Installation Method and an Apparatus of a Sensor Based on Strain Gauges to Generate Deformation Signals Caused by an Applied Force
20170370785 · 2017-12-28
Inventors
Cpc classification
G01L1/2206
PHYSICS
B62M6/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An installation method and an apparatus of a strain gauge sensor are capable of driving an object to be measured to generate a deformation signal by a pushing/pulling force. At least two strain gauge sensors are installed on surfaces with different amounts of deformation and at an installation location of an electrical vehicle according to the installation method. The installation method includes Method 1: When a manual pushing/pulling force is applied, the installation location is deformed and the deforming action force is directly proportional to the pushing/pulling force. Method 2: When the pushing/pulling force is applied, the vehicle deforming direction at the installation location is independent to the pushing/pulling force moving direction. Method 3: The strain detecting direction of the strain gauge sensor is the same as the vehicle deforming direction at the installation location. Therefore, pulling or driving force data can be measured accurately.
Claims
1. An installation method comprising: providing an electrical vehicle including a frame, an axle fixed to the frame in a non-movable manner relative to the frame, a hub rotatable on the axle, a pedal rotatably mounted to the frame, and a driving chain extending between the pedal and the hub; and installing a strain gauge sensor at an installation location on the frame spaced from the axle and the pedal, with the strain gauge sensor generating a deformation signal measuring a pushing/pulling force applied by the driving chain, with the installation location of the strain gauge sensor satisfying the following methods: Method 1: when the pushing/pulling force is applied by the pedal to the installation location of an electrical vehicle, the installation location is deformable and a deforming action force is directly proportional to the pushing/pulling force; Method 2: when the pushing/pulling force is applied, the vehicle deforming direction at the installation location is independent to a pushing/pulling force moving direction; and Method 3: a strain detecting direction of the strain gauge sensor is in a same direction as a vehicle deforming direction at the installation location.
2. The installation method according to claim 1, wherein installing comprises installing the strain gauge sensor at the installation location situated at a position between angles of positive and negative 30 degrees with respect to a parallel axis of the pushing/pulling force moving direction.
3. The installation method according to claim 2, wherein installing comprises installing the strain gauge sensor at the installation location is situated at a right chain stay of the frame proximate to a chain end and within 10 cm away from the hub.
4. The installation method according to claim 3, wherein installing comprises installing the strain gauge sensor at the installation location situated at a position 5 cm away from the hub.
5. The installation method according to claim 3, wherein installing comprises installing the strain gauge sensor at the installation location of the right chain stay situated on a side surface facing the hub.
6. The installation method according to claim 5, wherein installing comprises installing the strain gauge sensor comprising an elastic metal plate and two strain gauge sensors, attaching the two strain gauge sensors onto two opposite left and right sides of the metal plate respectively, and securing both ends of the metal plate onto the side surface of the installation location.
7. The installation method according to claim 4, wherein installing comprises attaching two strain gauge sensors on two opposite left and right sides of the right chain stay respectively.
8. The installation method according to claim 2, wherein installing comprises installing the strain gauge sensor comprising an elastic metal plate and two strain gauge sensors, attaching the two strain gauge sensors onto two opposite left and right sides of the elastic metal plate respectively, and securing both ends of the metal plate onto a side surface of the installation location, wherein the installation location is at a right chain stay positioned before a dropout in the frame, and wherein the chain stay bends towards a bottom bracket, with the plate and the strain gauge sensor span over an obtuse angle of the bend.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] The technical characteristics, contents, advantages and effects of the present invention will be apparent with the detailed description of a preferred embodiment accompanied with related drawings as follows.
[0023] The present invention is applicable to an electrical vehicle such as an e-bike or a wheelchair with an auxiliary power. The electrical vehicle is driven by an auxiliary motor, so that the rider can ride the above-mentioned electrical vehicles with less effort. In the present invention, a strain gauge sensor is installed at a location of the electrical vehicle frame to measure the degree of vehicle deformation which is proportional to the force applied. When a manual driving force (such as a pedaling force applied to a bicycle pedal) causes a vehicle deformation at the installation location of the electrical vehicle frame and the strain gauge sensor, that the strain gauge sensor detects a deformation signal, and the magnitude of the deformation signal is used to control an auxiliary motor to provide a power directly proportional to the amount of vehicle deformation. The larger the driving force, the larger the deformation signal, so the interference of feedback signals from the auxiliary motor will not occur. As a result, a precise assistive power is supplied by the auxiliary motor.
[0024] In
[0025] Method 1: When a manual pushing/pulling force (such as a pedaling force applied by a rider to a bicycle pedal, the pedaling force delivered to the hub, through a driving chain; or a driving force produced by pushing the hand-wheel of a wheelchair) is applied to the electrical vehicle 1, the strain gauge sensor 2 installed at the installation location 11 of the electrical vehicle 1 is also deformed, and the deforming action force is directly proportional to the pushing/pulling force.
[0026] Method 2: The direction of the vehicle deformation caused by an applied force at the installation location 11 is independent to the direction of applied pushing/pulling force. Thus the force generated by auxiliary motor will not be further detected by the sensor. The undesired feedback is a common problem when the direction of vehicle deformation by manual force is the same with that by the assistive force, generating an undesirable feedback signal caused by the torque of the auxiliary motor. With method 2 achieved by the current invention, the manual force is accurately obtained. As a result, the auxiliary motor supplies a correct assistive power.
[0027] Method 3: When the pushing/pulling force is manually applied to the installation location 11, the direction of vehicle deforming direction is the same as that of the strain gauge sensor 2. When the vehicle deforming direction at the installation location 11 and the strain detecting direction of the strain gauge sensor 2 are the same, the strain gauge sensor 2 measures the amount of vehicle deformation at the installation location 11 correctly as shown in
[0028] In the aforementioned Method 2, the vehicle deforming direction at the installation location 11 of the strain gauge sensor 2 is independent to the manual pushing/pulling force direction. In other words, the direction of vehicle deformation caused by the manual force at the installation location 11 is different from that of the applied force itself. And the degree of vehicle deformation measured by the sensor is directly proportional to the manual force applied. The installation location 11 may be situated at a location between angles of positive and negative 30 degrees with respect to the parallel axis of the direction of applied manual force. The aforementioned installation location 11 refers to the position of a right chain stay 12 of a bicycle and within 15 cm away from the rear hub 14 and preferably within 10 cm away from the rear hub 14 (as shown in
[0029] The strain gauge sensor of the present invention may be installed by the following two methods. 1. The strain gauge sensor 2 installed to the installation location 11 according to the aforementioned installation method as shown in
[0030] The second type of strain gauge sensor 3 of the present invention is installed to an installation location 11 according to the aforementioned installation method, and this type of strain gauge sensor 3 also comprises two strain gauge sensors 30a, 30b as shown in
[0031] It is noteworthy that the vehicle deforming and displacing directions as disclosed in U.S. Pat. No. 7,814,800B2 are forward and backward directions, but the vehicle deforming and displacing directions of the present invention are left and right directions, and thus the two are different. U.S. Pat. No. 7,814,800B2 relies on a weakened dropout plate to measure the amount of vehicle deformation. However, the present invention does not require such additional dropout plate. The metal plate of the present invention is an additional, not part of, the bike frame, and is installed conveniently for measuring the vehicle deformation caused by the applied manual force only. Once if the rear fork as disclosed in U.S. Pat. No. 7,814,800B2 is removed, the electrical vehicle cannot be ridden anymore. On the other hand, a rider still can ride the electrical vehicle of the present invention in the same situation as a normal bike. It is obvious that the present invention improves over the prior art.
[0032] According to the installation method of the present invention, the strain gauge sensor is installed to the installation location of the vehicle frame, and the strain gauge sensor will not be affected by the driving force when the auxiliary motor is driven, and feedback information will not be produced when the auxiliary motor is rotated, so that the riding of the electrical vehicle achieves intuitive and bionic effect.
[0033] In summation of the description above, the present invention complies with the patent application requirements, and thus is duly filed for patent application. While the invention has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.