Thank you for your usefull solution but what are those numbers under latitudes which you add and subtract them to find DMP?
Thanks for your time
Sir how’d you get the name for getting the final course…