THERMOSTAT FOR ENGINE COOLING SYSTEM
20200263596 ยท 2020-08-20
Assignee
Inventors
Cpc classification
F01P2025/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2007/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05D23/022
PHYSICS
F01P3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A thermostat for an engine cooling system, which is arranged between an engine and a radiator may include a housing having a coolant inlet through which coolant flows in from the engine and an outlet leading the coolant to the radiator; and a main valve provided in the housing and coupled to one side of wax to open or close the outlet as the volume of the wax is changed. In particular, the main valve is formed with a coolant hole.
Claims
1. A thermostat for an engine cooling system, which is arranged between an engine and a radiator, comprising: a housing having a coolant inlet through which coolant flows in from the engine and an outlet leading the coolant to the radiator; and a main valve provided in the housing and coupled to one side of wax and configured to open or close the outlet as a volume of the wax is changed, wherein the main valve is formed with at least one coolant hole.
2. The thermostat according to claim 1, further comprising a bracket provided in the housing and configured to support the main valve, wherein the bracket comprises an upper plate configured to contact or be separated from the main valve so as to open or close the outlet leading, and a stepped portion formed in an inner diameter portion of the upper plate is arranged so as to abut against a part of the main valve.
3. The thermostat according to claim 2, wherein the at least one coolant hole of the main valve is arranged at a position to be abutted against the stepped portion.
4. The thermostat according to claim 2, wherein the at least one coolant hole is opened before the main valve opens the outlet leading to the radiator such that some of the coolant flows through the at least one coolant hole to the outlet leading to the radiator.
5. The thermostat according to claim 2, wherein the at least one coolant hole comprises a plurality of coolant holes formed through top and bottom surfaces of the main valve, and the plurality of coolant holes are arranged along a peripheral portion of the main valve with predetermined intervals.
6. The thermostat according to claim 2, further comprising: a bypass valve configured to open or close a bypass outlet formed in the housing, the bypass outlet configured to guide the coolant coming through the coolant inlet to the engine.
7. The thermostat according to claim 6, wherein the bypass valve is configured to move in a direction of closing the bypass outlet when the at least one coolant hole is moved in a direction of being opened.
8. The thermostat according to claim 6, wherein the bypass valve is configured to be connected to the wax by a shaft of the bypass valve to operate with the main valve.
9. The thermostat according to claim 2, wherein a flow path to the radiator is closed when the main valve is in contact with both the upper plate and the stepped portion; the flow path to the radiator is opened partially when the main valve is in contact with the upper plate and spaced apart from the stepped portion; and the flow path to the radiator is opened when the main valve is spaced apart from both the upper plate and the stepped portion.
Description
DRAWINGS
[0028] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0037] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0038] In order to fully understand the present disclosure, operational advantages of the present disclosure and objects achieved by implementing the present disclosure, the accompanying drawings exemplifying forms of the present disclosure and contents described in the accompanying drawings need to be referred to.
[0039] In describing the exemplary forms, detailed description of technology known in the art or iterative description may be made shortly or omitted to avoid obscuring the subject matter of the present disclosure.
[0040]
[0041] Hereinafter, the thermostat for an engine cooling system according to the embodiment of the present disclosure will be described with reference to
[0042] The thermostat according to the embodiment of the present disclosure is provided between an engine (head, block) and a radiator in an engine cooling system as shown in
[0043] By using such control of flow rate of coolant, flow rate of the coolant can be optimally controlled depending on characteristics, control strategy and operating conditions of the engine, so that engine performance, fuel efficiency and cooling and heating performance can be improved even by a simple configuration.
[0044] In addition, such control can be applied to an engine cooling system of an outlet controlled cooling mode in which a thermostat is provided at an outlet side of the engine, in order to prevent thermal shock due to abrupt fluctuation in temperature of the coolant, which may be caused because high temperature coolant passed through the engine and low temperature coolant from a radiator are mixed with each other.
[0045] To this end, the thermostat according to the embodiment of the present disclosure is arranged in a flow path between the engine (engine head and engine block) and the radiator and configured such that a valve supported by a bracket 170 is operated as the volume of wax 120 in a housing 110 is changed. The valve controls the path and flow rate of coolant.
[0046] The housing 110 is formed with a coolant inlet 111, a bypass outlet 112 and an outlet 113 leading to the radiator.
[0047] In addition, a main valve 130 and a bypass valve 140 are provided to control opening/closing and flow rate of the outlet 113 leading to the radiator and the bypass outlet 112, respectively.
[0048] The main valve 130 is arranged to be coupled to a piston 150 so as to open or close the outlet 113 leading to the radiator. This main valve is shifted at the top of the piston 150 by means of change in volume of the wax 120 in the bracket 170 and in turn open or close the outlet 113 guiding the coolant to the radiator. Then, after shifting the position, the main valve is returned elastically to its original position by means of a main valve spring 161 of which one side is coupled to the main valve 130 and the other side is supported in the bracket 170.
[0049] Further, a bypass valve 140 is coupled to the other side of the wax 120.
[0050] The bypass valve 140 is provided at the bypass outlet 112 side and coupled to the wax 120 by means of a shaft 141 of the bypass valve to open or close the bypass outlet 112.
[0051] Accordingly, the bypass valve is shifted by means of change in volume of the wax 120. Then, after shifting the position, the bypass valve is returned elastically to its original position by means of a bypass valve spring 162 of which one side is coupled to the bypass valve 140 and the other side is coupled to the wax 120.
[0052] In this way, the main valve 130 and the bypass valve 132 are operated to be opened or closed in conjunction with each other by means of change in volume of the wax 120.
[0053] Further, a sensor 180 for measuring temperature of the coolant may be provided at the coolant inlet 111 to control the coolant.
[0054] In this way, when the volume of the wax 120 is changed as shown in
[0055] Furthermore, this embodiment of the present disclosure employs a means for preventing abrupt fluctuation in temperature due to mixing of high temperature coolant at the coolant inlet 111 side and low temperature coolant at the outlet 113 side leading to the radiator.
[0056] Specifically, an upper plate 171 of the bracket 170, which abuts against the main valve 130 to close the flow path or is separated from the main valve 130 to open the flow path, is provided at its inner diameter portion with a stepped portion 171-1 wherein the stepped portion 171-1 and the main valve 130 are to be arranged in such a manner that the stepped portion covers a part of a peripheral portion of the main valve 130.
[0057] Further, the main valve 130 is formed with a coolant hole 131. In one form the coolant hole 131 is formed through top and bottom surfaces of the main valve 130.
[0058] Accordingly, when the main valve 130 is shifted downward as shown in
[0059] This embodiment of the present disclosure is configured such that the main valve 130 is not completely opened for a moment but the coolant hole 131 formed in the main valve 130 is first opened, thereby allowing only a small amount of flow rate of the coolant to flow through the outlet 113 leading to the radiator.
[0060] Accordingly, cold coolant is less circulated when the thermostat is opened at the initial stage. As a result, engine warm up is faster so that fuel efficiency is improved. In addition, there is no abrupt thermal shock (overshoot/undershoot and hunting) in temperature of the coolant of the engine and the radiator so that thermal durability of the engine is improved.
[0061] Moreover, when the main valve 130 is further shifted downward than that shown in
[0062] The coolant hole 131 is formed in a portion of the main valve 130 which is covered by the stepped portion of the upper plate 171. In addition, the coolant hole may be implemented in various ways.
[0063] As a way of example, the coolant hole 131 may be a plurality of coolant holes 131-1 having a circular shape in a plane section wherein the holes are spaced from each other at equal intervals or predetermined intervals and positioned at the same radial distance, as shown in
[0064] Alternatively, each hole may be formed in a shape of the hole 131-2 which is formed by perforating a partial section of the main valve irregularly, as shown in
[0065] According to the thermostat for the engine cooling system of the present disclosure, initial flow rate of the coolant in the thermostat is precisely controlled so that thermal shock by coolant, which may be caused by initial uncontrolled opening of the thermostat, can be prevented.
[0066] In addition, cold coolant less circulates when the thermostat is opened at the initial stage and as a result, engine warm up is faster so that fuel efficiency can be improved.
[0067] Therefore, abrupt thermal shock (overshoot/undershoot and hunting) by coolant is prevented from occurring in the head and block, etc. of the engine so that thermal durability of the engine and the radiator is improved.
[0068] Further, durability and reliability of the engine can be improved in that thermal shock by coolant, which may be caused by initial uncontrolled opening of the thermostat and ultimately affects the radiator, the heater core, the oil cooler, the EGR cooler and the like, is prevented and thus excessive fluctuation in temperature is prevented.
[0069] Although the present disclosure has been described in the foregoing with reference to the drawings illustrated by way of an example, the present disclosure is not limited to the disclosed embodiments and it is apparent to those of ordinary skill in the art that various modifications and variations can be made to the present disclosure without departing from the spirit and scope of the disclosure.