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    • 2. 发明申请
    • COOKING APPARATUS WITH STEAM GENERATING DEVICE
    • 具有蒸汽发生装置的烹饪装置
    • US20120018424A1
    • 2012-01-26
    • US13060104
    • 2009-08-20
    • Kazuhiko InoueEiji SuzukiShinichi KagaYukimasa TakedaAkihiko Hirano
    • Kazuhiko InoueEiji SuzukiShinichi KagaYukimasa TakedaAkihiko Hirano
    • H05B6/12
    • F24C15/327F22B1/281F22B1/284F24C7/082H05B6/108
    • ObjectProvide a cooking device with a steam generating device having a reduced size and capable of producing steam in a short time.Means of SolutionA cooking apparatus comprising a cooking chamber for accommodating foodstuff in its interior for cooking, a heater for heating interior of said cooking chamber and an electric fan for generating convectional flow of air heated by said heater in said cooking chamber, characterized in that, an induction heating type steam generating device for supply steam into said cooking chamber is disposed on the side wall of said cooking chamber, wherein said steam generating device comprises a steam generating vessel which store prescribed amount of water, an induction heater body disposed in said steam generating vessel for heating water and an induction heating coil wound around outer peripheral of said steam generating vessel for heating said induction heater.
    • 对象提供具有减小尺寸并且能够在短时间内产生蒸汽的蒸汽发生装置的烹饪装置。 解决方案一种烹饪设备,包括用于在其内部容纳食物的烹饪室,用于烹饪,用于加热烹饪室内部的加热器和用于在所述烹饪室中产生由所述加热器加热的空气的对流流的电风扇,其特征在于, 在所述烹饪室的侧壁上设置用于向所述烹饪室供给蒸汽的感应加热型蒸汽发生装置,其中所述蒸汽发生装置包括存储规定量的水的蒸汽发生容器,设置在所述烹饪室中的感应加热器主体 用于加热水的蒸汽发生容器和缠绕在所述蒸汽发生容器外周的感应加热线圈,用于加热所述感应加热器。
    • 3. 发明申请
    • COOKING APPARATUS
    • 烹饪设备
    • US20120017769A1
    • 2012-01-26
    • US13060101
    • 2009-08-20
    • Kazuhiko InoueEiji SuzukiShinichi KagaYukimasa TakedaAkihiko Hirano
    • Kazuhiko InoueEiji SuzukiShinichi KagaYukimasa TakedaAkihiko Hirano
    • A47J27/62
    • F24C7/08F24C15/327
    • ObjectA cooking apparatus, wherein, independent of the quantity and the temperature of the foodstuff contained in a cooking chamber of the cooking apparatus, the food stuff can be cooked in a consistent time period by initial-heating processing and main-heating processing.Means of SolutionA cooking device is provided with a controller for performing initial-heating processing before a transition to main-heating processing. The initial-heating processing is processing which, when the temperature in a cooking chamber is dropped by a foodstuff placed in the cooking chamber, controls supply of electricity to a heater provided in the cooking chamber, and the control is performed such that the temperature in the cooking chamber rises along temperature rising line which defines a temperature rise rate at which the temperature in the cooking chamber reaches a predetermined preset cooking temperature from an initial-heating start temperature, which is set on the basis of a previously determined time period for initial heating, after the time period for initial-heating has elapsed.Selected FigureFIG. 7
    • 对象一种烹饪设备,其中,独立于包含在烹饪设备的烹饪室中的食物的数量和温度,可以通过初始加热处理和主加热处理在一致的时间段内烹饪食物。 解决方案烹饪装置设置有用于在转换到主加热处理之前执行初始加热处理的控制器。 初始加热处理是当烹饪室中的温度被放置在烹饪室中的食物掉下来时控制向设置在烹饪室中的加热器的供电的处理,并且进行控制,使得温度 烹饪室沿着温度上升线上升,其定义了从初始加热开始温度开始的烹饪室内的温度达到预定的烹调温度的温度上升率,该初始加热开始温度是根据预先确定的初始时间段设定的 在初始加热的时间段过去之后进行加热。 所选图 7
    • 4. 发明申请
    • Cooling Storage Cabinet and Method of Operating the Same
    • 冷却储藏柜及其操作方法
    • US20090105884A1
    • 2009-04-23
    • US12227160
    • 2007-04-10
    • Shinichi KagaAkihiko Hirano
    • Shinichi KagaAkihiko Hirano
    • G05B15/00F25D11/00
    • F25B49/025F25B2600/021F25D17/067F25D2317/0665F25D2400/14Y02B30/741
    • A cooling device is provided with an inverter compressor. Set speeds of the inverter compressor can be switched to six stages from a first speed to a sixth speed. The relationship between each of the set speeds of the rotational speed is set so that the stages adjacent to each other have gradually larger differences in rotational speed as the rotational speed becomes higher. With this, independently from the level of the rotational speed, a degree of increase in cooling performance between each of the stages can be equalized. In a case of performing a control to increase or decrease the rotational speed of the inverter compressor stage by stage depending whether an actual temperature drop rate is larger or smaller than a target temperature drop rate, the change amounts in cooling performance that can be substantially equalized, and too high or too low cooling performance does not result, i.e. fluctuation in cooling performance can be minimized. Thus, control to drop the internal temperature in accordance with a predetermined cooling characteristic can be stably performed.
    • 冷却装置设置有变频压缩机。 变频压缩机的设定速度可以从第一速度到第六速度切换到六个阶段。 旋转速度的设定速度的关系设定为使得相邻的台阶随着转速变高而具有逐渐变大的转速差。 由此,独立于转速的水平,可以使各级之间的冷却性能的增加程度相等。 在进行根据实际的降温率是否大于或者小于目标温度降低率的情况下进行变频压缩机的转速的增减的控制的情况下,能够大致相等的冷却性能的变化量 ,并且不会产生太高或太低的冷却性能,即可以使冷却性能的波动最小化。 因此,可以稳定地进行根据预定的冷却特性降低内部温度的控制。
    • 5. 发明申请
    • Refrigerating storage cabinet
    • 制冷储藏柜
    • US20070144188A1
    • 2007-06-28
    • US10575716
    • 2004-10-20
    • Shinichi KagaAkihiko Hirano
    • Shinichi KagaAkihiko Hirano
    • G05D23/32F25B49/00
    • F25D19/02F25B2600/021F25B2600/025F25D29/00F25D2317/0655F25D2317/0665F25D2400/14F25D2500/04F25D2700/12Y02B30/741
    • A storing section 49 stores data of a pull down cooling characteristic indicative of a time-varying mode of reduction in a target temperature drop. For example, when this is a linear function line xp, a target internal temperature drop degree takes a constant value Ap, irrespective of an operating time. An actual temperature drop degree Sp is computed on the basis of the detected internal temperature. The computed value Sp is compared with a target value Ap read from the storing section 49. When the computed value Sp is less than the target value Ap, a rotational speed of an inverter compressor 32 is increased via an inverter circuit 55. When the computed value Sp is larger than the target value Ap, the rotational speed of the compressor 32 is decreased. The speed increases and decreases are repeated so that pull down cooling is performed along the linear line xp.
    • 存储部分49存储指示目标温度降低的时变减小模式的下拉冷却特性的数据。 例如,当这是线性函数线xp时,目标内部温度下降度取常数值Ap,而与操作时间无关。 根据检测到的内部温度计算出实际的温度下降度Sp。 将计算值Sp与从存储部49读取的目标值Ap进行比较。当计算值Sp小于目标值Ap时,逆变器压缩机32的转速经由逆变器电路55增加。当计算出的值 值Sp大于目标值Ap时,压缩机32的转速降低。 速度增加和减少重复,以便沿线性线xp执行拉下冷却。
    • 7. 发明申请
    • Cooling Device
    • 冷却装置
    • US20110138849A1
    • 2011-06-16
    • US13058820
    • 2009-07-28
    • Akihiko HiranoShinichi KagaKazuyoshi Seki
    • Akihiko HiranoShinichi KagaKazuyoshi Seki
    • F25B39/00
    • F25B25/005F25B23/006F25B2309/06F25D11/025F28D15/0266F28F1/36
    • Provided is an inexpensive and compact cooling device which does not increase the circulation resistance of a refrigerant, filling quantity of a refrigerant in a natural circulation circuit wherein natural convection of the refrigerant is caused by using a thermo-siphon, and cross-sectional areas of individual passages while maintaining a desired cooling efficiency in the circuit. A secondary cooling device (40) includes a secondary heat exchange section (42) of a cascade heat exchanger (HE) which liquifies a gaseous-phase secondary refrigerant, and an evaporator (EP) which vaporizes a liquid-phase secondary refrigerant. The secondary cooling device (40) is provided with a plurality of natural circulation circuits (48) equipped with liquid pipings (44) and gas pipings (46) which connect the secondary heat exchange section (42) and the evaporator (EP). The evaporator (EP) has evaporation passages (52) of the natural circulation circuits (48) provided in layers vertically apart from one another. The evaporation passage (52) is formed by a spiral fin tube type heat exchanger whose fins are spirally wound on the outer circumference of an evaporation pipe through which the secondary refrigerant circulates.
    • 提供了一种廉价且紧凑的冷却装置,其不增加制冷剂的循环阻力,在自然循环回路中的制冷剂的填充量,其中制冷剂的自然对流由使用热虹吸引起,并且横截面积 同时保持电路中所需的冷却效率。 二级冷却装置(40)包括使气相二级制冷剂液化的级联热交换器(HE)的二次热交换部(42)和使液相二级制冷剂蒸发的蒸发器(EP)。 二次冷却装置(40)具备配置有连接二次热交换部(42)和蒸发器(EP)的液体管道(44)和气体管道(46)的多个自然循环回路(48)。 蒸发器(EP)具有彼此垂直分开设置的自然循环回路(48)的蒸发通道(52)。 蒸发通道(52)由螺旋翅片管型热交换器形成,其翅片螺旋缠绕在二次制冷剂循环的蒸发管的外周。