1. Field of the Invention
The invention relates to a servo for a remote control mechanism, and more particularly relates to a gear structure of servo that can improve the rotating efficiency of a driving motor of the serve, can be used with low wear, low noise and low power consumption.
2. Description of the Prior Arts
A conventional servo is applied to a remote control mechanism of a model aircraft or a model car to be a driving source. The conventional servo has a main body, a reduction gear set and a swing arm. The main body has a driving integrated circuit (IC) and a driving motor. The driving integrated circuit is mounted in the main body. The driving motor is mounted in the main body and is electrically connected to the driving integrated circuit. The reduction gear set is mounted on a top of the main body, is connected to the driving motor and has multiple gear units. The swing arm is connected to the reduction gear set. The driving motor is driven by the driving integrated circuit, and the swing arm is rotated by the driving motor via the reduction gear set, and this can enable the conventional servo to drive the remote control mechanism of the model aircraft or the model car.
However, each one of the gear units of the reduction gear set is a spur gear, and this enable the gear unit to completely engage another gear unit of the reduction gear set during a rotating process. The teeth of the gear units of the reduction gear set may be worn in a long time use, and this may increase the loading of the driving motor to affect the rotating efficiency of the driving motor. At the same time, the electric power is consumed quickly by the driving motor and the operating durability of the remote control mechanism is decreased.
To overcome the shortcomings, the present invention provides a gear structure of servo to mitigate or obviate the aforementioned problems.
The main objective of the present invention is to provide a gear structure of servo that can improve the rotating efficiency of a driving motor of the serve, can be used with low wear, low noise and low power consumption.
The gear structure of servo comprises a control body, a casing and a reduction gear set. The control body has a shell and a driving motor. The driving motor is mounted in the shell and has a driving gear wheel rotatably mounted on the driving motor and extends out of a top of the shell. The casing is mounted on the control body and has a receiving space. The receiving space is formed in the casing. The reduction gear set is mounted on the shell of the control body and is located in the receiving space of the casing.
The reduction gear set has four gear units, respectively a first gear unit, a second gear unit, a third gear unit and a fourth unit. The first gear unit has a passive gear wheel engaging the driving gear wheel and an active gear wheel formed on the passive gear wheel, wherein the active gear wheel is a helical gear. The second gear unit has a passive gear wheel engaging the active gear wheel of the first gear unit and an active gear wheel that is a helical gear. The third gear unit is mounted above the first gear unit and has a passive gear wheel and an active gear wheel, and both of the passive gear wheel and the active gear wheel of the third gear unit are helical gears. The fourth gear unit is mounted on the shell of the control body and engages the third gear unit and has a passive gear wheel engaging the active gear wheel of the third gear unit, and the passive gear wheel of the fourth gear unit is a helical gear.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
The control body 10 has a shell 11 and a driving motor 12. The shell 11 is a hollow and rectangular shell and has a gear base 111, two limit portions 112, a positioning portion 113, a notch 114, a rotation shaft 115 and a gear locating portion 116. The gear base 111 is a cylindrical step base and is mounted on a top of the shell 11. The limit portions 112 are elongated and are mounted on and protrude from the top of the shell 11 below the gear base 111.
The positioning portion 113 is mounted on the top of the shell 11 and aligns with the gear base 111. The positioning portion 113 has a side face and an interior. The side face of the positioning portion 113 faces the gear base 111. The notch 114 is formed through the side face of the positioning portion 113 and communicates with the interior of the positioning portion 113. The rotation shaft 115 is mounted in and extends through a top of the positioning portion 113.
The gear locating portion 116 is round, is formed on and protrudes from the top of the shell 11 between the gear base 111 and the positioning portion 113. The gear locating portion 116 has a center and a locating hole 1161 formed through the center of the gear locating portion 116.
The driving motor 12 is mounted in the shell 11 below the positioning portion 113 and has a top and a driving gear wheel 121. The driving gear wheel 121 is a spur gear, is rotatably mounted on the top of the driving motor 12, and extends out of the top of the shell 11. In addition, the driving gear wheel 121 extends in the interior of the positioning portion 113 and has a periphery partially extending out of the notch 114.
With reference to
With reference to
The first gear unit 31 is mounted around the stationary shaft 22, abuts the gear locating portion 116, and engages the driving gear wheel 121 of the driving motor 12. The first gear unit 31 has a passive gear wheel 311 and an active gear wheel 312. The passive gear wheel 311 is rotatably mounted on the gear locating portion 116 and engages the driving gear wheel 121 via the notch 114. The active gear wheel 312 is securely mounted on a top of the passive gear wheel 311 and is mounted around the stationary shaft 22. Both of the passive gear wheel 311 and the active gear wheel 312 are spur gears.
With reference to
The third gear unit 33 is rotatably mounted around the stationary shaft 22 above the first gear unit 31 and has an active gear wheel 332 and a passive gear wheel 331. The active gear wheel 332 is mounted around the stationary shaft 22, abuts the active gear wheel 312 of the first gear unit 31, and has a top. The passive gear wheel 331 is securely mounted on the top of the active gear wheel 332, is mounted around the stationary shaft 22, and engages the active gear wheel 323 of the second gear unit 32. In addition, both of the passive gear wheel 331 and the active gear wheel 332 are helical gears.
With reference to
Furthermore, the pitch diameter of the passive gear wheel 311, 322, 331 of each one of the gear units 31, 32, 33 of the reduction gear set 30 is respectively longer than the pitch diameter of the corresponding active gear wheel 312, 323, 332 of each one of the gear units 31, 32, 33 of the reduction gear set 30. In addition, a pitch diameter of the passive gear wheel 342 is longer than a pitch diameter of the gear surface 3411 of the shaft portion 341.
With reference to
The active gear wheel 323 of the second gear unit 32, the passive gear wheel 331 of the third gear unit 33, the active gear wheel 332 of the third gear unit 33 and the passive gear 341 are helical gears, and the helical gears come into engagement with each other gradually. Then, the abrasion and noises that are caused by the rotation of the reduction gear set 30 can be reduced to improve the rotating efficiency of the driving motor 12 and this can reduce the power consumption of the driving motor 12 and can enhance the operating durability of the servo.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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102210741 | Jun 2013 | TW | national |