AUXILIARY APPARATUS USING FOUR-WAY ELECTRONIC VALVE TO ACHIEVE TEMPERATURE RISE AND FALL EFFECT ON COMPONENT OF MACHINE TOOL
20210102765 · 2021-04-08
Assignee
Inventors
Cpc classification
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23Q11/10
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/141
PERFORMING OPERATIONS; TRANSPORTING
F28F2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool, which includes: a four-way electronic valve having a front end inlet, a front end outlet, a rear end outlet and a rear end inlet; the four-way electronic valve electrically connected to a control source; an outflow channel having one end connected to the rear end outlet; a return fluid incoming channel having one end connected to the rear end inlet; and a pump arranged on any one of the two of the outflow channel and the return fluid incoming channel, and electrically connected to the control source in order to be controlled by the control source to drive the fluid inside the channel where the pump is arranged thereon to move.
Claims
1. An auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool, mainly used to connect to pipelines connected to a component of a machine tool and a cooling device, the auxiliary apparatus comprising: a four-way electronic valve having a front end inlet, a front end outlet, a rear end outlet and a rear end inlet; the four-way electronic valve electrically connected to a control source and controlled by the control source to switch between two channel states; under a first channel state, the front end inlet being fluidly connected to the rear end outlet but not fluidly connected to the front end outlet, and the rear end inlet being fluidly connected to the front end outlet but not fluidly connected to the rear end outlet; under a second channel state, the front end inlet being fluidly connected to the front end outlet but not fluidly connected to the rear end outlet, and the rear end inlet being fluidly connected to the rear end outlet but not fluidly connected to the front end outlet; the front end inlet configured to allow a fluid of the cooling device to enter therein, and the front end outlet configured to allow the fluid to flow out to the cooling device; an outflow channel having one end connected to the rear end outlet and another end configured to allow the fluid to flow out to the component of a machine tool; a return fluid incoming channel having one end connected to the rear end inlet and another end configured to allow the fluid returning from the component of a machine tool to enter therein; and a pump arranged on any one of the two of the outflow channel and the return fluid incoming channel, and electrically connected to the control source in order to be controlled by the control source to drive the fluid inside the channel where the pump is arranged thereon to move.
2. The auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool according to claim 1, further comprising an inflow channel and a return fluid outflow channel; one end of the inflow channel connected to the front end inlet; one end of the return fluid outflow channel connected to the front end outlet.
3. The auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool according to claim 1, further comprising a heater and a temperature sensor; the heater arranged on at least one of the two of the outflow channel and the return fluid incoming channel, and electrically connected to the control source in order to be controlled by the control source to provide a heating effect; the temperature sensor arranged on the return fluid incoming channel and electrically connected to the control source.
4. The auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool according to claim 1, wherein the control source is a microcomputer.
5. The auxiliary apparatus using a four-way electronic valve to achieve temperature rise and fall effect on a component of a machine tool according to claim 1, wherein the control source is an external control box.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF THE INVENTION
[0017] To illustrate the technical features of the present invention, the following a detailed description of preferred embodiments of the present invention along with the accompanied drawings.
[0018] As shown in
[0019] The four-way electronic valve 11 includes a front end inlet 111, a front end outlet 113, a rear end outlet 115 and a rear end inlet 117. The four-way electronic valve 11 is electrically connected to a control source 21 and controlled by the control source 21 to switch between two channel states. The control source 21 in this embodiment can be an external box, such as a built-in control box of the machine tool, or an external microcomputer control module. When it is switched to a first channel state, the front end inlet 111 is fluidly connected to the rear end outlet 115 but is not fluidly connected to the front end outlet 113, and the rear end inlet 117 is fluidly connected to the front end outlet 113 but is not fluidly connected to the rear end outlet 115. When it is under a second channel state, the front end inlet 111 is fluidly connected to the front end outlet 113 but is not fluidly connected to the rear end outlet 115, and the rear end inlet 117 is fluidly connected to the rear end outlet 115 but us not fluidly connected to the front end outlet 113. The front end inlet 111 is configured to allow a fluid of the cooling device 91 to enter therein, and the front end outlet 113 is configured to allow the fluid to flow out to the cooling device 91.
[0020] The outflow channel 13 includes one end connected to the rear end outlet 115 and another end configured to allow the fluid to flow out to the machine tool spindle 81.
[0021] The return fluid incoming channel 15 includes one end connected to the rear end inlet 117 and another end configured to allow the fluid returning from the machine tool spindle 81 to enter therein.
[0022] The pump 17 is arranged on any one of the two of the outflow channel 13 and the return fluid incoming channel 15; in the first embodiment, it is arranged on the outflow channel 13 as an example for illustration. In addition, the pump 17 is electrically connected to the control source 21 in order to be controlled by the control source 21 to drive the fluid inside the channel where the pump 17 is arranged thereon to move.
[0023] In the first embodiment of the present invention, when the control source 21 controls the four-way electronic valve 11 to switch to the first channel state, the front end inlet 111 is, too, not fluidly connected to the rear end inlet 117. When it is switched to the second channel state, the front end inlet 111 is still not fluidly connected to the rear end inlet 117.
[0024] The above provides a detailed description on the structure of the first embodiment of the present invention. The following further describes the operational state of the first embodiment of the present invention.
[0025] As shown in
[0026] As shown in
[0027] As shown in
[0028] In view of the above, it can be understood that the first embodiment of the present invention is able to utilize the heat generated by a spindle of a machine tool originally equipped with a cooling device 91 to achieve the temperature increase or heating function while retaining its original temperature decrease or cooling function. Accordingly, the present invention provides an auxiliary apparatus capable of achieving temperature rise and fall effect. During the cooling process, the cooling fluid provided by the cooling device 91 flowing therethrough is used to perform cooling on the machine tool spindle 81 directly. For the heating process, flow channel is switched to allow the cooling fluid of the cooling device 91 to be stopped from flowing toward the machine tool spindle 81 by creating an independent circulating channel for the fluid flowing out from the machine tool spindle 81 in addition to that the heat generated during the operation of the machine tool spindle 81 is utilized to perform heating of the fluid inside such independent circulating channel, thereby achieving the temperature rise effect.
[0029] It shall be understood that the present invention adopts the technique of using a four-way electronic valve 11 to achieve the flow channel switch. In comparison to the technique of using a plurality of one-way electronic valves, the overall size of the present invention is much smaller; therefore, the present invention has the merits of relatively smaller overall size. In addition, during the cooling or heating process, since both the fluid of a lower temperature and the fluid of a higher temperature flow through the four-way electronic valve 11, there might be some concern on the temperature of the fluid inside the four-way electronic valve 11 being cancelled out due to heat exchange therebetween. Nonetheless, as the flow path inside the four-way electronic valve 11 is extremely short, if heat exchange effect actually occurs inside such valve, its impact on the temperature of the fluid is extremely minor; in other words, the change of the temperature of the fluid flowing through the four-way electronic valve 11 is small or negligible. As a result, in general, the overall configuration and design of the present invention is able to operate normally.
[0030] Furthermore, for a conventional machine tool, the components on the machine tool that often require cooling refer to a plurality of devices of the machine tool spindle 81, motor and hollow screw shaft etc. Accordingly, for the auxiliary apparatus 10 of the present invention, the target for the temperature adjustment effect is not limited to a machine tool spindle 81, and it can also be a motor or a hollow screw shaft to achieve the temperature adjustment effect. The connection method of the auxiliary apparatus 10 of the present invention to a motor or a hollow screw shaft is also identical to the connection method adopted between the machine tool spindle 81 and the auxiliary apparatus 10 of the present invention; consequently, details thereof are omitted hereafter.
[0031] Please refer to
[0032] In the second embodiment of the present invention, it further comprises a heater 31′ and a temperature sensor 33′. The heater 31′ is arranged on at least one of the two of the outflow channel 13′ and the return fluid incoming channel 15′. In other words, it can be arranged on the outflow channel 13′, or it can be arranged on the return fluid incoming channel 15′, or it can be arranged on both of the two channels. In the second embodiment of the present invention, the arrangement on the outflow channel 13′ is used as an example for illustration. The heater 31′ is electrically connected to the control source 21′ in order achieve the heating effect via the control of the control source 21′. The temperature sensor 33′ is arranged on the return fluid incoming channel 15′ and is electrically connected to the control source 21′.
[0033] The control source 21′ refers to a microcomputer in the second embodiment of the present invention rather than an external control source 21′. During the arrangement, it can be arranged inside a housing 100′, and the internal of the housing 100′ can be installed with the four-way electronic valve 11′, the outflow channel 13′, the return fluid incoming channel 15′ and the pump 17′.
[0034] In the second embodiment of the present invention, it further includes an inflow channel 18′ and a return fluid outflow channel 19′. One end of the inflow channel 18′ is connected to the front end inlet 111′, and another end thereof is connected to the cooling device 91′, in order to allow the fluid to further enter into the front end inlet 111′ from the cooling device 91′. One end of the return fluid outflow channel 19′ is connected to the front end outlet 113′, and another end thereof is connected to the cooling device 91′, in order to allow the fluid to flow out to the cooling device 91′.
[0035] During the use of the second embodiment of the present invention, to perform the heating operation, the control source 21′ can be used to control the heater 31′ to perform additional heating on the fluid such that the fluid circulating among the outflow channel 13′, the machine tool spindle 81′, the return fluid incoming channel 15′ and the four-way electronic valve 11′ can be heated at faster speed, thereby achieving the effect of fast heating with temperature rise. In addition, the temperature sensor 33′ is able to detect the temperature of the fluid flowing out of the machine tool spindle 81′. The control source 21′ can use the detection result of the temperature sensor 33′ to determine the temperature of the fluid inside the machine tool spindle 81′. Accordingly, it is able to determine whether a heating operation or a cooling operation is required to be performed based on a predetermined determination logic. Since such determination logic is not the key technical feature to the present invention, details thereof are omitted hereafter.
[0036] The rest of the structure of the second embodiment of the present invention and its technical effects achieved are identical to the ones of the first embodiment of the present invention, and details thereof are omitted hereafter.