Laboratory wear and drag force testing system
A laboratory wear and drag force testing system in a central controller operably connected to a plurality of testing terminals. The testing terminals allow for environmental isolation of the drive mechanisms to allow a range of testing temperatures. Both vertical and horizontal loads are measured and recorded such that testing can be suspended or terminated in response to predetermined thresholds.
1 . A testing system for determining at least one of wear and a drag force between a media and a test sample, the testing system comprising a testing terminal having a reciprocating first drive and a first load sensor for applying and measuring a first force between the media and the test sample along a first axis, and a second drive and a second load sensor for applying and measuring a second compressive force between the media and the test sample along a different second axis.
2 . The testing system of claim 1 , wherein at least one of the first drive and second drive has a variable stroke length.
3 . The testing system of claim 1 , wherein both the first drive and the second drive have a variable stroke length.
4 . The testing system of claim 1 , wherein at least one of the first drive and second drive has a variable stroke frequency.
5 . The testing system of claim 1 , wherein both the first drive and second drive have a variable stroke frequency.
6 . The testing system of claim 1 , wherein at least one of the first drive and the second drive is selected to provide a variable compressive force.
7 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal for recording data from the testing terminal corresponding to the first force and the second force.
8 . The testing system of claim 7 , further comprising a plurality of testing terminals operably connected to the central controller.
9 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal for controlling at least one a stroke length and a stroke frequency of the first drive and the second drive.
10 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal for controlling a stroke length and a stroke frequency of the first drive and the second drive.
11 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal, the central controller configured to determine a drag force between the media and the test sample.
12 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal, the central controller configured to adjust a drag force by an inertia compensation.
13 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal, the central controller configured to control a contact path between the media and the test sample.
14 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal, the central controller configured to control an applied force between the media and the test sample along a contact path.
15 . The testing system of claim 1 , further comprising a central controller operably connected to the testing terminal, the central controller configured to determine a drag force between the media and the test sample along at least a portion of a contact path between the media and the test sample.
16 . The testing system of claim 1 , further comprising a housing enclosing at least one of the first drive and the second drive, the housing forming a thermal barrier between an interior of the housing and an exterior of the housing.
17 . A testing system for determining at least one of wear and a drag force between a media and a test sample, the testing system comprising:
(a) a plurality of testing terminals, each testing terminal providing a compressive load signal and a drag force signal between a corresponding media and test sample; and
(b) a central controller operably connected to each of the testing terminals for recording at least a drag force corresponding to each of the testing terminals.
18 . The testing system of claim 17 , wherein the central controller controls a contact path between the media and the test sample.
19 . The testing system of claim 17 , wherein each testing terminal includes a reciprocating first drive and a first load sensor for applying and measuring a first force between the media and the test sample along a first axis, and a second drive and a second load sensor for applying and measuring a second compressive force between the media and the test sample along a different second axis.
20 . The testing system of claim 17 , wherein the central controller controls at least one a stroke length and a stroke frequency of each of the testing terminals.
21 . The testing system of claim 17 , wherein the central controller controls a stroke length and a stroke frequency of each of the testing terminals.
22 . The testing system of claim 17 , wherein the central controller adjusts the drag force by an inertial compensation.
23 . The testing system of claim 17 , wherein the central controller controls a contact path between the media and the test sample.
24 . The testing system of claim 17 , wherein the central controller controls an applied force between the media and the test sample along a contact path.
25 . A testing system for determining at least one of wear and a drag force between a media and a test sample, the testing system comprising:
(a) a drive assembly providing motion along two axes of travel;
(b) a mounting arm connected to the drive assembly for movement along the two axes of travel, the mounting arm including a common fitting and a hand clamp for applying a clamping force across a portion of the common fitting; and
(c) a plurality of media mounts for engaging the mounting arm, each media mount having a cooperative fitting for engaging the common fitting in a predetermined and reproducible position, each media mount having a different media mounting interface.
26 . The testing system of claim 25 , further comprising a housing enclosing the drive assembly and a portion of the mounting arm, the housing forming a thermal between an interior of the housing and an exterior of the housing.
27 . A method of determining at least one of wear and a drag force between a media and test sample, the method comprising:
(a) simultaneously providing reciprocating motion along a first axis between the media and the test sample at each of a plurality of testing terminals;
(b) exerting a controlled applied force along a second axis between the media and the test sample at each of the plurality of testing terminals; and
(c) providing a signal from each of the testing terminals corresponding to a drag force between the media and the test sample at each testing terminal.
28 . The method of claim 27 , further comprising monitoring the signal from each testing terminal to determine the drag force between the media and the test sample at each testing terminal.
29 . The method of claim 27 , further comprising adjusting a determination of a drag force between the media and the test sample by an amount corresponding to a mass of a media mount at a corresponding testing terminal.
30 . A method of determining at least one of wear and a drag force between a media and a test sample, the method comprising:
(a) controlling each of a stroke length, a stroke frequency and a loading force for reciprocating motion between the media and the test sample; and
(b) providing a signal corresponding to a drag force between the media and the test sample.
31 . The method of claim 30 , further comprising calculating a drag force from the signal.
32 . The method of claim 31 , further comprising adjusting the calculated drag force by an inertia compensation.
33 . The method of claim 30 , further comprising varying at least one of the stroke length, the stroke frequency and the loading force in response to the signal corresponding to a drag force.