CNC Machine Cutting Fluid Discharging Tool Accessory
20170021469 ยท 2017-01-26
Inventors
Cpc classification
B23G2240/12
PERFORMING OPERATIONS; TRANSPORTING
B23G1/44
PERFORMING OPERATIONS; TRANSPORTING
B05B9/0413
PERFORMING OPERATIONS; TRANSPORTING
Y10T408/46
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23Q11/1076
PERFORMING OPERATIONS; TRANSPORTING
B23B51/06
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/1084
PERFORMING OPERATIONS; TRANSPORTING
Y10T279/17111
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B23Q11/10
PERFORMING OPERATIONS; TRANSPORTING
B05B9/04
PERFORMING OPERATIONS; TRANSPORTING
B23G1/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tool accessory used to apply different volumes of a cutting fluid to the tap under CNC control by causing the machine to undergo different pump cycles in which the rotational speed of the tool is increased above the tapping rotated and then quickly returned to the tapping rotation. The tool includes a tapping head, a reservoir filled with cutting fluid, a centrifugal force-reactive pump and at least two discharge nozzles. The pump includes a plurality of biased piston springs that are forced outward and store centripetal force when the tool is rotated at speeds above normal tapping speed. When the rotational speed of the tool is reduced, the piston springs overcome the centrifugal forces and force cutting fluid through the discharge nozzles. The volume of cutting fluid discharged is controlled by adjusting the viscosity of the cutting fluid, the tool's maximum speed, by using different size discharge nozzles, and by using different pump cycles.
Claims
1. A cutting fluid discharge tool accessory, comprising: a. a reservoir body with and axially aligned shank and an inner cavity filled with cutting fluid; and, b. a pump assembly aligned below and attached to said reservoir body, said pump assembly includes at least one discharge nozzle coupled to a centripetal force controlled pump that draws cutting fluid from said reservoir by and selectively releases of cutting fluid into said discharge nozzle assembly when the tool assembly is rotated at a speed needed form a tap and then reduced to a desired needed for tapping, said pump assembly includes a cutting tap mounting surface configured to attach to a cutting tap that includes a tip located below said pump assembly, said discharge nozzle assembly includes a discharge nozzle aligned on said pump body and aimed towards said tap so cutting fluid dispensed from said discharge nozzle is aimed at said tap.
2. The tool accessory, as recited in claim 1, wherein said pump assembly includes a piston cavity connected to said reservoir, and a biased swing arm configured to pivot and draw cutting fluid into said piston cavity at rotation speeds higher than needed for tapping and pivot in the opposite direction force cutting fluid from said piston cavity when said tool rotates at a rotation for tapping.
3. The tool accessory, as recited in claim 2, wherein said discharge nozzle is attached to a nozzle body selectively attaches to said pump body.
4. The tool accessory, as recited in claim 2, wherein said swing arm is pivotally attached to said pump assembly and includes a weight and an end that presses against said spring biased piston, when said tool is sufficiently rotated above the tapping speed, said swing arm rotates and allows a compression spring push said piston moves longitudinally inside said piston cavity and draw cutting fluid into said piston cavity, but when said tool is rotated at said tapping speed, said swing arm returns to its original position and said piston is pushed longitudinally inside said pivot cavity and forces cutting fluid through said discharge nozzle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
[0025] Referring to the accompanying
[0026] As shown in
[0027] Formed on the bottom edge of the reservoir body 22 is a wide collar 25 as shown in
[0028] The pump assembly 40 includes a pump body 42 with a cylindrical upper section 44 that fits into the lower opening 29 formed on the reservoir body 22 and a conical-shaped lower section 50. Extending upward from the upper section 44 and on opposite sides of the pump body 42 are two fluid scuppers 48.
[0029] Extending through the pump body 42 are fluid passageways 49 that terminate at one end at a discharge nozzle port 52 and at the opposite end under a fluid scupper 48. Formed around the upper section 44 is an o-ring recessed groove 43 in which an o-ring 45 is placed. When the pump body 42 is attached to the reservoir body 22, the o-ring 45 creates a fluid-tight seal.
[0030] Extending through the lower section 50 of the pump body 42 are fluid passageways 102. The fluid passageways 49 are diagonally aligned and converge at approximately 20 degrees from the tool's longitudinal axis 11 shown rotated approximately 22.5 degrees. The fluid passageways 102 terminate one end at a piston discharge nozzle port 80 as shown in
[0031] The pump assembly 40 includes a plurality of biased pistons 14 and piston-springs 52 that fits into transversely aligned piston-spring bores 44 formed on the upper section 44 of the pump body 42.
[0032] Also attached to the top surface of the upper section 44 are two swing arms 56 as shown in
[0033] The discharge nozzle assembly 75 includes a threaded discharge nozzle body 76 that receives and attaches to a discharge nozzle 80. Located inside the discharge nozzle body 76 is a ball valve 77. When the nozzle body 76 is tightened into the nozzle bore formed on the pump body, the nozzle body 76 presses against the discharge nozzle 80 as shown in
[0034] The operator may also control the amount of cutting fluid 90 dispensed by using different cutting fluids 90 that have different viscosities, typically with viscosity indexes between 80 and 120. For example, one type of cutting fluid 90 (that may be used is sold under the trademark COOL TOOL II sold and distributed by Monroe Fluid Technology. programming using one or more pump cycles. Each pump cycle includes the step of temporarily increasing the rotational speed of the tool and the step of quickly reducing the rotational speed to the desired tapping speed. When tapping holes in a workpiece, the machine may undergo one or pumping cycles depending on the size and number of holes being tapped.
[0035] During operation, the spindle is accelerated to a higher rotation above the desired tapping speed. As the tool accessory 10 is rotated, the weights 57 are forced outward which cause the swing arms 56 to pivot. As each swing arm 56 pivots, the adjacent piston 108 is forced longitudinally in the piston cavity 110. As the piston 108 moves longitudinally, the cutting fluid 90 is drawn thru the one way check valve 118 and into the piston cavity 110. Once the cutting fluid 90 fills the piston cavity 110, the one way check valve 118 closes under spring pressure. When the rotational speed of the spindle is reduced to the desired tapping speed, the compression springs 52 force the piston 108 forward in the piston cavity 110 forcing the cutting fluid 90 out of the piston cavity 110. The one way check valve 118 is closed preventing the cutting fluid 90 from flowing back into the reservoir. The compressed fluid unseats the second check ball valve 77, and is forced through the discharge nozzle 80.
[0036] During operation, the rotational speed for tapping holes is approximately 200 RPM's. The maximum rotational speed of the machine is approximately 2,500 RPM. When the machine operates at 2,500 RPM's, the entire piston is filled with cutting fluid 90. If the machine operates at 1, 800 RPM's, three-fourths of the piston may be filled with cutting fluid 90. During setup, the operator may control the amount of cutting fluid 90 that enters the piston cavity 110 by the controlling the maximum rotation speed.
[0037] If a discharge nozzle 88 with a discharge port 79 has a diameter of 0.012 inch, the volume of cutting fluid 90 discharged from the discharge nozzle 88 is 0.5 to 4 ml depending on the amount of cutting fluid in the piston cavity 110.
[0038] In compliance with the statute, the invention described has been described in language more or less specific on structural features. It should be understood however, that the invention is not limited to the features shown, since the means and construction shown, comprises the preferred embodiments for putting the invention into effect. The invention is therefore claimed in any of its forms or modifications within the legitimate and valid scope of the amended claims, appropriately interpreted under the doctrine of equivalents.