METHOD AND APPARATUS FOR ALIGNING NOZZLES FOR DIE CASTING
20200114418 ยท 2020-04-16
Assignee
Inventors
Cpc classification
B22D17/2007
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A device and process for quickly and reliably determining and recording the configuration of multiple spray nozzles on a spray head assembly used for lubricating a die cast mold reduces trial and error associated with maintenance and repair of the spray head assembly. The device includes an adaptor configured to attach to a spray nozzle and an inertial measurement unit fixed to the adaptor to determine the orientation of the spray nozzle relative to a reference. The method involves using the device to determine the orientation of each of a plurality of spray nozzles on a spray head assembly relative to the reference and recording the relative orientation of each nozzle.
Claims
1. A device for determining the orientation of spray nozzles on a die lubrication spray head relative to a reference position and orientation of the spray head, comprising: an adaptor configured to interface in registry with a spray nozzle or fitting on which a nozzle can be installed; and an inertial measurement unit fixed to the adaptor and having a two-axis or three-axis gyroscope to determine an orientation of the spray nozzle relative to a reference orientation.
2. The device of claim 1, wherein the inertial measurement unit is a part of an electronics package further comprising a memory unit for recording measured spray nozzle orientation.
3. The device of claim 1, wherein the inertial measurement unit is part of an electronics package further comprising a display device for displaying measured spray nozzle orientation.
4. The device of claim 2, wherein the electronics package includes a communication port for retrieval of data from the memory unit.
5. The device of claim 2, wherein the inertial measurement unit is a part of an electronics package including a radio transmitter for communication between the memory unit and an external device.
6. The device of claim 1, wherein the inertial measurement unit is a part of an electronics package further comprising a camera for determining an identification code of a spray nozzle.
7. The device of claim 2, wherein the electronics package includes a switch that is automatically activated when the device is properly registered with a spray nozzle to record the spray nozzle orientation.
8. The device of claim 1, wherein the inertial measurement unit further comprises a three-axis accelerometer to determine position of the spray nozzle relative to a reference position.
9. A process for determining and recording the configuration of multiple spray nozzles on a spray head, comprising: using an inertial measurement unit having a two- or three-axis gyroscope to establish a reference orientation for the spray head; using the inertial measurement unit to determine the orientation of each spray nozzle relative to the reference orientation; and recording the relative orientation of each nozzle.
10. The process of claim 9, wherein the inertial measurement unit further comprises a three-axis accelerometer; using the accelerometer to establish a reference position for the spray head; and using the inertial measurement unit to determine the location of each spray nozzle relative to the reference position.
11. A process for servicing and reassembling a die lubrication spray system having at least one spray head with a plurality of spray nozzles such that the nozzles are precisely oriented and located after reassembly as before disassembly of the spray head, comprising: establishing a reference orientation for the spray head; using an inertial measurement unit to determine the orientation of each spray nozzle relative to the reference orientation; recording the relative orientation of each nozzle; disassembling the spray head; optionally cleaning, repairing or replacing spray head components; and reassembling the spray head and adjusting the orientation of each nozzle to match the recorded orientation.
12. The process of claim 11, wherein the inertial measurement unit further comprises a three-axis accelerometer; using the accelerometer to establish a reference position for the spray head; and using the inertial measurement unit to determine the location of each spray nozzle relative to the reference orientation and reference position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0019] Shown in
[0020] Once nozzles 22 have been optimally positioned and oriented to reduce cycle time, waste and scrap castings, a device 36 is used to determine and record these optimal positions and/or orientations for each nozzle relative to the reference position and reference orientation. The illustrated device 36 for determining and recording position and/or orientation of the nozzles includes an adaptor 38 that is configured to attach to or interface in registry with a spray nozzle 22 or to a fitting 40 on which the nozzle was installed, and an electronics package 42 that includes an inertial measurement unit that includes a two-axis or three-axis gyroscope 44 for determining an orientation of the spray nozzle relative to a reference orientation and optionally includes a three-axis accelerometer 46 for determining position of the spray nozzle relative to a reference position. Registry between the adaptor and the fitting or nozzle is achieved with conformal features that fit together in a single proper orientation and position of the adaptor with respect to the fitting or nozzle. The orientation angles and/or position coordinates can be displayed on a display device (e.g., LCD display) on package 42, recorded into a memory unit 50 for subsequent retrieval via a communication port 52 (e.g., USB port), and/or communicated to an external device (e.g., computer, tablet, portable cellular telephone, or other computing device) via a radio transmitter 54 (e.g., Bluetooth, WiFi, NFC, etc.) Various protocols and procedures can be used for recording the positions and/or orientations of the nozzles with respect to an established reference orientation and reference position. For example, if electronics package 42 includes display 48, the orientation angles and position coordinates for each nozzle can be manually recorded on an electronic or paper spreadsheet. As an alternative, a switch 56 can be manually closed to either transmit or record the angles and coordinates when the adaptor 38 is determined to be in proper registry with nozzle 22 or fitting 40. The nozzles can be labeled sequentially and position and/or orientation data for the nozzles can be recorded sequentially. Alternatively, software can be configured to allow manual entry or automated entry of nozzle identification, orientation and/or position. Nozzle identification can be entered automatically such as by providing package 42 with a camera 58 for reading a nozzle identification code 60 on a surface of the nozzle or fitting from which the nozzle was removed. It is also possible to provide device 36 with a switch 62 that is automatically closed by a protuberance 64 or other feature when the device 36 is in proper registry with the nozzle 22 or fitting 40 for determining and recording the orientation and position data for the nozzle.
[0021] In the case of a circular nozzle orifice, only two angles are needed to fully define or characterize the orientation of the nozzle. Accordingly, in those cases in which all of the nozzles 22 on a spray head 10 have a circular orifice, a two-axis gyroscope will suffice. However, in the more general case in which at least some of the nozzle orifices are non-circular (e.g., oval), it is desirable to employ a three-axis gyroscope so that a non-circular orifice is optimally rotated with respect to the spray direction.
[0022] The terms two- and three-axis gyroscope and three-axis accelerometer do not imply that all gyroscopic and/or acceleration detection devices are on the same chip (integrated circuit package). Rather, the requirements for two- and/or three-axis gyroscopes are that the electronics package 42 includes devices sufficient to detect rotations in two or three dimensions, respectively; and the requirements for a three-axis accelerometer are that package 42 includes devices sufficient to detect translation in all three dimensions.
[0023]
[0024] Electronics package 42 can also include one or more of a microprocessor or microcomputer 80 for controlling functional aspects of the device, an inertial measurement unit computer 82 for converting analog data from the gyroscopes and accelerometers into position and orientation data, power management circuitry 84, a battery 86, and a battery charger 88. A three-axis magnetometer 92 can also be employed in package 42 as a heading reference for obtaining more precise orientation and position data.
[0025] Shown in
[0026] Accordingly, it is to be understood that the above description is intended to be illustrative and not restrictive. Many embodiments and applications other than the examples provided would be apparent upon reading the above description. The scope of the invention should be determined with reference to the appended claims along with the full scope of equivalents to which such claims are entitled. It is anticipated and intended that future developments will occur, and that the disclosed systems and methods will be incorporated into such future embodiments. In summary, it should be understood that the invention is capable of modification and variation.