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    一种锂离子电池隔膜及锂离子电池

    KR221857474A
    发明人
    高璐璐, 徐岚
    受让人
    苏州大学
    申请人
    KAWASAKI JUKOGYO KABUSHIKI KAISHA
    申请号
    145322
    申请日
    2012-01-30
    公开(公告)号
    KR221857474A
    公开(公告)日
    2020-06-11
    IPC分类号
    A01K63/04C02F1/00C02F1/66
    CPC分类号
    -
    优先权号
    444187
    优先权日
    2001-04-09
    摘要

    NOVELTY - The method involves arranging a cellulose blank containing less than 45wt.% of water in a forming mold. The cellulose blank is heated to a forming temperature in the range of about 100-200 degrees Celsius. The cellulose blank is pressed by the forming mold with a forming pressure acting on the cellulose blank across the forming surface. The forming pressure is in the range of about 1-100 MPa and selected as an isostatic pressure. 90 wt.% of wood pulp is contained in the cellulose blank, where the forming mold comprises a forming mold part and a pressure mold part.

    USE - Method for manufacturing a cellulose product e.g. package, insert for packages, box, bowl, plate, cup, tray, or cover for packaging sensitive goods such as mechanical high precision item, electronic equipment and household and hardware items. Can also be used for producing poly ethylene terephthalate bottles or containers for packaging liquids or beverages such as carbonated liquids.

    ADVANTAGE - The method enables reducing the cycle time for industrial production of cellulose products from compressed material, cooling compressed material by pumping cooled oil into internal channels arranged in the forming mold part or into the pressure chamber, and improving the efficiency for producing poly ethylene terephthalate bottles or containers for packaging liquids or beverages such as carbonated liquids.

    DETAILED DESCRIPTION - INDEPENDENT CLAIMS are also included for the following:

    (1) a pressure molding apparatus for manufacturing a cellulose product

    (2) a cellulose product.

    DESCRIPTION OF DRAWING(S) - The drawing shows a schematic view of a configuration of a compressing device utilizing a multi-use membrane in compressed stage.

    Compressed cellulose fibers (1b)

    Pre-heated lower positive forming mold (2a)

    Massive flexible membrane (4)

    Pressurized fluid (5)

    Internal channels (7)

    权利要求
    1. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable, the cable having a near end and a far end, for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; for each of said plurality of said sub-channels, measuring frequency characteristics of the cable using test tones, said measuring for each sub-channel comprising: calculating a time window within which said test tones are to be transmitted to the cable under test, transmitting, with said signal transmitter at the near end of the cable, individual test tones within the time window, one tone at a time, at up to a maximum power allowable for the cable under test, receiving, with said signal receiver at the near end of the cable, said individual test tones reflected from the far end of the cable, adjusting an AGC setting of said signal receiver to compensate for frequency-dependency of attenuation in said reflected test tones, measuring attenuation and frequency characteristics of the cable based upon the transmitted test tones and the reflected test tones, and extrapolating the frequency characteristics of the cable for DMT tones that did not fit into the time window or for which the reflected test tones were too weak; determining theoretical and practical data rates for each of said plurality of said sub-channels based on the measured frequency characteristics and determined total noise levels for that particular sub-channel, and on selected modem parameters; and determining theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard and said theoretical and practical data rates for said sub-channels within said selected DSL bandwidth.
    2. The method of claim 1 , wherein the test tones and total noise levels are converted into digital form at the receiver for processing.
    3. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; measuring frequency characteristics of the cable using test signals with discrete tones; determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level for that particular sub-channel, and on selected modem parameters; and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard, wherein the determination of the plurality of total noise levels comprises: measuring an amplitude level or energy level of the plurality of total noise levels for sub-channels of an upstream channel and a downstream channel respectively at the test device; adjusting an AGC setting of the receiver when required.
    4. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; measuring frequency characteristics of the cable using test signals with discrete tones; determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level for that particular sub-channel, and on selected modem parameters; and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard, wherein determining the plurality of total noise levels comprises: measuring an amplitude level or energy level of the plurality of total noise levels for all sub-channels of the DSL bandwidth; adjusting an AGC setting of the receiver when required.
    5. The method of claim 3 , wherein a time-domain or frequency-domain analysis method is used for measuring each total noise level.
    6. The method of claim 4 , wherein a time-domain or frequency-domain analysis method is used for measuring each total noise level.
    7. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; measuring frequency characteristics of the cable using test signals with discrete tones; determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level for that particular sub-channel, and on selected modem parameters; and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard, wherein measuring the frequency characteristics of the cable comprises: measuring a length of the cable under test, using a TDR method; calculating a time window for the cable under test; calculating a lowest frequency fit for the time window; sending individual test tones at the lowest frequency fit into the window, one tone at a time, at up to a maximum power allowable for the cable under test, and receiving reflected signals; adjusting an AGC setting of the receiver for each sub-channel accordingly; measuring attenuation characteristics of the cable for each sub-channel; calculating the frequency characteristics of the cable for each sub-channel; and extrapolating the frequency characteristics of the cable for DMT tones that did not fit into the time window or for which the reflected signals were too weak.
    8. The method of claim 7 , wherein a time-domain or frequency-domain analysis method is used for detecting and receiving the test signals.
    9. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; measuring frequency characteristics of the cable using test signals with discrete tones; determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level for that particular sub-channel, and on selected modem parameters; and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard, wherein determining the theoretical and practical data rates for each sub-channel based on the measured frequency characteristics, determined total noise level, and selected modem parameters comprises: converting a measured signal level at a receiver input of the test device to a signal level of a DSL modem receiver for each sub-channel; calculating an optimum signal-to-noise ratio (SNR o ) of each sub-channel; calculating a practical signal-to-noise ratio (SNR p ) of each sub-channel according to an ADC resolution selected by a user for a target DSL modem; determining the theoretical data rates from the calculated SNR o for each sub-channel for the selected modem parameters; and determining the practical data rates from the calculated SNR p for each sub-channel for the selected modem parameters.
    10. The method of claim 1 , wherein determining the theoretical and practical data rates for the selected DSL bandwidth based on the selected DSL DMT standard, comprises: estimating the theoretical and practical data rates of an upstream channel at U-C according to the selected DSL DMT standard; estimating the theoretical and practical data rates of a downstream channel at U-R according to the selected DSL DMT standard; and estimating the theoretical and practical data rates of the selected DSL bandwidth according to the selected DSL DMT standard.
    11. The method of claim 1 , wherein determining the theoretical and practical data rates for the selected DSL bandwidth based on the selected DSL DMT standard, comprises: estimating the theoretical and practical data rates of an upstream channel and a downstream channel at U-C or U-R or at both sides according to the selected DSL DMT standard.
    12. A method for performing a DMT test with a single test device comprising a signal transmitter and a signal receiver, without employing DSL modems, on a telephone cable for DSL application with a frequency range comprising multiple DMT sub-channels, comprising: measuring cable noise and interference to determine a plurality of total noise levels, each noise level for a respective one of a corresponding plurality of said sub-channels; measuring frequency characteristics of the cable using test signals with discrete tones; determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level for that particular sub-channel, and on selected modem parameters; and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard, wherein determining theoretical and practical data rates for each sub-channel based on the measured frequency characteristics and determined total noise level, and on selected modem parameters, and determining the theoretical and practical data rates for a selected DSL bandwidth based on a selected DSL DMT standard further includes: analyzing a failure of at least one of a DSL service and a DSL modem test by showing, in text or graphic format, at least one of converted measured signal levels, measured cable noise levels, and bits allocated, for each sub-channel of DSL bandwidth or for times sub-channels used by a pair of DSL modems for synchronization purposes.
    说明书
    [0001]技术领域
    [0002]本实用新型属于纺织布料加工技术领域,具体是指纺织布料加工用恒温水浴锅。
    [0003]背景技术
    [0004]在纺织布料的软化过程中,需要使用到恒温水浴锅,通过高温水浴加热可使布料软化。布料染色也需要加热减少染料上色时间,增加上色率同时增加色牢度。
    [0005]现有技术中公告号为CN213681282U的中国专利公开了一种纯棉纺织布料加工用恒温水浴锅,通过设置卷动式机构,在高温加热过程中,使布料始终处于卷动状态,从而提高布料与热水的接触面积,从而大大加快了加热进程,使得布料可快速软化,并且通过往复式收卷布料,可使布料受热比较均匀,该装置可适用于长卷布料的软化,解决了由于水浴锅面积有限不适合长卷布料软化的短板;其次,通过设置转动式的清洁刷,可在高温加热过程中,即对水浴槽的侧壁进行清刷,清除掉水垢,从而保证了水浴锅的清洁。
    [0006]但是上述现有技术的卷收结构固定在内部,在往复卷收过程中不方便观察内部情况,对水槽内壁针对性也较差。
    [0007]实用新型内容
    [0008]针对上述情况,为克服现有技术的缺陷,本实用新型提供了纺织布料加工用恒温水浴锅,有效解决了现有技术卷收结构固定在内部,在往复卷收过程中不方便观察内部情况,对水槽内壁针对性也较差的问题,是一种新型纺织布料加工用恒温水浴锅。
    [0009]为了实现上述功能,本实用新型采取的技术方案如下:纺织布料加工用恒温水浴锅,包括锅体、温控组件、布料卷收组件和清洁组件,所述温控组件设于锅体的底部,所述布料卷收组件固定设于锅体的顶部侧壁上,所述清洁组件滑动设于锅体的侧壁上。
    [0010]为了进行温度控制,所述温控组件包括加热底座、温度控制器、温度计和温度传感器,所述加热底座固定设于锅体的底部,所述温度控制器设于锅体的侧壁上,所述温度计设于锅体外壁上,所述温度传感器设于锅体的内壁上。
    [0011]为了让布料更加均匀的加热,同时均匀加热,还能观察布料的软化情况,所述布料卷收组件包括固定台、转动电机、丝杆、带螺母滑块、伺服电机、缠绕辊和预留槽,所述固定台固定设于锅体的侧壁上,所述转动电机设于固定台的侧壁上,所述丝杆一端转动设于固定台上另一端固定设于转动电机的输出轴上,所述带螺母滑块螺纹连接设于丝杆上,所述带螺母滑块和锅体之间滑动连接,所述伺服电机固定在带螺母滑块上,所述缠绕辊设于伺服电机的输出轴上,所述缠绕辊上设有预留槽。
    [0012]为了有针对性的对锅体的内壁进行清洁,所述清洁组件包括安装架、清洁刷、吸引连接板和把手,所述安装架滑动设于锅体上,所述清洁刷设于锅体和安装架之间,所述吸引连接板隔着锅体和清洁刷与安装架磁吸连接,所述吸引连接板上设有把手。
    [0013]进一步地,所述锅体两侧都设有固定台、转动电机、丝杆、带螺母滑块和伺服电机,所述缠绕辊连接两组伺服电机。
    [0014]进一步地,所述安装架和吸引连接板都采用磁吸材质设置。
    [0015]为了扩大布料的运动范围,所述锅体采用圆角矩形设置。
    [0016]采用上述结构本实用新型取得的有益效果如下:本方案通过设置温控组件对温度进行监控调整,通过设置布料卷收组件对布料进行全面的加热并通过布料的运动搅拌锅体内的液体,均匀加热,且可以观察布料情况,通过设置清洁组件对锅体内壁进行针对性清洁,有效解决了现有技术卷收结构固定在内部,在往复卷收过程中不方便观察内部情况,对水槽内壁针对性也较差的问题,是一种新型纺织布料加工用恒温水浴锅。
    [0017]附图说明
    [0018]图1为本实用新型提出的纺织布料加工用恒温水浴锅的整体结构示意图;
    [0019]图2为本实用新型提出的纺织布料加工用恒温水浴锅另一角度的结构示意图。
    [0020]其中,1、锅体,2、温控组件,3、布料卷收组件,4、清洁组件,5、加热底座,6、温度控制器,7、温度计,8、温度传感器,9、固定台,10、转动电机,11、丝杆,12、带螺母滑块,13、伺服电机,14、缠绕辊,15、预留槽,16、安装架,17、清洁刷,18、吸引连接板,19、把手。
    [0021]附图用来提供对本实用新型的进一步理解,并且构成说明书的一部分,与本实用新型的实施例一起用于解释本实用新型,并不构成对本实用新型的限制。
    [0022]具体实施方式
    [0023]下面将结合本实用新型实施例中的附图,对本实用新型实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本实用新型一部分实施例,而不是全部的实施例;基于本实用新型中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本实用新型保护的范围。
    [0024]如图1-2所示,本实用新型提出的纺织布料加工用恒温水浴锅,包括锅体1、温控组件2、布料卷收组件3和清洁组件4,温控组件2设于锅体1的底部,布料卷收组件3固定设于锅体1的顶部侧壁上,清洁组件4滑动设于锅体1的侧壁上,锅体1采用圆角矩形设置。
    [0025]温控组件2包括加热底座5、温度控制器6、温度计7和温度传感器8,加热底座5固定设于锅体1的底部,温度控制器6设于锅体1的侧壁上,温度计7设于锅体1外壁上,温度传感器8设于锅体1的内壁上。
    [0026]布料卷收组件3包括固定台9、转动电机10、丝杆11、带螺母滑块12、伺服电机13、缠绕辊14和预留槽15,固定台9固定设于锅体1的侧壁上,转动电机10设于固定台9的侧壁上,丝杆11一端转动设于固定台9上另一端固定设于转动电机10的输出轴上,带螺母滑块12螺纹连接设于丝杆11上,带螺母滑块12和锅体1之间滑动连接,伺服电机13固定在带螺母滑块12上,缠绕辊14设于伺服电机13的输出轴上,缠绕辊14上设有预留槽15,安装架16和吸引连接板18都采用磁吸材质设置。
    [0027]清洁组件4包括安装架16、清洁刷17、吸引连接板18和把手19,安装架16滑动设于锅体1上,清洁刷17设于锅体1和安装架16之间,吸引连接板18隔着锅体1和清洁刷17与安装架16磁吸连接,吸引连接板18上设有把手19,锅体1两侧都设有固定台9、转动电机10、丝杆11、带螺母滑块12和伺服电机13,缠绕辊14连接两组伺服电机13。
    [0028]具体使用时,用户将本装置置于需要进行使用的位置,将布料的一端固定在缠绕辊14上,固定时,将布料塞入预留槽15,伺服电机13运行卷收一端距离即可,在锅体1内加入染色的液体或者加热的液体,布料剩余部分浸入锅体1内,加热底座5对液体进行加热,温度控制器6、温度传感器8和加热底座5共同作用对锅体1内液体进行控温,用户可以观察温度计7查看温度,转动电机10运行可以实现布料的移动配合伺服电机13运行可以实现布料在锅体1内堆叠,伺服电机13反向运行可以对布料进行回收,循环操作可以均匀对布料进行软化或染色,握住把手19可以移动清洁刷17的清洁位置,以上便是整个纺织布料加工用恒温水浴锅的使用流程。
    [0029]需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。而且,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。
    [0030]尽管已经示出和描述了本实用新型的实施例,对于本领域的普通技术人员而言,可以理解在不脱离本实用新型的原理和精神的情况下可以对这些实施例进行多种变化、修改、替换和变型,本实用新型的范围由所附权利要求及其等同物限定。
    [0031]以上对本实用新型及其实施方式进行了描述,这种描述没有限制性,附图中所示的也只是本实用新型的实施方式之一,实际的结构并不局限于此。总而言之如果本领域的普通技术人员受其启示,在不脱离本实用新型创造宗旨的情况下,不经创造性的设计出与该技术方案相似的结构方式及实施例,均应属于本实用新型的保护范围。
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