WO2014205972A1 - 用于直冷冰箱的化霜控制系统 - Google Patents

用于直冷冰箱的化霜控制系统 Download PDF

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Publication number
WO2014205972A1
WO2014205972A1 PCT/CN2013/086321 CN2013086321W WO2014205972A1 WO 2014205972 A1 WO2014205972 A1 WO 2014205972A1 CN 2013086321 W CN2013086321 W CN 2013086321W WO 2014205972 A1 WO2014205972 A1 WO 2014205972A1
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WIPO (PCT)
Prior art keywords
refrigerating
defrosting
refrigeration cycle
evaporator
cooling refrigerator
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PCT/CN2013/086321
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English (en)
French (fr)
Inventor
王健
田振华
马珊
边祥胜
寇淑文
李鹏
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海尔集团公司
青岛海尔股份有限公司
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Publication of WO2014205972A1 publication Critical patent/WO2014205972A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B47/00Arrangements for preventing or removing deposits or corrosion, not provided for in another subclass
    • F25B47/02Defrosting cycles
    • F25B47/022Defrosting cycles hot gas defrosting
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2400/00General features or devices for refrigeration machines, plants or systems, combined heating and refrigeration systems or heat-pump systems, i.e. not limited to a particular subgroup of F25B
    • F25B2400/04Refrigeration circuit bypassing means
    • F25B2400/0403Refrigeration circuit bypassing means for the condenser
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2400/00General features or devices for refrigeration machines, plants or systems, combined heating and refrigeration systems or heat-pump systems, i.e. not limited to a particular subgroup of F25B
    • F25B2400/04Refrigeration circuit bypassing means
    • F25B2400/0411Refrigeration circuit bypassing means for the expansion valve or capillary tube

Definitions

  • the invention relates to the technical field of refrigerators, and in particular to a defrosting system for a direct cooling refrigerator.
  • the refrigeration methods of refrigerators are direct cooling and air cooling.
  • the two refrigeration methods have their own advantages and disadvantages.
  • the direct cold refrigerator is easy to frost, the food is not easy to dry and odor; the air-cooled refrigerator does not frost, but the food is easy to dry and odor.
  • the existing defrosting technology generally uses an automatic compensation heating wire to defrost the refrigerating chamber, and the freezing compartment requires the user to perform manual defrost on a regular basis. Manual defrost is time-consuming and laborious, and has become annoyance for many users.
  • a defrosting control system for a direct cooling refrigerator having a main refrigeration cycle system including a compressor, a condenser, and a freezing chamber
  • the defrosting control system comprising a defrosting refrigeration cycle system, a first switching device and a second switching device, the defrosting cycle system comprising a compressor and a freezing chamber shared with the main refrigeration cycle system
  • the evaporator further includes a defrosted refrigerated evaporation tube, the first switching device connecting the compressor, the condenser and the freezer evaporator, and a connection between the condenser and the freezer evaporator to activate the main refrigeration cycle system or
  • the defrosting refrigeration cycle system is connected to the compressor, the refrigerating and refrigerating evaporation tube and the defrosting and refrigerating evaporation tube, and can select
  • the defrosted refrigerated evaporation tube is bridged at both ends of the refrigerating and refrigerating evaporation tube.
  • the first switching device is a three-way solenoid valve, and an inlet end of the three-way solenoid valve is connected to an outlet end of the compressor, and an outlet end of the three-way solenoid valve is The inlet end of the condenser is connected, and the other outlet end of the three-way solenoid valve is connected to the inlet end of the freezer evaporator.
  • the second switching device is a three-way solenoid valve, and an outlet end of the three-way solenoid valve is connected to an inlet end of the compressor, and an inlet end of the three-way solenoid valve is The outlet end of the refrigerating and refrigerating evaporator is connected, and the other inlet end of the three-way solenoid valve is connected to the outlet end of the defrosted refrigerating tube.
  • a defrosting capillary is connected in series between the freezing compartment evaporator and the defrosted refrigerating evaporation tube, and a main refrigeration cycle capillary is connected in series between the freezing compartment evaporator and the condenser .
  • the direct cooling refrigerator includes a freezing chamber and a refrigerating chamber, and the freezing chamber evaporator is disposed in the freezing chamber, and the refrigerating and refrigerating evaporation tube and the defrosting refrigerating evaporation tube are disposed in the refrigerating chamber, and the refrigerating chamber is further provided with Defrost compensates for electric heating tubes.
  • the direct cooling refrigerator further includes a defrosting thermostat that controls the first and second switching devices to switch between the main refrigeration cycle system and the defrosting refrigeration cycle system, respectively.
  • the defrosting control system of the present invention can respectively control the first and second switching devices to realize switching between the main refrigeration cycle system and the defrosting refrigeration cycle system, so that the freezing chamber realizes automatic defrosting.
  • FIG. 1 is a schematic structural view of a direct cooling refrigerator according to an embodiment of the present invention.
  • Fig. 2 is a schematic view showing the flow of refrigerant in the direct cooling refrigerator of the present invention during cooling.
  • Fig. 3 is a schematic view showing the flow of refrigerant in the direct cooling refrigerator of the present invention during defrosting.
  • a direct cooling refrigerator includes a main refrigeration cycle system and a defrosting control system.
  • the main refrigeration cycle system is connected to the compressor 1, the condenser 2, the main refrigeration cycle capillary 3, the freezer compartment evaporator 4, and the refrigerating and refrigerating evaporator 5 in this order in the refrigerant flow direction.
  • the defrosting control system includes a defrosting refrigeration cycle system, a first switching device 6 and a second switching device 7.
  • the defrosting refrigeration cycle system includes, in addition to the compressor 1 and the freezer compartment evaporator 4 shared with the main refrigeration cycle system, a defrosting capillary tube 8 and a defrosting refrigerating evaporator tube 9.
  • the freezing compartment evaporator 4 is disposed in a freezer compartment (not shown), and the refrigerating and refrigerating evaporation duct 5 and the defrosted refrigerating evaporation duct 9 are disposed in a refrigerator refrigerating compartment (not shown) and arranged in parallel, and A defrosting compensation electric heating pipe 10 is also provided in the refrigerator refrigerating compartment for defrosting the refrigerator compartment.
  • the first switching device 6 is connected to the compressor 1 and the condenser 2, the freezer evaporator 4, and can be selectively connected between the condenser 2 and the freezer evaporator 4 to start the main refrigeration cycle system or the defrosting refrigeration cycle system
  • the second switch device 7 is connected to the compressor 1 and the refrigerating and refrigerating evaporator tube 5, the defrosted refrigerating evaporator tube 9, and can be connected between the refrigerating and refrigerating evaporator tube 5 and the defrosting refrigerating tube 9 to activate the main refrigeration cycle system or defrost Refrigeration cycle system.
  • the first and second switching devices are all three-way solenoid valves, which can be named as the first three-way solenoid valve and the second three-way solenoid valve.
  • the inlet end of the first three-way solenoid valve is connected to the refrigerant outlet end of the compressor 1, one outlet end of the first three-way solenoid valve is connected to the inlet end of the condenser 2, and the other outlet end is connected to the inlet of the evaporator 4 of the freezer compartment.
  • the end connection, the refrigerant bypass setting, can completely shut off the refrigerant flowing to the condenser 2 when performing defrosting;
  • the outlet end of the second three-way solenoid valve is connected with the refrigerant inlet end of the compressor 1
  • the second three One inlet end of the solenoid valve is connected to the outlet end of the refrigerating and refrigerating evaporator tube 5
  • the other inlet end is connected to the outlet end of the defrosting refrigerating tube 9, and when defrosting, the connection with the refrigerating and refrigerating tube 5 can be Interrupted.
  • the flow direction of the refrigerant during normal cooling of the refrigerator is as shown in FIG. 2.
  • the first three-way solenoid valve is in a state in which the outlet of the compressor 1 is connected to the condenser 2, and the bypass pipe from the compressor 1 to the evaporator 4 of the freezer compartment is disconnected.
  • the condenser 2 is exothermic, the freezer evaporator 4 absorbs heat, and the second three-way solenoid valve is in a state of connecting the refrigerating and refrigerating evaporator 5 to the refrigerant inlet end of the compressor 1, and from the defrosted refrigerating evaporator 9 to the compressor
  • the passage of 1 is disconnected, the refrigerating and refrigerating evaporation tube 5 also absorbs heat, and the refrigerator is normally cooled; the refrigerant circulation when the refrigerator needs to be defrosted is shown in FIG.
  • the first three-way solenoid valve disconnects the compressor 1 from the condenser 2
  • the compressor 1 is directly connected to the freezer evaporator 4, and the second three-way solenoid valve causes the defrosted refrigerating evaporator 9 to be electrically connected to the compressor 1, and the refrigeration refrigerating evaporator 5 and the compressor 1 are closed.
  • the freezer evaporator 4 releases heat, the refrigerant passes through the defrosting capillary 8, the defrosting refrigerating tube 9 absorbs heat, and the freezer compartment is in a defrosting state.
  • the main refrigeration cycle system is automatically started.
  • the first switching device 6 is connected to the compressor 1 and the condenser 2
  • the second switching device 7 is connected to the compressor 1 and the refrigerating and refrigerating evaporator tube 5;
  • the degree of frost is determined whether or not defrosting is performed; if so, the defrosting thermostat 11 is activated, and the defrosting thermostat 11 switches the first switching device 6 to the connection compressor 1 and the freezing chamber evaporator 4, and at the same time, the second switch
  • the device 7 is switched to connect the compressor 1 and the defrosted refrigerating evaporator tube 9, thereby starting the defrosting refrigeration cycle system.
  • the main refrigeration cycle time and the time of the defrosting refrigeration cycle are set, that is, after the main refrigeration cycle is performed for a period of time, the defrosting thermostat 11 is automatically activated, and the defrosting thermostat 11 controls the first and second The switching device is switched to the defrosting refrigeration cycle. After a period of time, the defrosting thermostat 11 is turned off, and the first and second switching devices are switched back to the refrigeration cycle, so that the automatic defrosting of the freezing compartment can be achieved.
  • the defrosting control system of the invention has the following advantages: by separately controlling the first and second switching devices, the switching between the main refrigeration cycle system and the defrosting refrigeration cycle system is realized, the automatic defrosting of the freezing compartment is realized, and the freezer compartment of the refrigerator
  • the defrosting time is short, and the refrigerating compartment can be used normally when the freezing compartment is defrosted (because the refrigerating compartment is still cooling normally during defrosting in the freezing compartment).

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Defrosting Systems (AREA)

Abstract

一种直冷冰箱的化霜控制系统,直冷冰箱具有主制冷循环系统,化霜控制系统包括化霜制冷循环系统、第一开关装置(6)及第二开关装置(7),第一开关装置(6)连接压缩机(1)、冷凝器(2)与冷冻室蒸发器(4),并可以在冷凝器(2)与冷冻室蒸发器(4)之间选择连接以启动主制冷循环系统或化霜制冷循环系统;第二开关装置(7)连接压缩机(1)、制冷冷藏蒸发管(5)及化霜冷藏蒸发管(9),并可以在制冷冷藏蒸发管(5)、化霜冷藏蒸发管(9)之间选择连接以启动主制冷循环系统或化霜制冷循环系统。化霜控制系统可以分别控制第一、第二开关装置(6,7),从而实现主制冷循环系统与化霜制冷循环系统之间的切换,使冷冻室实现自动除霜。

Description

用于直冷冰箱的化霜控制系统
本申请要求了申请日为2013年06月26日,申请号为201310258256.8,发明名称为“用于直冷冰箱的化霜控制系统”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
【技术领域】
本发明涉及冰箱技术领域,尤其涉及一种直冷冰箱的化霜系统。
【背景技术】
目前冰箱的制冷方式有直冷和风冷两种方式。两种制冷方式各有优缺点,直冷冰箱易结霜,食物不易风干串味;风冷冰箱不结霜但食物易风干串味。针对直冷冰箱的结霜问题,现有化霜技术一般采用自动补偿加热丝对冷藏室进行化霜,而冷冻室需要用户定期进行手动除霜。手动除霜费时费力,成为诸多用户的烦恼。
【发明内容】
本发明的目的在于提供一种用于直冷冰箱的化霜控制系统,可实现冷冻室自动化霜。
为达到上述目的,本发明采用如下技术方案:一种用于直冷冰箱的化霜控制系统,所述直冷冰箱具有主制冷循环系统,该主制冷循环系统包括压缩机、冷凝器、冷冻室蒸发器及制冷冷藏蒸发管,所述化霜控制系统包括化霜制冷循环系统、第一开关装置及第二开关装置,所述化霜循环系统包括与主制冷循环系统共用的压缩机及冷冻室蒸发器,还包括化霜冷藏蒸发管,所述第一开关装置连接压缩机、冷凝器与冷冻室蒸发器,并可以在冷凝器与冷冻室蒸发器之间选择连接以启动主制冷循环系统或化霜制冷循环系统;第二开关装置连接压缩机、制冷冷藏蒸发管及化霜冷藏蒸发管,并可以在制冷冷藏蒸发管、化霜冷藏蒸发管之间选择连接以启动主制冷循环系统或化霜制冷循环系统。
作为本发明的进一步改进,所述化霜冷藏蒸发管跨接在所述制冷冷藏蒸发管的两端。
作为本发明的进一步改进,所述第一开关装置为三通电磁阀,该三通电磁阀的进口端与所述压缩机的出口端连接,所述三通电磁阀的一个出口端与所述冷凝器的进口端连接,所述三通电磁阀的另一个出口端与所述冷冻室蒸发器的进口端连接。
作为本发明的进一步改进,所述第二开关装置为三通电磁阀,该三通电磁阀的出口端与所述压缩机的进口端连接,所述三通电磁阀的一个进口端与所述制冷冷藏蒸发管的出口端连接,所述三通电磁阀的另一个进口端与所述化霜冷藏蒸发管的出口端连接。
作为本发明的进一步改进,所述冷冻室蒸发器与所述化霜冷藏蒸发管之间串接有化霜毛细管,所述冷冻室蒸发器与所述冷凝器之间串接有主制冷循环毛细管。
作为本发明的进一步改进,所述直冷冰箱包括冷冻室和冷藏室,冷冻室蒸发器设置在冷冻室,所述制冷冷藏蒸发管、化霜冷藏蒸发管设置在冷藏室内,冷藏室内还设置有化霜补偿电加热管。
作为本发明的进一步改进,所述直冷冰箱还包括分别控制第一、第二开关装置在主制冷循环系统与化霜制冷循环系统之间实现切换的化霜温控器。
与现有技术相比,本发明化霜控制系统可分别控制第一、第二开关装置,从而实现主制冷循环系统与化霜制冷循环系统之间的切换,使冷冻室实现自动除霜。
【附图说明】
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的有关本发明的附图仅仅是本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1所示为本发明一实施方式直冷冰箱的结构示意图。
图2所示为本发明直冷冰箱在进行制冷时的制冷剂流向示意图。
图3所示为本发明直冷冰箱在进行除霜时的制冷剂流向示意图。
【具体实施方式】
以下将结合附图所示的各实施例对本发明进行详细描述。但这些实施例并不限制本发明,本领域的普通技术人员根据这些实施例所做出的结构、方法、或功能上的变换均包含在本发明的保护范围内。
如图1所示,本发明一实施方式直冷冰箱包括主制冷循环系统和化霜控制系统。主制冷循环系统按制冷剂流向依次连接有压缩机1、冷凝器2、主制冷循环毛细管3、冷冻室蒸发器4及制冷冷藏蒸发管5。所述化霜控制系统包括化霜制冷循环系统、第一开关装置6与第二开关装置7。所述化霜制冷循环系统除了包括与主制冷循环系统共用的压缩机1、冷冻室蒸发器4外,还包括化霜毛细管8及化霜冷藏蒸发管9。所述冷冻室蒸发器4设置在冰箱冷冻室(未图示)内,所述制冷冷藏蒸发管5、化霜冷藏蒸发管9设置在冰箱冷藏室(未图示)内并且并联设置,另外,冰箱冷藏室内还设有化霜补偿电加热管10,用以对冰箱冷藏室进行化霜。
第一开关装置6连接压缩机1与冷凝器2、冷冻室蒸发器4,并可以在冷凝器2与冷冻室蒸发器4之间选择连接以启动主制冷循环系统或化霜制冷循环系统,第二开关装置7连接压缩机1与制冷冷藏蒸发管5、化霜冷藏蒸发管9,并可以在制冷冷藏蒸发管5、化霜冷藏蒸发管9之间选择连接以启动主制冷循环系统或化霜制冷循环系统。在本实施方式中,第一、第二开关装置都为三通电磁阀,可对应命名为第一三通电磁阀与第二三通电磁阀。第一三通电磁阀的进口端与压缩机1的冷媒出口端连接,第一三通电磁阀的一个出口端与冷凝器2的进口端连接,另一个出口端与冷冻室蒸发器4的进口端连接,这种冷媒旁路设置,在进行化霜时,可将流向冷凝器2的冷媒彻底关断;第二三通电磁阀的出口端与压缩机1的冷媒进口端连接,第二三通电磁阀的一个进口端与制冷冷藏蒸发管5的出口端连接,另一个进口端与化霜冷藏蒸发管9的出口端连接,在进行化霜时,可将与制冷冷藏蒸发管5的连接中断。
冰箱正常制冷时的冷媒流向如图2所示,第一三通电磁阀处于将压缩机1出口与冷凝器2连通状态,而从压缩机1通向冷冻室蒸发器4的旁通管道断开,冷凝器2放热,冷冻室蒸发器4吸热,第二三通电磁阀处于将制冷冷藏蒸发管5与压缩机1的冷媒进口端连通状态,而从化霜冷藏蒸发管9通向压缩机1的通路断开,制冷冷藏蒸发管5也吸热,冰箱正常制冷;冰箱需要化霜时制冷剂循环如图3所示,第一三通电磁阀使压缩机1与冷凝器2通路断开,而使压缩机1直接与冷冻室蒸发器4导通,同时,第二三通电磁阀使化霜冷藏蒸发管9与压缩机1导通,而使制冷冷藏蒸发管5与压缩机1关断,冷冻室蒸发器4放热,制冷剂经过化霜毛细管8、化霜冷藏蒸发管9吸热,冰箱冷冻室处于除霜状态。
具体控制过程中,冰箱开机后,自动启动主制冷循环系统,此时第一开关装置6连接压缩机1与冷凝器2,第二开关装置7连接压缩机1与制冷冷藏蒸发管5;根据结霜程度,判断是否进行化霜;如是,则启动化霜温控器11,化霜温控器11将第一开关装置6切换至连接压缩机1与冷冻室蒸发器4,同时将第二开关装置7切换至连接压缩机1与化霜冷藏蒸发管9,借此启动化霜制冷循环系统。一般来说,会设定主制冷循环时间与化霜制冷循环的时间,即,主制冷循环进行一段时间后,自动启动化霜温控器11,化霜温控器11控制第一、第二开关装置切换至化霜制冷循环阶段,过一段时间,化霜温控器11关闭,第一、第二开关装置重新切换至制冷循环阶段,如此往复,可实现冷冻室的自动除霜。
本发明化霜控制系统具有如下优点:通过分别控制第一、第二开关装置,从而实现主制冷循环系统与化霜制冷循环系统之间的切换,使冷冻室实现自动除霜,并且冰箱冷冻室化霜时间短,冷冻室化霜时冷藏室能正常使用(因为冷藏室在冷冻室化霜时还在正常制冷)。
应当理解,虽然本说明书按照实施方式加以描述,但并非每个实施方式仅包含一个独立的技术方案,说明书的这种叙述方式仅仅是为清楚起见,本领域技术人员应当将说明书作为一个整体,各实施方式中的技术方案也可以经适当组合,形成本领域技术人员可以理解的其他实施方式。
上文所列出的一系列的详细说明仅仅是针对本发明的可行性实施方式的具体说明,它们并非用以限制本发明的保护范围,凡未脱离本发明技艺精神所作的等效实施方式或变更均应包含在本发明的保护范围之内。

Claims (7)

  1. 一种用于直冷冰箱的化霜控制系统,所述直冷冰箱具有主制冷循环系统,该主制冷循环系统包括压缩机、冷凝器、冷冻室蒸发器及制冷冷藏蒸发管,其特征在于,所述化霜控制系统包括化霜制冷循环系统、第一开关装置及第二开关装置,所述化霜循环系统包括与主制冷循环系统共用的压缩机及冷冻室蒸发器,还包括化霜冷藏蒸发管,所述第一开关装置连接压缩机、冷凝器与冷冻室蒸发器,并可以在冷凝器与冷冻室蒸发器之间选择连接以启动主制冷循环系统或化霜制冷循环系统;第二开关装置连接压缩机、制冷冷藏蒸发管及化霜冷藏蒸发管,并可以在制冷冷藏蒸发管、化霜冷藏蒸发管之间选择连接以启动主制冷循环系统或化霜制冷循环系统。
  2. 根据权利要求1所述的用于直冷冰箱的化霜控制系统,其特征在于,所述化霜冷藏蒸发管与所述制冷冷藏蒸发管并联设置。
  3. 根据权利要求2所述的用于直冷冰箱的化霜控制系统,其特征在于,所述第一开关装置为三通电磁阀,该三通电磁阀的进口端与所述压缩机的出口端连接,所述三通电磁阀的一个出口端与所述冷凝器的进口端连接,所述三通电磁阀的另一个出口端与所述冷冻室蒸发器的进口端连接。
  4. 根据权利要求2所述的用于直冷冰箱的化霜控制系统,其特征在于,所述第二开关装置为三通电磁阀,该三通电磁阀的出口端与所述压缩机的进口端连接,所述三通电磁阀的一个进口端与所述制冷冷藏蒸发管的出口端连接,所述三通电磁阀的另一个进口端与所述化霜冷藏蒸发管的出口端连接。
  5. 根据权利要求1至4中任一项所述的用于直冷冰箱的化霜控制系统,其特征在于,所述冷冻室蒸发器与所述化霜冷藏蒸发管之间串接有化霜毛细管,所述冷冻室蒸发器与所述冷凝器之间串接有主制冷循环毛细管。
  6. 根据权利要求5所述的用于直冷冰箱的化霜控制系统,其特征在于,所述直冷冰箱包括冷冻室和冷藏室,冷冻室蒸发器设置在冷冻室,所述制冷冷藏蒸发管、化霜冷藏蒸发管设置在冷藏室内,冷藏室内还设置有化霜补偿电加热管。
  7. 根据权利要求6所述的用于直冷冰箱的化霜控制系统,其特征在于,所述直冷冰箱还包括分别控制第一、第二开关装置在主制冷循环系统与化霜制冷循环系统之间实现切换的化霜温控器。
PCT/CN2013/086321 2013-06-26 2013-10-31 用于直冷冰箱的化霜控制系统 WO2014205972A1 (zh)

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CN111207534A (zh) * 2020-01-09 2020-05-29 珠海格力电器股份有限公司 制冷系统、制冷设备以及制冷系统的控制方法
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