Trigonometry Modelling












0














I have another question I'm stuck on and have literally no clue to start. It's to do with trigonometry and bearings and I am horrible at worded questions.



"A jet ski travels 200m in a straight line on a bearing of 200°, then 600m in a straight line on a bearing of 060°. Calculate the distance the jet ski must travel, to the nearest m, and the bearing on which it needs to travel to return directly to its start point."



What I've done so far is constructed the triangle, but from there I'm absolutely clueless as to what I need to do.



enter image description here



Once again, thank you all.










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  • Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
    – Matti P.
    16 hours ago












  • @MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
    – Toby Mak
    15 hours ago
















0














I have another question I'm stuck on and have literally no clue to start. It's to do with trigonometry and bearings and I am horrible at worded questions.



"A jet ski travels 200m in a straight line on a bearing of 200°, then 600m in a straight line on a bearing of 060°. Calculate the distance the jet ski must travel, to the nearest m, and the bearing on which it needs to travel to return directly to its start point."



What I've done so far is constructed the triangle, but from there I'm absolutely clueless as to what I need to do.



enter image description here



Once again, thank you all.










share|cite|improve this question









New contributor




Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.




















  • Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
    – Matti P.
    16 hours ago












  • @MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
    – Toby Mak
    15 hours ago














0












0








0







I have another question I'm stuck on and have literally no clue to start. It's to do with trigonometry and bearings and I am horrible at worded questions.



"A jet ski travels 200m in a straight line on a bearing of 200°, then 600m in a straight line on a bearing of 060°. Calculate the distance the jet ski must travel, to the nearest m, and the bearing on which it needs to travel to return directly to its start point."



What I've done so far is constructed the triangle, but from there I'm absolutely clueless as to what I need to do.



enter image description here



Once again, thank you all.










share|cite|improve this question









New contributor




Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.











I have another question I'm stuck on and have literally no clue to start. It's to do with trigonometry and bearings and I am horrible at worded questions.



"A jet ski travels 200m in a straight line on a bearing of 200°, then 600m in a straight line on a bearing of 060°. Calculate the distance the jet ski must travel, to the nearest m, and the bearing on which it needs to travel to return directly to its start point."



What I've done so far is constructed the triangle, but from there I'm absolutely clueless as to what I need to do.



enter image description here



Once again, thank you all.







trigonometry word-problem






share|cite|improve this question









New contributor




Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.











share|cite|improve this question









New contributor




Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.









share|cite|improve this question




share|cite|improve this question








edited 15 hours ago









N. F. Taussig

43.6k93355




43.6k93355






New contributor




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Check out our Code of Conduct.









asked 16 hours ago









Jia Xuan Ng

31




31




New contributor




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Check out our Code of Conduct.





New contributor





Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.






Jia Xuan Ng is a new contributor to this site. Take care in asking for clarification, commenting, and answering.
Check out our Code of Conduct.












  • Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
    – Matti P.
    16 hours ago












  • @MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
    – Toby Mak
    15 hours ago


















  • Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
    – Matti P.
    16 hours ago












  • @MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
    – Toby Mak
    15 hours ago
















Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
– Matti P.
16 hours ago






Idea: convert the lines and distances to vectors, and add 'em up! You can put the origin at the starting point.
– Matti P.
16 hours ago














@MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
– Toby Mak
15 hours ago




@MattiP. I'm assuming this is an IGCSE question. If it is, the unit on vectors is after the unit on trigonometry and bearings, so the OP might not be able to use your method.
– Toby Mak
15 hours ago










1 Answer
1






active

oldest

votes


















3














enter image description here



(DB, EA, and FC are all parallel)



If only we had $angle ABC$, we could use the cosine rule to find $AC$! Well, that's exactly what we're going to do:



$$angle EAB = 160º text{(reflex angles)}$$
$$angle DBA = 20º text{(alternate angles)}$$
$$ABC = 40º$$



Now, use the cosine rule:
$$AC^2 = 200^2 + 600^2 - 2(200)(600) cos 40º$$
$$AC = sqrt{200^2 + 600^2 - 2(200)(600) cos 40º}$$
$$= 465 text{(3 s.f)}$$



Now for part $2$, the bearing of $CA$ is just $360º - angle FCA$. However, $angle DBC$ and $angle FCB$ are corresponding angles, so $angle FCB = 120º$.



If you just work out $angle ACB$ (either sine rule or cosine rule works with $AC$ known), you can get the answer.






share|cite|improve this answer





















  • What software are you using? GeoGebra?
    – Lucas Henrique
    15 hours ago










  • @LucasHenrique Yep. I also haven't used Paint before.
    – Toby Mak
    15 hours ago











Your Answer





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1 Answer
1






active

oldest

votes








1 Answer
1






active

oldest

votes









active

oldest

votes






active

oldest

votes









3














enter image description here



(DB, EA, and FC are all parallel)



If only we had $angle ABC$, we could use the cosine rule to find $AC$! Well, that's exactly what we're going to do:



$$angle EAB = 160º text{(reflex angles)}$$
$$angle DBA = 20º text{(alternate angles)}$$
$$ABC = 40º$$



Now, use the cosine rule:
$$AC^2 = 200^2 + 600^2 - 2(200)(600) cos 40º$$
$$AC = sqrt{200^2 + 600^2 - 2(200)(600) cos 40º}$$
$$= 465 text{(3 s.f)}$$



Now for part $2$, the bearing of $CA$ is just $360º - angle FCA$. However, $angle DBC$ and $angle FCB$ are corresponding angles, so $angle FCB = 120º$.



If you just work out $angle ACB$ (either sine rule or cosine rule works with $AC$ known), you can get the answer.






share|cite|improve this answer





















  • What software are you using? GeoGebra?
    – Lucas Henrique
    15 hours ago










  • @LucasHenrique Yep. I also haven't used Paint before.
    – Toby Mak
    15 hours ago
















3














enter image description here



(DB, EA, and FC are all parallel)



If only we had $angle ABC$, we could use the cosine rule to find $AC$! Well, that's exactly what we're going to do:



$$angle EAB = 160º text{(reflex angles)}$$
$$angle DBA = 20º text{(alternate angles)}$$
$$ABC = 40º$$



Now, use the cosine rule:
$$AC^2 = 200^2 + 600^2 - 2(200)(600) cos 40º$$
$$AC = sqrt{200^2 + 600^2 - 2(200)(600) cos 40º}$$
$$= 465 text{(3 s.f)}$$



Now for part $2$, the bearing of $CA$ is just $360º - angle FCA$. However, $angle DBC$ and $angle FCB$ are corresponding angles, so $angle FCB = 120º$.



If you just work out $angle ACB$ (either sine rule or cosine rule works with $AC$ known), you can get the answer.






share|cite|improve this answer





















  • What software are you using? GeoGebra?
    – Lucas Henrique
    15 hours ago










  • @LucasHenrique Yep. I also haven't used Paint before.
    – Toby Mak
    15 hours ago














3












3








3






enter image description here



(DB, EA, and FC are all parallel)



If only we had $angle ABC$, we could use the cosine rule to find $AC$! Well, that's exactly what we're going to do:



$$angle EAB = 160º text{(reflex angles)}$$
$$angle DBA = 20º text{(alternate angles)}$$
$$ABC = 40º$$



Now, use the cosine rule:
$$AC^2 = 200^2 + 600^2 - 2(200)(600) cos 40º$$
$$AC = sqrt{200^2 + 600^2 - 2(200)(600) cos 40º}$$
$$= 465 text{(3 s.f)}$$



Now for part $2$, the bearing of $CA$ is just $360º - angle FCA$. However, $angle DBC$ and $angle FCB$ are corresponding angles, so $angle FCB = 120º$.



If you just work out $angle ACB$ (either sine rule or cosine rule works with $AC$ known), you can get the answer.






share|cite|improve this answer












enter image description here



(DB, EA, and FC are all parallel)



If only we had $angle ABC$, we could use the cosine rule to find $AC$! Well, that's exactly what we're going to do:



$$angle EAB = 160º text{(reflex angles)}$$
$$angle DBA = 20º text{(alternate angles)}$$
$$ABC = 40º$$



Now, use the cosine rule:
$$AC^2 = 200^2 + 600^2 - 2(200)(600) cos 40º$$
$$AC = sqrt{200^2 + 600^2 - 2(200)(600) cos 40º}$$
$$= 465 text{(3 s.f)}$$



Now for part $2$, the bearing of $CA$ is just $360º - angle FCA$. However, $angle DBC$ and $angle FCB$ are corresponding angles, so $angle FCB = 120º$.



If you just work out $angle ACB$ (either sine rule or cosine rule works with $AC$ known), you can get the answer.







share|cite|improve this answer












share|cite|improve this answer



share|cite|improve this answer










answered 15 hours ago









Toby Mak

3,37811128




3,37811128












  • What software are you using? GeoGebra?
    – Lucas Henrique
    15 hours ago










  • @LucasHenrique Yep. I also haven't used Paint before.
    – Toby Mak
    15 hours ago


















  • What software are you using? GeoGebra?
    – Lucas Henrique
    15 hours ago










  • @LucasHenrique Yep. I also haven't used Paint before.
    – Toby Mak
    15 hours ago
















What software are you using? GeoGebra?
– Lucas Henrique
15 hours ago




What software are you using? GeoGebra?
– Lucas Henrique
15 hours ago












@LucasHenrique Yep. I also haven't used Paint before.
– Toby Mak
15 hours ago




@LucasHenrique Yep. I also haven't used Paint before.
– Toby Mak
15 hours ago










Jia Xuan Ng is a new contributor. Be nice, and check out our Code of Conduct.










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