VARIABLE LOAD DYNO SYSTEM
20200080904 ยท 2020-03-12
Inventors
Cpc classification
G01L3/26
PHYSICS
International classification
Abstract
A variable load dynamometer (VLD) measures the performance and operating characteristics of a test motor without the use of flywheels to supply the fixed resistance to the test motor. The VLD uses a slave motor coupled to the test motor. Using a software-controlled computer interface, the user can vary the load on the slave motor allowing for evaluation of the test motor under various load conditions. The VLD enables the user to analyze the operating characteristics and performance of the test motor by adjusting the speed of the test motor and the load applied to the test motor by the slave motor. Use of the slave motor coupled to the test motor eliminates the need for flywheels. The VLD's modular and compact design permits the evaluation of small-scale motors.
Claims
1. A variable load dynamometer adapted to test small scale electric motors, the variable load dynamometer comprising: a. an electric test motor configured to be coupled to a slave motor; b. a throttle and motor controller configured to control the rotational speed of said test motor; c. a load cell configured to measure the load on said slave motor; d. a variable load control device configured to vary the load on said slave motor; e. a dynamo control device configured to monitor the load on said slave motor; and f. a test motor sensor device configured so that said dynamo control device can monitor the performance and operating characteristics of said test motor.
2. The variable load dynamometer according to claim 1, wherein: a. said test motor is coupled to said slave motor; and b. said dynamo control device is connected to said variable load control device, said load cell, and said test motor.
3. The variable load dynamometer according to claim 1, wherein a user controls the speed of said test motor and monitors and records the operating performance on said test motor by varying the load on said test motor using a software-controlled computer or mobile device.
4. The variable load dynamometer according to claim 1, further comprising: a. an inverter comprising an array of diodes and capacitors connected to said slave motor and to load and no-load MOSFET switches within said variable load control device; and b. said variable load control device is connected to and controlled by said dynamo control device; wherein said variable load control device converts the alternating current (AC) of said slave motor to direct current (DC).
5. The variable load dynamometer according to claim 1, wherein: a. said load cell is configured to measure the load on said slave motor using a mechanical linkage comprising a pivot arm and a joint arm connected from said slave motor to said load cell; b. said dynamo control device is connected to and monitors the deflection of said load cell; c. said dynamo control device is connected to said variable load control device; and d. said dynamo control device is connected to the test motor sensor device and monitors performance and operating characteristics of said test motor.
6. A variable load dynamometer adapted to test small scale electric motors, the variable load dynamometer comprising: a. an electric test motor configured to be coupled to a slave motor; b. a throttle and motor controller configured to control the rotational speed of said test motor; c. a load cell configured to measure the load on said slave motor; d. a variable load control device configured to vary the load on said slave motor; e. a dynamo control device configured to monitor the load on said slave motor; and f. a test motor sensor device configured so that said dynamo control device can monitor the performance and operating characteristics of said test motor; wherein said test motor is coupled to said slave motor; and wherein said dynamo control device is connected to said variable load control device, said load cell, and said test motor.
7. The variable load dynamometer according to claim 6, wherein: a. an inverter comprising an array of diodes and capacitors connected to said slave motor and to load and no-load MOSFET switches within said variable load control device; and b. said variable load control device is connected to and controlled by said dynamo control device; wherein said variable load control device converts the alternating current (AC) of said slave motor to direct current (DC).
8. The variable load dynamometer according to claim 6, wherein a user controls the speed of said test motor and monitors and records the operating performance on said test motor by varying the load on said test motor using a software-controlled computer or mobile device.
9. The variable load dynamometer according to claim 6, wherein: a. said load cell is configured to measure the load on said slave motor using a mechanical linkage comprising pivot arm and joint arm connected from said slave motor to said load cell; b. said dynamo control device is connected to and monitors the deflection of said load cell; c. said dynamo control device is connected to said variable load control device; and d. said dynamo control device is connected to the test motor sensor device and monitors performance.
10. A variable load dynamometer adapted to test small scale electric motors, the variable load dynamometer comprising: a. an electric test motor configured to be coupled to a slave motor; b. a throttle and motor controller configured to control the rotational speed of said test motor; c. a load cell configured to measure the load on said slave motor; d. a variable load control device configured to vary the load on said slave motor; e. a dynamo control device configured to monitor the load on said slave motor; and f. a test motor sensor device configured so that said dynamo control device can monitor the performance and operating characteristics of said test motor; wherein an inverter comprising an array of diodes and capacitors connected to said slave motor and to load and no-load MOSFET switches within said variable load control device; wherein said variable load control device converts the alternating current (AC) of said slave motor to direct current (DC); wherein said variable load control device is connected to and controlled by said dynamo control device; and wherein said load cell is configured to measure the load on said slave motor using a mechanical linkage comprising a pivot arm and a joint arm connected from said slave motor to said load cell.
11. The variable load dynamometer according to claim 10, wherein a user controls the speed of said test motor and monitors and records the operating performance on said test motor by varying the load on said test motor using a software-controlled computer or mobile device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0030] The present invention is directed to a variable load dynamometer (VLD) that is used to analyze small scale electric motors without the use of flywheels to generate inertia or load brakes. The VLD uses an interchangeable electric direct current (DC) slave motor with computer-controlled software to vary the load and analyze the performance of the test motor. The test motor can be directly coupled or gear-reduced to the slave motor. The variable load is generated by the size and type of slave motor used and its angular speed as controlled by the user, thereby replacing the function of the flywheel. One specific advantage of the VLD is that it can precisely and quickly adjust the load on the test motor ranging from zero to full load. This allows the user to regulate and analyze the test motor at various speeds. Moreover, the user has the ability to change slave motors to increase or decrease the maximum load. Additionally, the VLD allows the user to easily change the test motor so that a variety of motors may be tested. This allows the user to expand the range of different size motors to be tested and the load applied to those motors.
[0031] As used herein, and unless the context dictates otherwise, the term dyno and dynamo are intended to represent dynamometer and the terms are used interchangeably. As used in the description herein and throughout the claims that follow, the meaning of a, an, and the includes plural reference unless the context clearly dictates otherwise. Also, as used in the description herein, the meaning of in includes into and on unless the context clearly dictates otherwise.
[0032]
[0033] The dynamo control device 10 is connected to and controlled by a computer or mobile device with VLD 1 software. As controlled by the software, the computer or mobile device displays for the user the mechanical and electrical operating characteristics of test motor 13. The software controls VLD 1 and runs programmable test sequences in a manner best suited to the overall accuracy and efficiency of VLD 1. The data collected by dynamo control device 10 is received by the software and can be stored, displayed and printed in tabular or graphic formats. In an exemplary embodiment, test motor 13 characteristics that are measured and displayed by VLD 1 software include revolutions per minute (RPM), voltage, current, torque, power, efficiency, and milliampere-hours (mAh). The software can simulate loads, cycling the unit under test and motor ramping. Tests can be programmed to run on their own and saved for future use.
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[0038] In one embodiment, to generate a load state in slave motor 60, the relay within no-load switch 8B is turned off by dynamo control device 10 allowing dynamo control device 10 to output a DC voltage to gate 8F. In an embodiment, inverter 8A also outputs a DC voltage to drain 8D, producing a voltage drop that results in a signal resistance that limits the current of gate 8F. When source 8E has a limiting current, inverter 8A restricts converted DC current passing through inverter 8A and applies a resistance (i.e., electrical load) to slave motor 60. In an embodiment, slave motor 60 transforms the electrical load to mechanical load and dynamo control device 10 reads the load cell 20 deflection. In one embodiment, the electrical load limits the angular speed of slave motor 60 thereby decreasing the speed of test motor 13.
[0039]
[0040] The construction of VLD 1 is modular, so the disassembly of VLD 1 components is possible for easy transportation, maintenance, repair, installation and adjustment.
[0041] In an exemplary embodiment depicted in
[0042] In an alternative embodiment depicted in
[0043] The exemplary embodiment depicted in
[0044] In one embodiment, as slave motor 60 rotates, it generates an AC voltage transmitted to variable load control device 11. Dynamo control device 10 monitors and adjusts the load on slave motor 60 through variable load control device 11.
[0045] The exemplary embodiment depicted in
[0046] Thus, specific embodiments of VLD 1 have been disclosed. It should be apparent, however, to those skilled in the art that many more modifications besides those already described are possible without departing from the inventive concepts herein. The inventive subject matter, therefore, is not to be restricted except in the spirit of the appended claims. Moreover, in interpreting both the specification and the claims, all terms should be interpreted in the broadest possible manner consistent with the context. In particular, the terms comprises and comprising should be interpreted as referring to elements, components, or steps in a non-exclusive manner, indicating that the referenced elements, components, or steps may be present, or utilized, or combined with other elements, components, or steps that are not expressly referenced