This application claims the priority benefit under 35 U.S.C. § 119(a) of a Korean patent application filed on Apr. 30, 2015 in the Korean Intellectual Property Office and assigned Serial No. 10-2015-0061390, the entire disclosure of which is incorporated hereby incorporated by reference.
1. Field
The present disclosure relates to an outdoor unit of an air conditioner and control device for the outdoor unit, which has an improved structure to control temperatures of electronic parts.
2. Description of the Related Art
An air conditioner is a device that uses refrigeration cycles to control temperature, humidity, etc., to be right for human activities and simultaneously, eliminate e.g., dust in the air. The air conditioner includes an evaporator that cools the surrounding air by evaporating a refrigerant, a compressor that compresses the gas refrigerant coming out of the evaporator into a state of high temperature and high pressure, a condenser that condenses the compressed gas refrigerant into a room temperature liquid state, and an expansion valve that decompresses the high pressure liquid refrigerant.
The air conditioner may be classified into split types and integrated types, among which the split type air conditioner includes an indoor unit installed indoors for sucking in room air, forcing the air to exchange heat with a refrigerant, and discharging the heat-exchanged air back into the room, and an outdoor unit for forcing the refrigerant flowing in from the indoor unit to exchange heat with outdoor air and supplying the refrigerant back to the indoor unit to exchange heat with the room air. The outdoor unit is commonly equipped with the compressor and condenser.
Further, a control device including electronic parts to control the outdoor unit is also equipped in the outdoor unit. The electronic parts may produce heat while operating, and the heat influences the performance of the electronic parts. Accordingly, a cooling device is employed in the outdoor unit to maintain the right temperature for the electronic parts while the air conditioner is working.
The cooling device adopts a cooling method that uses outdoor air and/or a cooling method that uses a refrigerant circulating in the air conditioner. However, cooling efficiency of the cooling unit is degraded when the outdoor unit is operating under a high temperature of about 40° C. or more. Specifically, in case of cooling by using outdoor air, the cooling efficiency is lowered as the temperature of the outdoor air rises; in case of cooling by using a refrigerant, the rise of pressure of the refrigerant due to high temperature requires a lower operating frequency of the compressor that circulates the refrigerant, which leads to less circulation of the refrigerant and thus to degradation of the cooling efficiency.
In an aspect of one or more embodiments, there is provided an outdoor unit of an air conditioner and control device for the outdoor unit, which has an improved structure to enable electronic parts to operate while maintaining right temperatures.
In an aspect of one or more embodiments, there is provided an outdoor unit of an air conditioner and control device for the outdoor unit, which has an improved structure to efficiently cool a heat generating part of the electronic parts.
In an aspect of one or more embodiments, there is provided an outdoor unit of an air conditioner and control device for the outdoor unit, which has an improved structure to simultaneously perform refrigerant-based cooling and air-based cooling to efficiently cool the heat generating part even under high temperatures.
In accordance with an aspect of one or more embodiments, there is provided an outdoor unit of an air conditioner. The outdoor unit includes a compressor to compress a refrigerant; a condenser to condense the refrigerant discharged from the compressor; a control device which includes electronic parts to control the outdoor unit; and a cooling unit in contact with a heat generating part to cool the heat generating part, wherein the cooling unit includes a first heat radiation member installed to be in contact with the heat generating part; a refrigerant pipe which extends through the first heat radiation member and which enables a refrigerant to flow through the refrigerant pipe; and a second heat radiation member coupled with the first heat radiation member for heat transfer and installed to be in contact with outdoor air flowing into the control device.
The control device may further include a case which provides a room for the electronic parts in the control device, and the first heat radiation member may include a body frame arranged on an outer side of the case and coupled with the case; and a contact part arranged on a side of the body frame and bored through the case to be in contact with the heat generating part.
The body frame may have a plurality of sides and the second heat radiation member may be formed on one of the sides of the body frame except for the one side of the body frame on which the contact part is formed.
The refrigerant pipe may extend through the body frame.
The body frame, the refrigerant pipe, and the second heat radiation member may be coated.
The refrigerant pipe may enable the refrigerant flowing out of the condenser to flow through the inside of the refrigerant pipe.
The first heat radiation member may include aluminum or the second heat radiation member may include aluminum.
The outdoor unit may further include an expansion valve to expand the refrigerant condensed by the condenser, wherein the refrigerant pipe may enable the refrigerant flowing out of the expansion valve to flow through the inside of the refrigerant pipe.
The first heat radiation member may be manufactured in a die casting process of injecting a molten metal into a mold with the refrigerant pipe located inside the mold.
In accordance with an aspect of one or more embodiments, there is provided a control device. The control device includes a case; electronic parts arranged inside the case to control an outdoor unit of an air conditioner; and a cooling unit in contact with a heat generating part of the electronic parts to cool the heat generating part which is heated while operating, wherein the cooling unit includes a first heat radiation member installed to be in contact with the heat generating part; a refrigerant pipe which extends through the first heat radiation member and which enables a refrigerant to flow through the refrigerant pipe; and a second heat radiation member which extends from one side of the first heat radiation member to an outer side of the case.
The first heat radiation member may include a body frame arranged on an outer side of the case and coupled with the case; and a contact part arranged on one side of the body frame and bored through the case to be in contact with the heat generating part, and the second heat radiation member may be arranged on the other side of the body frame.
The refrigerant pipe may have an area surrounded by the body frame.
The body frame, the refrigerant pipe, and the second heat radiation member may be coated.
The refrigerant pipe may enable the refrigerant flowing out of a condenser included in the air conditioner to flow through the inside of the refrigerant pipe.
The refrigerant pipe may be formed to enable the refrigerant flowing out of an expansion valve included in the air conditioner to flow through the inside of the refrigerant pipe.
The first heat radiation member may include aluminum or second heat radiation member may include aluminum.
The first heat radiation member may be manufactured in a die casting process of injecting a molten metal into a mold with the refrigerant pipe located inside the mold.
Other aspects, advantages, and salient features of the disclosure will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the annexed drawings, discloses exemplary embodiments of the disclosure.
The above and other aspects of the present disclosure will become more apparent by describing in detail exemplary embodiments thereof with reference to the attached drawings in which:
Throughout the drawings, like reference numerals will be understood to refer to like parts, components, and structures.
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout.
Referring to
The compressor 10 compresses a gas refrigerant 70 into a state of high pressure and high temperature, and discharges the resultant gas refrigerant 70, which flows into the condenser 20. The condenser 20 condenses the compressed gas refrigerant into a liquid, releasing heat to the surroundings. While being condensed by the condenser 20, the refrigerant drops to a low temperature.
The expansion valve 30 expands a high pressure liquid refrigerant 75 condensed by the condenser 20 to a low pressure liquid refrigerant 77. The evaporator 40 evaporates the refrigerant expanded by the expansion valve 30. The evaporator 40 attains cooling effect by exchanging heat with an object to be cooled using latent heat of vaporization of the refrigerant, and forces the low temperature and low pressure gas refrigerant to return to the compressor 10. Conditioned air through this refrigeration cycle may be supplied into the room.
Referring
A cooling unit 80 may be installed between the condenser 20 and the expansion valve 30 for the refrigerant 75 that has passed the condenser 20 to flow in thereto. Alternatively, as shown in
Referring to
The outdoor unit 2 of an air conditioner may further include a fan 100. The fan 100 may be installed on the top face of the outdoor unit case 3. While the fan 100 is operating, the air inside the outdoor unit 2 may be discharged to the outside through the top face of the outdoor unit case 3, and the outdoor air may flow into the inside of the outdoor unit 2 through the flanking sides of the outdoor unit case 3. The outdoor air flowing into the inside of the outdoor unit 2 may exchange heat with the condenser 20 while passing through the condenser 20.
Referring to
The control device 50 may include a case 51 and electronic parts 53.
The case 51 may be located on an inner side of the outdoor unit 2 of the air conditioner. The case 51 may be installed at a position that faces a side of the outdoor unit case 3, to which the outdoor air flows in. The case 51 may isolate the space for the electronic parts 53 in the outdoor unit 2 of the air conditioner.
The electronic parts 53 may be mounted inside the case 51. For example, the electronic parts 53 may be mounted on an inner wall of the case 51.
The electronic parts 53 may be provided on a circuit-mounted print circuit board (PCB). The electronic parts 53 may include an inverter controller, EMI, reactor, etc. The inverter controller may control the compressor 10 to be driven at high speed or low speed, according to conditions of the room where the air conditioner 1 is installed, or according to manipulation of the user.
The electronic parts 53 may be heated while operating. With recent developments in technology, the electronic parts 53 play more roles. Accordingly, the electronic parts 53 consume more power, thereby producing more heat.
The electronic parts 53 may be disabled or may malfunction due to the heat. Furthermore, the temperature rise due to the heat produced in the electronic parts 53 may shorten life spans and cause degradation of the performance of the electronic parts 53. To prevent this, the cooling unit 80 may be installed to cool the electronic parts 53.
An embodiment of the cooling unit 80 in accordance with the present disclosure will now be described in detail.
Referring to
The cooling unit 80 may be formed to cool a heat generating part 55 located inside the outdoor unit 2 to keep it at a constant temperature. For example, the cooling unit 80 may cool the heat generating part 55 of the electronic parts 53, which is shown in
The cooling unit 80 may be in direct contact with the heat generating part 55 to exchange heat. Accordingly, while the refrigerant passing through the cooling unit 80 receives heat from the heat generating part 55 and the heat moves outside, the heat generating part 55 may be cooled.
The cooling unit 80 may also be formed to exchange heat with outdoor air flowing into the outdoor unit 2. The cooling unit 80 may be installed on the outer side of the control device 50. As shown in
The cooling unit 80 may include a first heat radiation member 81 and a refrigerant pipe 83.
The first heat radiation member 81 may have one side in contact with the heat generating part 55 of the electronic parts 53. The first heat radiation member 81 may be installed on an outer side of the control device 50, and bored through the control device 50 to be in contact with the heat generating part 55 inside the control device 50. The first heat radiation member 81 may be detachably coupled with the control device 50. The first heat radiation member 81 may be installed to be coupled with the control device 50 with a bolt 89. For example, the first heat radiation member 81 may include aluminum.
The first heat radiation member 81 may include a body frame 81a and a contact part 81b. The first heat radiation member 81 may be integrally manufactured to have the body frame 81a and contact part 81b in one unit. A method for manufacturing the first heat radiation member 81 will be described later.
The body frame 81a may be placed on an outer side of the control device 50. The body frame 81a may be detachably combined onto the outer side of the control device 50. The body frame 81a may be provided as being coupled onto the control device 50 with a bolt 89. The body frame 81a may be coupled onto the control device 50 with the bolt 89 in an area where the body frame 81a does not overlap with the contact part 81b.
The body frame 81a may be coupled with the refrigerant pipe 83. The body frame 81a may be in contact with the refrigerant pipe 83 to exchange heat. For example, the body frame 81a may be formed to enclose a part or all of the refrigerant pipe 83.
The contact part 81b may be arranged on one side of the body frame 81a. The contact part 81b may be formed to extend into the control device 50 from the body frame 81a. The contact part 81b may be bored through the case 51 to be in contact with the heat generating part 55 located inside the control device 50.
As shown in
The contact part 81b may be in contact with the heat generating part 55 located inside the control device 50 to exchange heat. The contact part 81b may have a lower temperature than the heat generating part 55 because of the refrigerant pipe 83 in contact with the body frame 81a. Accordingly, the contact part 81b may receive heat from the heat generating part 55, and the heat generating part 55 may thus be cooled.
The refrigerant pipe 83 may be in contact with the first heat radiation member 81 and exchange heat with the first heat radiation member 81. For example, the refrigerant pipe 83 may extend through the inside of the first heat radiation member 81. In this case, an area of the refrigerant pipe 83 being in contact with the first heat radiation member 81 may grow. This may increase the efficiency of heat exchange between the refrigerant pipe 83 and the first heat radiation member 81. The refrigerant pipe 83 may include copper.
The refrigerant may flow through the refrigerant pipe 83. The refrigerant may be provided as a liquid with a lower temperature than the heat generating part 55. The refrigerant may receive heat from the first heat radiation member 81 while flowing through the refrigerant pipe 83. This enables the first heat radiation member 81 that has received heat from the heat generating part 55 to remain at a particular temperature.
As shown in
Furthermore, as shown in
A sealing member 85 may be arranged between the body frame 81a and the case 51. The sealing member 85 may prevent rainwater or foreign materials from moving between the body frame 81a and the case 51 by sealing the body frame 81a and the case 51.
The cooling unit 80 may further include a second heat radiation member 86. The second heat radiation member 86 may be formed on one side of the first heat radiation member 81. The second heat radiation member 86 may be installed to be coupled with the first heat radiation member 81 for heat transfer and to come in contact with outdoor air flowing into the control device 50. The second heat radiation member 86 may be formed of a material with high thermal conductivity. For example, the second heat radiation member 86 may include aluminum.
The second heat radiation member 86 may be formed on any of the outer sides of the body frame 81a except for the side where the contact part 81b is formed. The cooling unit 80 may be formed such that the contact part 81b is formed on one side of the body frame 81a and the second heat radiation member 86 is formed on the other side of the body frame 81a. The second heat radiation member 86 may have a form that extends from one side of the first heat radiation member 81 to the outer side of the case 51. The second heat radiation members 86 may be provided in multiple pieces.
For example, as shown in
As shown in
The cooling unit 80 may be provided as being coated. A coating layer 87 may be formed on the outer side of the main body 81a. The coating layer 87 may commonly include an epoxy material. The coating layer 87 applied on the body frame 81a located on the outer side of the case 51 may prevent corrosion. As shown in
The cooling units 80 may be provided in multiple pieces. The multiple cooling units 80 may depend on types, the number, and locations of heating units located in the outdoor unit 2.
With the aforementioned features, the cooling unit 80 may cool the heat generating part 55 by heat exchange with the refrigerant flowing through the refrigerant pipe 83, and may further cool the heat generating part 55 by heat exchange with the air flowing into the outdoor unit 2.
Especially, if the outdoor unit 2 is put under high temperatures of 40° C. or more, internal temperature of the outdoor unit 2 may rise higher than the external temperature due to the heat produced inside the outdoor unit 2. Under this high temperature, the pressure of the refrigerant circulating in the outdoor unit 2 may grow higher. The refrigerant needs to remain under less than a certain pressure inside the air conditioner, so if the pressure grows higher due to the external temperature, circulation cycles of the refrigerant may slow down by less often driving the compressor that circulates refrigerant in order to maintain the certain pressure. This may allow the refrigerant to remain under less than certain pressure inside the air conditioner, however leading to degradation of cooling efficiency of the cooling unit 80 by using the refrigerant.
On the contrary, in an embodiment of the present disclosure, the cooling unit 80 is cooled not only by using the refrigerant but also by using the air flowing into the outdoor unit 2, thereby improving the cooling efficiency even under high temperature conditions. Even if the outdoor air has high temperature, heat exchange to a certain extent may still take place by increasing an amount of air to flow into the outdoor unit 2. This may enable the cooling unit 80 to operate such that the control device 50 maintains a certain temperature even in the case that circulation of a refrigerant slows down due to high temperature.
In the graph of
The experimental results of
T1 represents temperatures inside a conventional control device with a cooling unit installed thereon, the cooling unit being cooled only by using a refrigerant; T2 represents temperatures inside the control device 50 with the cooling unit 80 installed thereon, the cooling unit being cooled by using a refrigerant and the outdoor air flowing in thereto; T3 represents temperatures inside the control device 50 while the outdoor unit is not working.
Referring to the experimental results of
Unlike this, in an embodiment of the present disclosure, the control device 50 with the cooling unit 80 installed thereon may keep its internal temperature T2 at about 80° C. or lower. According to the experimental results, the outdoor unit 2 may operate while maintaining the internal temperature T2 to be about 77° C. This may enable the outdoor unit 2 to keep on operating even under a high outdoor temperature of about 58° C.
As such, in accordance with an embodiment of the present disclosure, the cooling unit 80 may keep the internal temperature of the control device 50 at a certain level such that the outdoor unit 2 may keep on operating even under high outdoor temperatures.
A method for manufacturing the cooling unit 80 will now be described in detail.
Referring to
The cooling unit 80 in accordance with an embodiment of the present disclosure may be formed by inserting a part or all of the refrigerant pipe 83 into the first heat radiation member 81. The cooling unit 80 may be manufactured in a die casting method including arranging the refrigerant pipe 83 in a mold 91 as shown in
As shown in
At least a part of the refrigerant pipe 83 may be located in the casting space 94 formed inside the mold 91. By arranging the refrigerant pipe 83 in the casting space 94 formed inside the mold 91, the molten metal 99 of
As shown in
The guide pin 95 may be formed of a metal substance. Specifically, the guide pin 95 may be formed of a metal having a higher melting point than the refrigerant pipe 83 formed of copper Cu.
The guide pin 95 may be formed to be inserted into the internal fluid path 83a of the refrigerant pipe 83. The guide pin 95 may be formed to have the same section as that of the internal fluid path 83a of the refrigerant pipe 83. With the features, the guide pin 95 may be inserted into the internal fluid path 83a of the refrigerant pipe 83 to serve to prevent deformation to the refrigerant pipe 83.
As shown in
The molten metal 99 to be injected into the casting space 94 may have temperatures of about 600° C. to about 700° C. The molten metal 99 may be formed of aluminum. The refrigerant 83 having copper may be deformed or damaged due to the temperature and pressure of the molten metal 99 injected into the casting space 94 at temperatures about 600° C. to 700° C.
Accordingly, in the method of manufacturing the cooling unit in an embodiment of the present disclosure, the guide pin 95 may be inserted into the refrigerant pipe 83 to prevent deformation or damage to the refrigerant pipe 83 even when a high temperature molten metal is injected.
As shown in
As shown in
In a case of coupling the refrigerant pipe 83 to the first heat radiation member 81 by e.g., press fitting, a minute space may often be created between the first heat radiation member 81 and the refrigerant pipe 83. As such, if the first heat radiation member 81 and the refrigerant pipe 83 have incomplete contact with each other, the efficiency of heat exchange between the first heat radiation member 81 and the refrigerant pipe 83 may be degraded.
However, in the die casting method of forming the first heat radiation member 81 by injecting the molten metal 95 while the refrigerant pipe 83 is located inside the mold 91, the cooling unit 80 may have an increased contact area between the first heat radiation member 81 and the refrigerant pipe 83. This may improve the efficiency of heat exchange between the refrigerant flowing through the refrigerant pipe 83 and the first heat radiation member 81. It may also improve the cooling efficiency of the cooling unit 80.
According to embodiments of the present disclosure, the heat generating part may be efficiently cooled by improving the efficiency of heat exchange.
The efficiency of heat exchange between an heat radiation member for cooling the heat generating part and a refrigerant pipe may increase by increasing a contact area between the heat radiation member and the refrigerant pipe. This may lead to improvement of the cooling efficiency of the cooling unit.
Since refrigerant-based cooling and air-based cooling are simultaneously performed, the cooling efficiency of the cooling unit may be maintained constant even under a high temperature environment.
Furthermore, a manufacturing process of the cooling unit may be simplified, thereby saving the manufacturing cost.
In addition, damage to the refrigerant pipe inserted into the heat radiation member in the manufacturing process of the cooling unit may be prevented.
Several embodiments have been described, but a person of ordinary skill in the art will understand and appreciate that various modifications can be made without departing the scope of the present disclosure. Thus, it will be apparent to those ordinary skilled in the art that the disclosure is not limited to embodiments described, which have been provided only for illustrative purposes.
Number | Date | Country | Kind |
---|---|---|---|
10-2015-0061390 | Apr 2015 | KR | national |
Number | Name | Date | Kind |
---|---|---|---|
5245839 | Chang | Sep 1993 | A |
20130283843 | Takenaka | Oct 2013 | A1 |
20140007607 | Tamura | Jan 2014 | A1 |
20140053589 | Nishino | Feb 2014 | A1 |
20150082823 | Teraki et al. | Mar 2015 | A1 |
20160174411 | Lee et al. | Jun 2016 | A1 |
20160258636 | Kim et al. | Sep 2016 | A1 |
Number | Date | Country |
---|---|---|
2 844 050 | Mar 2015 | EP |
2009-0 94088 | Apr 2009 | JP |
2009-106565 | May 2009 | JP |
2009-107605 | May 2009 | JP |
2009-132029 | Jun 2009 | JP |
2009-132267 | Jun 2009 | JP |
2009-133613 | Jun 2009 | JP |
2009-137527 | Jun 2009 | JP |
2009-138963 | Jun 2009 | JP |
2009-524151 | Jun 2009 | JP |
2009-524797 | Jul 2009 | JP |
2009-184478 | Aug 2009 | JP |
2009-193244 | Aug 2009 | JP |
2009-194093 | Aug 2009 | JP |
2009-194094 | Aug 2009 | JP |
2009-198050 | Sep 2009 | JP |
2009-208001 | Sep 2009 | JP |
2009-216332 | Sep 2009 | JP |
2009-257748 | Nov 2009 | JP |
2009-260371 | Nov 2009 | JP |
2009-264699 | Nov 2009 | JP |
2009-266491 | Nov 2009 | JP |
2009-298390 | Dec 2009 | JP |
2009-299945 | Dec 2009 | JP |
2010-000964 | Jan 2010 | JP |
2010-007939 | Jan 2010 | JP |
2010-12426 | Jan 2010 | JP |
2010-12427 | Jan 2010 | JP |
2010-15788 | Jan 2010 | JP |
2010-32195 | Feb 2010 | JP |
2010-79881 | Apr 2010 | JP |
2010-96014 | Apr 2010 | JP |
2010-107176 | May 2010 | JP |
2010-111269 | May 2010 | JP |
2010-115993 | May 2010 | JP |
2010-116033 | May 2010 | JP |
2010-121604 | Jun 2010 | JP |
2010-127508 | Jun 2010 | JP |
2010-148272 | Jul 2010 | JP |
2010-169055 | Aug 2010 | JP |
2010-173357 | Aug 2010 | JP |
2010-243079 | Oct 2010 | JP |
2010-243080 | Oct 2010 | JP |
2010-532796 | Oct 2010 | JP |
2010-255860 | Nov 2010 | JP |
2010-255862 | Nov 2010 | JP |
2010-267707 | Nov 2010 | JP |
2010-281502 | Dec 2010 | JP |
2011-004874 | Jan 2011 | JP |
2011-005983 | Jan 2011 | JP |
2011-31704 | Feb 2011 | JP |
2011-75140 | Apr 2011 | JP |
2011-512507 | Apr 2011 | JP |
2011-112229 | Jun 2011 | JP |
2011-133969 | Jul 2011 | JP |
2011-141859 | Jul 2011 | JP |
2011-143160 | Jul 2011 | JP |
2011-155301 | Aug 2011 | JP |
2011-163584 | Aug 2011 | JP |
2011-163758 | Aug 2011 | JP |
2011-522996 | Aug 2011 | JP |
2011-204154 | Oct 2011 | JP |
2011-216831 | Oct 2011 | JP |
2011-242017 | Dec 2011 | JP |
2012-9898 | Jan 2012 | JP |
2012-47390 | Mar 2012 | JP |
2012-57885 | Mar 2012 | JP |
2012-97736 | May 2012 | JP |
2012-101167 | May 2012 | JP |
2012-154611 | Aug 2012 | JP |
2012-522958 | Sep 2012 | JP |
2012-207816 | Oct 2012 | JP |
2012-218680 | Nov 2012 | JP |
2013-91481 | May 2013 | JP |
2013-96645 | May 2013 | JP |
2013-525742 | Jun 2013 | JP |
2013-526458 | Jun 2013 | JP |
2013-130332 | Jul 2013 | JP |
2013-164031 | Aug 2013 | JP |
2013-164944 | Aug 2013 | JP |
2013-175069 | Sep 2013 | JP |
2013-181666 | Sep 2013 | JP |
2013-217569 | Oct 2013 | JP |
2013-226970 | Nov 2013 | JP |
2013-242102 | Dec 2013 | JP |
2013-247908 | Dec 2013 | JP |
2013-257889 | Dec 2013 | JP |
2013-543458 | Dec 2013 | JP |
2014-8839 | Jan 2014 | JP |
2014-53504 | Mar 2014 | JP |
2014-76781 | May 2014 | JP |
2014-89024 | May 2014 | JP |
2014-105759 | Jun 2014 | JP |
2014-126315 | Jul 2014 | JP |
2014-129944 | Jul 2014 | JP |
2014-173747 | Sep 2014 | JP |
2014-173748 | Sep 2014 | JP |
2014-177154 | Sep 2014 | JP |
2014-190565 | Oct 2014 | JP |
1985-0004324 | Jul 1985 | KR |
1990-7002308 | Dec 1990 | KR |
1994-0015432 | Jul 1994 | KR |
1994-016658 | Jul 1994 | KR |
1996-0004978 | Feb 1996 | KR |
1996-0018424 | Jun 1996 | KR |
1996-024021 | Jul 1996 | KR |
1997-0007216 | Feb 1997 | KR |
1997-0043011 | Jul 1997 | KR |
1998-065034 | Oct 1998 | KR |
1998-067387 | Oct 1998 | KR |
1999-0044175 | Jun 1999 | KR |
1999-0053371 | Jul 1999 | KR |
2000-0004843 | Jan 2000 | KR |
2000-0003899 | Feb 2000 | KR |
20-0176060 | Mar 2000 | KR |
2000-0006119 | Apr 2000 | KR |
2000-0031161 | Jun 2000 | KR |
2000-0044076 | Jul 2000 | KR |
2000-0070976 | Nov 2000 | KR |
2001-0005043 | Jan 2001 | KR |
20-0213996 | Feb 2001 | KR |
20-0214014 | Feb 2001 | KR |
2001-0007802 | Feb 2001 | KR |
2001-0007804 | Feb 2001 | KR |
2001-0070728 | Jul 2001 | KR |
2002-0005446 | Jan 2002 | KR |
2002-0027077 | Apr 2002 | KR |
2002-0029154 | Apr 2002 | KR |
2002-0059004 | Jul 2002 | KR |
20-0289198 | Sep 2002 | KR |
2002-0095884 | Dec 2002 | KR |
2003-0031540 | Apr 2003 | KR |
2003-0071568 | Sep 2003 | KR |
2003-0088106 | Nov 2003 | KR |
20-0335450 | Dec 2003 | KR |
20-0339686 | Jan 2004 | KR |
10-2004-0045797 | Jun 2004 | KR |
20-0353120 | Jun 2004 | KR |
10-2004-0093632 | Nov 2004 | KR |
10-2005-0064555 | Jun 2005 | KR |
10-2006-0129789 | Dec 2006 | KR |
10-2006-0135563 | Dec 2006 | KR |
10-0696718 | Mar 2007 | KR |
10-2007-0075119 | Jul 2007 | KR |
10-2007-0090781 | Sep 2007 | KR |
10-2007-0101849 | Oct 2007 | KR |
10-0764708 | Oct 2007 | KR |
10-2007-0116272 | Dec 2007 | KR |
10-2007-0118221 | Dec 2007 | KR |
10-2008-0005434 | Jan 2008 | KR |
10-0827333 | May 2008 | KR |
10-0836021 | Jun 2008 | KR |
10-0847602 | Jul 2008 | KR |
20-2008-0003246 | Aug 2008 | KR |
10-2008-0098936 | Nov 2008 | KR |
10-0887280 | Mar 2009 | KR |
10-2009-0034523 | Apr 2009 | KR |
10-2009-0056370 | Jun 2009 | KR |
10-2009-0090574 | Aug 2009 | KR |
10-2010-0030316 | Mar 2010 | KR |
10-2010-0032866 | Mar 2010 | KR |
10-2010-0047256 | May 2010 | KR |
10-2010-0067324 | Jun 2010 | KR |
10-2010-0007702 | Jul 2010 | KR |
10-2010-0103930 | Sep 2010 | KR |
10-2010-0114122 | Oct 2010 | KR |
10-2011-0047348 | May 2011 | KR |
10-2011-0061216 | Jun 2011 | KR |
10-2011-0081730 | Jul 2011 | KR |
10-2011-0110428 | Oct 2011 | KR |
10-1093191 | Dec 2011 | KR |
10-2012-0007642 | Jan 2012 | KR |
10-2012-0095883 | Aug 2012 | KR |
10-2012-0099073 | Sep 2012 | KR |
10-2012-0139168 | Dec 2012 | KR |
10-1217792 | Jan 2013 | KR |
10-2013-0032222 | Apr 2013 | KR |
10-2013-0032223 | Apr 2013 | KR |
10-2013-0032224 | Apr 2013 | KR |
10-2013-0032225 | Apr 2013 | KR |
10-2013-0032227 | Apr 2013 | KR |
10-2013-0032228 | Apr 2013 | KR |
10-2013-0070942 | Jun 2013 | KR |
10-1273781 | Jun 2013 | KR |
10-2013-0075634 | Jul 2013 | KR |
10-2013-0081664 | Jul 2013 | KR |
10-2013-0084908 | Jul 2013 | KR |
10-1335982 | Dec 2013 | KR |
10-2014-0098535 | Aug 2014 | KR |
9844304 | Oct 1998 | WO |
9962127 | Dec 1999 | WO |
2006011251 | Feb 2006 | WO |
2006011297 | Feb 2006 | WO |
2006112091 | Oct 2006 | WO |
2007086418 | Aug 2007 | WO |
2010049998 | May 2010 | WO |
2011048695 | Apr 2011 | WO |
2012105032 | Aug 2012 | WO |
2012144344 | Oct 2012 | WO |
WO 2015002493 | Jan 2015 | WO |
WO 2015053554 | Apr 2015 | WO |
Entry |
---|
Korean Application No. 2019940029595, dated Nov. 8, 1994, 1 page. |
Korean Application No. 2019880018149, dated Nov. 3, 1988, 1 page. |
Extended European Search Report dated Feb. 17, 2017 in corresponding European Application No. 16162963.9. |
Number | Date | Country | |
---|---|---|---|
20160320077 A1 | Nov 2016 | US |