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jfrost@tiffin.kingston.sch.uk www.drfrostmaths.com @DrFrostMaths
P2 Chapter 5 :: Radians Last modified: 6th September 2018
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Chapter Overview The concept of radians will likely be completely new to you. 2:: Find arc length and sector area (when using radians) 1:: Converting between degrees and radians. βππ΄π΅ is a sector. Determine the perimeter of the shape.β βWhat is 45Β° in radians?β π΄ 3 1.3 πΆ π΅ 4 π 3:: Solve trig equations in radians. 4:: Small angle approximations βSolve sin π₯ = 1 2 for 0β€π₯<π.β βShow that, when π is small, sin 5π + tan 2π βπππ 2πβ2 π 2 +7πβ1.β *NEW* to A Level 2017!
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Radians ? So far youβve used degrees as the unit to measure angles.
But outside geometry, mathematicians pretty much always use radians. 1 rad r Unit Note: While the unit βΒ°β must be written for degrees, no unit is generally written for radians (but if so, use βradβ). r 1Β° A degree is a 360th of a rotation around a full circle. This is a somewhat arbitrary definition! One radian however is the movement of one radiusβ worth around the circumference of the circle. Click to Start Degree Fro-manimation Click to Start Radian Fro-manimation ? Thinking about how many radii around the circumference we can go: πππΒ°=ππ
rad
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β¦but WHY use radians as our unit?
In later chapters we will see that sin π₯ differentiates to cos π₯ for example, but ONLY if π₯ is in radians (and we will prove why). Since trigonometric functions are commonly used in calculus (differentiation and integration) and that calculus underpins so many branches of maths, it explains why radians is seen as the βdefaultβ unit for angles. π ππ₯ sin π₯ = cos π₯
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180Β° = π Converting between radians and degrees ? ? ? ? ? ? ? ? ? ?
180Β° = π Γ·π and Γ180 ? 135Β°= π π π
3 2 π=πππΒ° 72Β°= π π π
5π 6 =πππΒ° ? ? 90Β°= π
π π 3 =ππΒ° 45Β°= π
π π 6 =ππΒ° ? ? ? ? ? ?
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Be able to convert common angles in your headβ¦
? ? 30Β°= π
π 135Β°= ππ
π 90Β°= π
π 45Β°= π
π 60Β°= π
π 270Β°= ππ
π 120Β°= ππ
π ? ? ? ? ?
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Graph Sketching with Radians
We can replace the values 90Β°, 180Β°, 270Β°, 360Β° on the π₯-axis with their equivalent value in radians. π¦ π¦ π¦=cos π₯ 1 1 π¦=sin π₯ π₯ π₯ π 2 π 3 2 π 2π π 2 π 3 2 π 2π β1 β1
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Test Your Understanding
Sketch the graph of π¦= cos π₯+ π 2 for 0β€π₯<2π. ? π¦ π¦=cos π₯+ π 2 1 π¦=cos π₯ π₯ π 2 π 3 2 π 2π β1
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sin, cos, tan of angles in radians
Reminder of laws from Year 1: sin π₯ = sin 180βπ₯ cos π₯ = cos 360βπ₯ π ππ,πππ repeat every 360Β° but π‘ππ every 180Β° sin π₯ = sin πβπ₯ cos π₯ = cos 2πβπ₯ π ππ,πππ repeat every 2π but π‘ππ every π To find sin/cos/tan of a βcommonβ angle in radians without using a calculator, it is easiest to just convert to degrees first. ? 1 2 cos 4π 3 = ππ¨π¬ πππΒ° = ππ¨π¬ πππΒ° =β ππ¨π¬ ππΒ° =β π π 120 π₯ 60 90 180 ? sin β 7π 6 = π¬π’π§ βπππΒ° = π¬π’π§ πππΒ° = π¬π’π§ ππΒ° = π π βUse of Technologyβ Monkey says: To find cos 4π 3 directly using your calculator, you need to switch to radians mode. Press ππ»πΌπΉπβππΈπππ, then π΄ππΊπΏπΈ πππΌπ, then π
ππππππ . An π
will appear at the top of your screen, instead of π·.
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Exercises 5A/5B Pearson Pure Mathematics Year 2/AS Pages 116, 118
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Arc length π=ππ π= π 360 Γ2ππ ? ? π π π Arc length in degrees:
Arc length in radians From before, we know that 1 radian gives an arc of 1 radius in length, so π radians must give a length ofβ¦ ? π= π 360 Γ2ππ ? π=ππ
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Examples ? ? 0.8Γ5.2=4.16 ππ πΓ7=2.45 π= 2.45 7 =0.35 πππ
[Textbook] Find the length of the arc of a circle of radius 5.2 cm, given that the arc subtends an angle of 0.8 radians at the centre of the circle. [Textbook] An arc π΄π΅ of a circle with radius 7 cm and centre π has a length of 2.45 cm. Find the angle β π΄ππ΅ subtended by the arc at the centre of the circle ? ? π΄ 5.2 ππ 7 ππ 2.45 ππ 0.8 π π π΅ 0.8Γ5.2=4.16 ππ πΓ7=2.45 π= =0.35 πππ Fro Note: Whether your calculator is in degrees mode or radians mode is only relevant when using sin/cos/tan β it wonβt affect simple multiplication! Terminology: βSubtendβ means opposite or extending beneath.
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Further Examples ? ? π=2π+ππ π=π 2+π π= π 2+π
[Textbook] An arc π΄π΅ of a circle, with centre π and radius π cm, subtends an angle of π radians at π. The perimeter of the sector π΄ππ΅ is π cm. Express π in terms of π and π. [Textbook] The border of a garden pond consists of a straight edge π΄π΅ of length 2.4m, and a curved part πΆ, as shown in the diagram. The curve part is an arc of a circle, centre π and radius 2m. Find the length of πΆ. ? π΄ π ππ πΆ π π π ππ π΅ π 2 ππ 2 ππ π=2π+ππ π=π 2+π π= π 2+π π΄ 2.4 ππ π΅ ? 2 ππ Fro Tip: Trigonometry on right-angled triangles is always simpler than using sine/cosine rule. π₯ 1.2 ππ π₯= sin β =0.6435β¦πππ π=2πβ2π₯=4.9961β¦πππ β΄πΆ=2Γ4.9961=9.99 π (3π π) Angles round a point add to 2π.
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Test Your Understanding
Figure 1 shows the triangle π΄π΅πΆ, with π΄π΅=8 ππ, π΄πΆ=11 ππ and β π΅π΄πΆ=0.7 radians. The arc π΅π·, where π· lies on π΄πΆ, is an arc of a circle with centre π΄ and radius 8 cm. The region π
, shown shaded in Figure 1, is bounded by the straight lines π΅πΆ and πΆπ· and the arc π΅π·. Find (a) The length of the arc π΅π·. (b) The perimeter of π
, giving your answer to 3 significant figures. Edexcel C2 Jan 2005 Q7 a ? Length of arc π΅π·=0.7Γ8=5.6 ππ b ? Perimeter =π΅π·+πΆπ·+π΅πΆ πΆπ·=11β8=3 π΅πΆ= β2Γ8Γ11Γ cos =7.09 ππ β΄π= =15.7 ππ (π‘π 3π π)
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Exercises 5C Pearson Pure Mathematics Year 2/AS Pages 120-122
Note: Q10 is based on a past paper question so is worth doing.
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Sector Area π΄= π 360 Γπ π 2 π΄= 1 2 π 2 π ? ? π π Area using Radians
Area using Degrees ? ? π΄= π 360 Γπ π 2 π΄= 1 2 π 2 π
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Segment Area A segment is the region bound between a chord and the circumference. This is just a sector with a triangle cut out. π π π Area using radians: Recall that the area of a triangle is 1 2 ππ sin πΆ where πΆ is the βincluded angleβ (i.e. between π and π) ?
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Examples ? ? Arc π΄π΅=176β55β55=66 π 66=5π β΄π=1.2 πππ
[Textbook] In the diagram, the area of the minor sector π΄ππ΅ is 28.9 cm2. Given that β π΄ππ΅=0.8 radians, calculate the value of π. [Textbook] A plot of land is in the shape of a sector of a circle of radius 55 m. The length of fencing that is erected along the edge of the plot to enclose the land is 176 m. Calculate the area of the plot of land. π΄ π΄ 55 π π cm 0.8 π π π cm 55 π π΅ π΅ ? ? Arc π΄π΅=176β55β55=66 π 66=5π β΄π=1.2 πππ Area = 1 2 Γ 55 2 Γ1.2=1815 m2 28.9= 1 2 π 2 Γ =0.4 π 2 π 2 = =72.25 π= =8.5
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Segment Examples [Textbook] In the diagram above, ππ΄π΅ is a sector of a circle, radius 4m. The chord π΄π΅ is 5m long. Find the area of the shaded segment. [Textbook] In the diagram, π΄π΅ is the diameter of a circle of radius πcm, and β π΅ππΆ=π radians. Given that the area of Ξπ΄ππΆ is three times that of the shaded segment, show that 3πβ4 sin π =0. π΄ 4 π πΆ 5π π π 4 π π π΄ π΅ π΅ π π π ? ? Using cosine rule: 5 2 = β 2Γ4Γ4Γ cos π 25=32β32 cos π 32 cos π =32β25=7 π= cos β =1.3502β¦ Area of shaded segment: 1 2 Γ β¦β sin β¦ =3.00 m2. Area of segment = 1 2 π 2 πβ sin π Area of Ξπ΄ππΆ= 1 2 π 2 sin πβπ = 1 2 π 2 π πππ β΄ 1 2 π 2 sin π =3Γ 1 2 π 2 πβ sin π sin π =3 πβ sin π β΄3πβ4 sin π =0 Recall that sin π = sin πβπ
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Test Your Understanding
Edexcel C2 1 2 Γ 9 2 Γ0.7=28.35 ? tan = π΄πΆ 9 β΄π΄πΆ=9 tan =7.58 ? ? π΄πππ ππ΄πΆ= 1 2 Γ9Γ7.58=34.11 π»=34.11β28.35=5.76
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Exercises 5D ? Pearson Pure Mathematics Year 2/AS Pages 125-128
Extension [MAT J] If two chords ππ and π
π on a circle of radius 1 meet in an angle π at π, for example as drawn in the diagram on the left, then find the largest possible area of the shaded region π
ππ, giving your answer in terms of π. ? For a fixed π the largest area is obtained when the angle bisector of ππ and ππ
is the diameter of the circle. This can be broken up into two isosceles triangles and a sector as shown. β π΅ππΆ=2π as angle at centre is twice angle at circumference. β π΄ππ΅=πβ π 2 β π 2 =πβπ Area of π΄ππ΅= 1 2 Γ 1 2 Γ sin πβπ = 1 2 sin π Area of sector π΅ππΆ= 1 2 Γ 1 2 Γ2π=π. Total shaded area =2Γ 1 2 sin π +π=π+ sin π . π΅ 1 π 2 πβπ π΄ 1 2π π 2 π 1 πΆ
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Solving Trigonometric Equations
Solving trigonometric equations is virtually the same as you did in Year 1, except: Your calculator needs to be in radians mode. We use πβ instead of 180Β°β, and so on. sin π₯ = sin πβπ₯ cos π₯ = cos 2πβπ₯ π ππ,πππ repeat every 2π but π‘ππ every π 0β€3πβ€6π 3π= π 3 , 2π 3 , 7π 3 , 8π 3 , 13π 3 , 14π 3 β΄π= π 9 , 2π 9 , 7π 9 , 8π 9 , 13π 9 , 14π 9 ? Adjust interval. [Textbook] Solve the equation sin 3π = in the interval 0β€πβ€2π. Use πβ to get second value in each βpairβ. Then go to next cycle by adding 2π to each value in pair. Only Γ·3 once all values obtained in range. [Jan 07 Q6] Find all the solutions, in the interval 0 β€ x < 2ο°, of the equation 2 cos2 x + 1 = 5 sin x, giving each solution in terms of ο°. (6) ? 2 1β sin 2 π₯ +1=5 sin π₯ 2β2 sin 2 π₯ +1=5 sin π₯ 2 sin 2 π₯ +5 sin π₯ β3=0 2 sin π₯ β1 sin π₯ +3 =0 sin π₯ = ππ sin π₯ =β3 π₯= π 6 ππ π₯=πβ π 6 = 5π 6
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Exercises 5E ? Pearson Pure Mathematics Year 2/AS Pages 131-132
Extension [MAT C] In the range 0β€π₯β€2π, the equation sin 2 π₯ +3 sin π₯ cos π₯ +2 cos 2 π₯ =0 has how many solutions? ? π¬π’π§ π +π ππ¨π¬ π π¬π’π§ π + ππ¨π¬ π =π π¬π’π§ π=βπ ππ¨π¬ π or π¬π’π§ π =β ππ¨π¬ π πππ§ π =βπ or πππ§ π =βπ The tan graph always has 1 solution per each cycle of π
radians, so 4 solutions.
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Small Angle Approximations
π¦=π₯ π¦=π₯ π¦= sin π₯ π¦= sin π₯ If π₯ is in radians, we can see from the graph that as π₯ approaches 0, the two graphs are approximately the same, i.e. sin π₯ βπ₯ If π₯ was in degrees however, then we can see this is not the case. ! When π is small and measured in radians: sin π βπ tan π βπ cos π β1β π 2 2
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Small Angle Approximations
Geometric Proof that πππ π½βπ½: π΄ The area of sector ππ΄π΅ is: π π Γ π π Γπ½= π π π½ The area of triangle ππ΄π΅ is: π π Γ π π Γππππ½= π π π¬π’π§ π½ 1 π π 1 π΅ As π becomes small, the area of the triangle is approximately equal to that of the sector, so: 1 2 sin π β 1 2 π sin π βπ π΄ 1 π π 1 π΅ Note that this only works for radians, because we used the sector area formula for radians. The fact that sin π βπ is enormously important when we come to differentiation, because we can use it to prove that π ππ₯ sin π₯ = cos π₯ .
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Examples When π is small and measured in radians: sin π βπ tan π βπ cos π β1β π 2 2 [Textbook] When π is small, find the approximate value of: sin 2π + tan π 2π cos 4π β1 π sin 2π [Textbook] a) Show that, when π is small, sin 5π + tan 2π β cos 2π β2 π 2 +7πβ1 b) Hence state the approximate value of sin 5π + tan 2π β cos 2π for small values of π. ? πππ ππ½ + πππ ππ½ β πππ ππ½ βππ½+ππ½β πβ (π π½) π π =ππ½βπ+π π½ π b) The ππ½ and π π½ π terms tend towards 0, thus the approximate value is -1. ? πππ ππ½ + πππ π½ ππ½ β ππ½+π½ ππ½ = π π πππ ππ½ βπ π½ πππ ππ½ β πβ ππ½ π π βπ π½Γππ½ = πβ ππ π½ π π βπ π π½ π = βπ π½ π π π½ π =βπ ? ?
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Exercises 5F Pearson Pure Mathematics Year 2/AS Page 134
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