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Geo
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10.2 Arcs and Chords
Geometry
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Objectives
• Students will learn & apply properties of arcs of circles, as well as the properties of chords of circles.
• Why? Many practices can be applied to real world problems.
• Mastery is 80% or better on 5-minute checks and Indy work.
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Concept Using Arcs of Circles
• In a plane, an angle whose vertex is the center of a circle is a central angle of the circle. If the measure of a central angle, APB is less than 180°, then A and B and the points of P form a minor ARC
central angle
minorarcmajor
arcP
B
A
C
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Using Arcs of Circles
• in the interior of APB form a minor arc of the circle. The points A and B and the points of P in the exterior of APB form a major arc of the circle. If the endpoints of an arc are the endpoints of a diameter, then the arc is a semicircle.
central angle
minorarcmajor
arcP
B
A
C
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Naming Arcs
• Arcs are named by their endpoints. For example, the minor arc associated with APB above is . Major arcs and semicircles are named by their endpoints and by a point on the arc.
AB
EH F
G
E
60°
60°
180°
central angle
minorarcmajor
arcP
B
A
C
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Naming Arcs
• For example, the major arc associated with APB is .
here on the right is a semicircle.
The measure of a minor arc is defined to be the measure of its central angle.
EH F
G
E
60°
60°
180°
ACB
EGF
central angle
minorarcmajor
arcP
B
A
C
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Naming Arcs
• For instance, m = mGHF = 60°.
• m is read “the measure of arc GF.” You can write the measure of an arc next to the arc. The measure of a semicircle is always 180°.
EH F
G
E
60°
60°
180°
GF
GF
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Naming Arcs
• The measure of a major arc is defined as the difference between 360° and the measure of its associated minor arc. For example, m = 360° - 60° = 300°. The measure of the whole circle is 360°.
EH F
G
E
60°
60°
180°
GEF
GF
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Skill DevelopmentEx. 1: Finding Measures of Arcs
• Find the measure of each arc of R.
a.
b.
c.
MNMPN
PMN PR
M
N80°
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Ex. 1: Finding Measures of Arcs
• Find the measure of each arc of R.
a.
b.
c.
Solution:
is a minor arc, so m = mMRN = 80°
MNMPN
PMN PR
M
N80°
MN
MN
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Ex. 1: Finding Measures of Arcs
• Find the measure of each arc of R.
a.
b.
c.
Solution:
is a major arc, so m = 360° – 80° = 280°
MNMPN
PMN PR
M
N80°
MPN
MPN
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Ex. 1: Finding Measures of Arcs
• Find the measure of each arc of R.
a.
b.
c.
Solution:
is a semicircle, so m = 180°
MNMPN
PMN PR
M
N80°
PMN
PMN
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Note:
• Two arcs of the same circle are adjacent if they intersect at exactly one point. You can add the measures of adjacent areas.
• Postulate 26—Arc Addition Postulate. The measure of an arc formed by two adjacent arcs is the sum of the measures of the two arcs.
ABC
B
A
C
m = m + m AB
BC
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White BoardsEx. 2: Finding Measures of Arcs
• Find the measure of each arc.
a.
b.
c.
m = m + m =
40° + 80° = 120°
GE
R
EF
G
H
GEFGFGE
GH
HE
40°
80°
110°
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Ex. 2: Finding Measures of Arcs
• Find the measure of each arc.
a.
b.
c.
m = m + m =
120° + 110° = 230°
GE
R
EF
G
H
GEFGF
EF
40°
80°
110°GEF
GE
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Ex. 2: Finding Measures of Arcs
• Find the measure of each arc.
a.
b.
c.
m = 360° - m =
360° - 230° = 130°
GE
R
EF
G
H
GEFGF
40°
80°
110°GF
GEF
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Skill DevelopEx. 3: Identifying Congruent Arcs
• Find the measures of the blue arcs. Are the arcs congruent?
C
D
A
BAB• and are in
the same circle and
m = m = 45°. So,
DC
ABDCDC
AB
45°
45°
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Q
S
P
R
White BoardsEx. 3: Identifying Congruent Arcs
• Find the measures of the blue arcs. Are the arcs congruent? Why?
RSPQ• and are in
congruent circles and
m = m = 80°. So,
PQ
RSRS
PQ
80°
80°
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X
W
Y
Z
• m = m = 65°, but and are not arcs of the same circle or of congruent circles, so and are NOT congruent.
Ex. 3: Identifying Congruent Arcs• Find the measures of
the blue arcs. Are the arcs congruent?
65°XY
ZW
XY
ZW
XY
ZW
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Part 1 Concluded
• HW Page 661
• 1-25 all
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Using Chords of Circles10.3 Properties of Chords• A point Y is called
the midpoint of if . Any line, segment, or ray that contains Y bisects .
XYZ
XY
YZ
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Skill DevelopTheorem 10.3• In the same circle, or in
congruent circles, two minor arcs are congruent if and only if their corresponding chords are congruent.
ABBCif and only if
AB BC
C
B
A
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Theorem 10.5
• If a diameter of a circle is perpendicular to a chord, then the diameter bisects the chord and its arc.
E
D
G
F
DG
GF
, DE EF
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Theorem 10.4
• If one chord is a perpendicular bisector of another chord, then the first chord is a diameter.
JK is a diameter of the circle.
J
L
K
M
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GuidedEx. 4: Using Theorem 10.4• You can use
Theorem 10.4 to find m .
AD
• Because AD DC, and . So, m = m
AD
DC
ADDC
2x = x + 40 Substitute x = 40 Subtract x from each
side.
BA
C
2x°
(x + 40)°
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Skill DevelopEx. 5: Finding the Center of a Circle
• Theorem 10.6 can be used to locate a circle’s center as shown in the next few slides.
• Step 1: Draw any two chords that are not parallel to each other.
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Ex. 5: Finding the Center of a Circle
• Step 2: Draw the perpendicular bisector of each chord. These are the diameters.
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Ex. 5: Finding the Center of a Circle
• Step 3: The perpendicular bisectors intersect at the circle’s center.
center
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HOTS- Ex. 6: Using Properties of Chords• Masonry Hammer. A
masonry hammer has a hammer on one end and a curved pick on the other. The pick works best if you swing it along a circular curve that matches the shape of the pick. Find the center of the circular swing.
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Ex. 6: Using Properties of Chords
• Draw a segment AB, from the top of the masonry hammer to the end of the pick. Find the midpoint C, and draw perpendicular bisector CD. Find the intersection of CD with the line formed by the handle. So, the center of the swing lies at E.
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• In the same circle, or in congruent circles, two chords are congruent if and only if they are equidistant from the center.
• AB CD if and only if EF EG.
Theorem 10.6
F
G
E
B
A
C
D
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Ex. 7: Using Theorem 10.6
AB = 8; DE = 8, and CD = 5. Find CF.
58
8 F
G
C
E
D
A
B
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Ex. 7: Using Theorem 10.6
Because AB and DE are congruent chords, they are equidistant from the center. So CF CG. To find CG, first find DG.
CG DE, so CG bisects DE. Because DE = 8, DG = =4.
58
8 F
G
C
E
D
A
B
2
8
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Ex. 7: Using Theorem 10.6
Then use DG to find CG. DG = 4 and CD = 5, so ∆CGD is a 3-4-5 right triangle. So CG = 3. Finally, use CG to find CF. Because CF CG, CF = CG = 3
58
8 F
G
C
E
D
A
B
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What Have You Learned?
• Students will learn & apply properties of arcs of circles, as well as the properties of chords of circles.
• Why? Many practices can be applied to real world problems.
• Mastery is 80% or better on 5-minute checks and Indy work.
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Reminders:
• Quiz after 10.3
• HW 661 1-25 all
• HW 667 1-20 all
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