Claims
- 1. Method for lowering the noise/signal ratio of a range finder, the focal length of a receiving lens unit being longer than the focal length of a transmission lens unit, whereby the image of the laser transmitter formed on the photosensor is magnified and the area of the signal receiving section of the photosensor is larger than the focus of the receiving lens unit and smaller than or equal to the focus of the transmission lens unit to thereby lower the noise/signal ratio.
- 2. Method as claimed in claim 1, wherein the receiving lens unit includes a convex lens and a concave lens.
- 3. Method as claimed in claim 2, wherein the convex lens is a non-spherical convex lens.
- 4. Laser range finder capable of lowering the noise/signal ratio of received laser radiation, comprising: a telescope; a laser transmitter; a transmission system for transmitting a beam of radiation produced by said transmitter toward a target; a receiving system for receiving laser radiation reflected from the target; a laser sensor for sensing laser radiation received by said receiving system, and a range calculating system coupled to said laser transmitter and said laser sensor for calculating the distance between the target and the laser range finder, wherein the receiving area of the laser sensor is larger than the laser transmitter, and the focal length of the receiving system is longer than that of the transmission system, so that the image of the laser transmitter formed on the laser receiver is larger than the laser transmitter and the area of the signal receiving section of the laser sensor is larger than the focus of the receiving lens unit and smaller than or equal to the focus of the transmission lens unit.
- 5. A laser range finder comprising:
a transmission system for transmitting a beam of laser radiation along a transmission axis toward a target; a receiving system for receiving laser radiation reflected from the target along a receiving axis; a telescope unit having a viewing optical axis; a prism; and a range calculating system coupled to said transmission and receiving systems for calculating the distance between the target and the laser range finder wherein:
said receiving axis is laterally offset from said transmission axis and said viewing optical axis has at least a portion that is coincident with one of said transmission and receiving axes.
- 6. The laser range finder of claim 5 wherein:
said receiving system comprises a laser sensor and a receiving lens unit for directing laser radiation received by said receiving system onto said laser sensor, said receiving lens unit having a first focal length; said transmission system comprises a laser transmitter and a transmission lens unit for forming the beam of radiation from laser radiation produced by said transmitter, said transmission lens unit having a second focal length; and the first focal length is longer than the second focal length, whereby the image of the laser transmitter formed on the photosensor is magnified and the area of the signal receiving section of the photosensor is larger than the focus of the receiving lens unit and smaller than or equal to the focus of the transmission lens unit to thereby lower the noise/signal ratio.
- 7. The range finder of claim 6 wherein said receiving lens unit has a physical length that is shorter than the first focal length.
- 8. The range finder of claim 6 wherein said transmission lens unit has a physical length that is longer than the second focal length.
Priority Claims (1)
Number |
Date |
Country |
Kind |
88115362 |
Sep 1999 |
TW |
|
Parent Case Info
[0001] This is a continuation-in-part of application Ser. No. 09/495,943, filed Feb. 2, 2000, the entirety of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09495943 |
Feb 2000 |
US |
Child |
10055018 |
Jan 2002 |
US |