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5.1 Perpendiculars and Bisectors. Geometry Mrs. Spitz Fall 2004. Objectives/Assignment:. Use properties of perpendicular bisectors Use properties of angle bisectors to identify equal distances such as the lengths of beams in a room truss. Assignment: 2-26 even, 42-52 even.
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5.1 Perpendiculars and Bisectors Geometry Mrs. Spitz Fall 2004
Objectives/Assignment: • Use properties of perpendicular bisectors • Use properties of angle bisectors to identify equal distances such as the lengths of beams in a room truss. • Assignment: 2-26 even, 42-52 even
In lesson 1.5, you learned that a segment bisector intersects a segment at its midpoint. A segment, ray, line, or plane that is perpendicular to a segment at its midpoint is called a perpendicular bisector. The construction on pg. 264 shows how to draw a line that is perpendicular to a given line or segment at a point P. You can use this method to construct a perpendicular bisector or a segment as described in the activity. Use Properties of Perpendicular Bisectors CP is a bisector of AB
Perpendicular Bisector Construction – pg. 264 • If you cannot follow these directions, go to page 264 for the instructions with pictures. • Draw a line. Label it line m and put P in the middle of the line. • Place compass point at P. Draw an arc that intersects line m twice. Label the intersections as A and B. • Use a compass setting greater than AP. Draw an arc with the compass point on A. With the same setting, draw an arc from B. Label the intersection of the arcs as C. • Use a straightedge to draw CP. This line is perpendicular to line m and passes through P.
More about perpendicular bisector construction • You can measure CPA on your construction to verify that the constructed line is perpendicular to the given line m. In the construction, CP AB and PA = PB, so CP is the perpendicular bisector of AB.
Equidistant • A point is equidistant from two points if its distance from each point is the same. In the construction above, C is equidistant from A and B because C was drawn so that CA = CB
If a point is on the perpendicular bisector of a segment, then it is equidistant from the endpoints of the segment. If CP is the perpendicular bisector of AB, then CA = CB. Theorem 5.1 Perpendicular Bisector Theorem
If a point is equidistant from the endpoints of a segment, then it is on the perpendicular bisector of the segment. If DA = DB, then D lies on the perpendicular bisector of AB. Theorem 5.2: Converse of the Perpendicular Bisector Theorem
Refer to the diagram for Theorem 5.1. Suppose that you are given that CP is the perpendicular bisector of AB. Show that right triangles ∆APC and ∆BPC are congruent using the SAS Congruence Postulate. Then show that CA ≅ CB. Plan for Proof of Theorem 5.1
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given Reflexive Prop. Congruence. Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given Reflexive Prop. Congruence. Definition right angle Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given Reflexive Prop. Congruence. Definition right angle SAS Congruence Given: CP is perpendicular to AB. Prove: CA≅CB
Statements: CP is perpendicular bisector of AB. CP AB AP ≅ BP CP ≅ CP CPB ≅ CPA ∆APC ≅ ∆BPC CA ≅ CB Reasons: Given Definition of Perpendicular bisector Given Reflexive Prop. Congruence. Definition right angle SAS Congruence CPOCTAC Given: CP is perpendicular to AB. Prove: CA≅CB
In the diagram MN is the perpendicular bisector of ST. What segment lengths in the diagram are equal? Explain why Q is on MN. Ex. 1 Using Perpendicular Bisectors
What segment lengths in the diagram are equal? Solution: MN bisects ST, so NS = NT. Because M is on the perpendicular bisector of ST, MS = MT. (By Theorem 5.1). The diagram shows that QS = QT = 12. Ex. 1 Using Perpendicular Bisectors
Explain why Q is on MN. Solution: QS = QT, so Q is equidistant from S and T. By Theorem 5.2, Q is on the perpendicular bisector of ST, which is MN. Ex. 1 Using Perpendicular Bisectors
The distance from a point to a line is defined as the length of the perpendicular segment from the point to the line. For instance, in the diagram shown, the distance between the point Q and the line m is QP. Using Properties of Angle Bisectors
When a point is the same distance from one line as it is from another line, then the point is equidistant from the two lines (or rays or segments). The theorems in the next few slides show that a point in the interior of an angle is equidistant from the sides of the angle if and only if the point is on the bisector of an angle. Using Properties of Angle Bisectors
If a point is on the bisector of an angle, then it is equidistant from the two sides of the angle. If mBAD = mCAD, then DB = DC Theorem 5.3 Angle Bisector Theorem
If a point is in the interior of an angle and is equidistant from the sides of the angle, then it lies on the bisector of the angle. If DB = DC, then mBAD = mCAD. Theorem 5.4 Converse of the Angle Bisector Theorem
Given: D is on the bisector of BAC. DB AB, DC AC. Prove: DB = DC Plan for Proof: Prove that ∆ADB ≅ ∆ADC. Then conclude that DB ≅DC, so DB = DC. Ex. 2: Proof of Theorem 5.3
By definition of an angle bisector, BAD ≅ CAD. Because ABD and ACD are right angles, ABD ≅ ACD. By the Reflexive Property of Congruence, AD ≅ AD. Then ∆ADB ≅ ∆ADC by the AAS Congruence Theorem. By CPCTC, DB ≅ DC. By the definition of congruent segments DB = DC. Paragraph Proof
Roof Trusses: Some roofs are built with wooden trusses that are assembled in a factory and shipped to the building site. In the diagram of the roof trusses shown, you are given that AB bisects CAD and that ACB and ADB are right angles. What can you say about BC and BD? Ex. 3: Using Angle Bisectors
Because BC and BD meet AC and AD at right angles, they are perpendicular segments to the sides of CAD. This implies that their lengths represent distances from the point B to AC and AD. Because point B is on the bisector of CAD, it is equidistant from the sides of the angle. So, BC = BD, and you can conclude that BC ≅ BD. SOLUTION: