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    专

    直流接触器自动装配装置

    1652022561785B1
    发明人
    袁利祥
    受让人
    袁利祥
    申请人
    SIEMENS AG
    申请号
    02138
    申请日
    1995-02-26
    公开(公告)号
    1652022561785B1
    公开(公告)日
    2006-12-18
    IPC分类号
    A41D001/06A41D000/00
    CPC分类号
    -
    优先权号
    079494
    优先权日
    1996-12-30
    摘要

    NOVELTY - Thermal cracking organic macromolecule mixture to recycle differentiated substrates involves: feeding reactant in mobile reaction stand, opening an upper lid right above the reaction furnace to allow the mobile reaction stand moving down into the reaction furnace; soaking the reactants in molten inorganic salt and carrying out thermal cracking process for 1-5 minutes; and discharging forcibly waste gas, and moving the mobile reaction stand upwardly and closing upper lid on the port right above the reaction furnace to complete the thermal cracking reaction process.

    USE - For thermal cracking of organic macromolecule mixture to recycle differentiated substrates, and the substrate is glass fiber, metal fiber, carbon fiber, metal, glass or ceramic (claimed).

    ADVANTAGE - The method and an apparatus enables for disposing, recycling and reusing organic macromolecule mixture and isolation of substrates in the organic macromolecule mixed material from the organic macromolecule, thus creates the maximum reusing value of resource recycle and achieves the object of energy-saving and carbon reducing. By using the apparatus, burning phenomenon can be avoided to achieve the operation safety of operators. The method enables to compress and purify organic gas into usable fuel or chemical raw materials, thus lowers greatly the treating cost. The method involves thermal cracking organic macromolecule by using molten inorganic salt, which can separate easily substrates mixed in macromolecular materials, achieve readily the object of differentiation, obtain large area (volume) of substrates without damaging the characteristics of original substrates, increase re-usability, and, accomplish simultaneously objects of energy-saving and carbon-reducing as well as pollution control.

    DETAILED DESCRIPTION - Thermal cracking organic macromolecule mixture to recycle differentiated substrates involves:

    (1) feeding reactant in a mobile reaction stand, driving a drive for reaction stand delivery to connect a reaction stand connector on it with the mobile reaction stand, opening an upper lid right above the reaction furnace to allow the mobile reaction stand moving down into the reaction furnace;

    (2) introducing water, heating and expanding to produce steam that pushes oxygen gas carried in by the mobile reaction stand out of the reaction furnace, and leaves the reaction furnace a positive pressure effect, at this moment, mobile sealing gate positioned at a suitable place on the mobile reaction stand closing temporarily the upper end of the reaction furnace to set up oxygen barrier effect and prevent external air from entering the reaction furnace; where, when reactants in the mobile reaction stand are soaked completely in the molten inorganic salt, thermal cracking reaction process is started to carry out, where the thermal cracking reaction is carried out for 1-5 minutes;

    (3) in the course of thermal cracking reaction, discharging forcibly waste gas generated through reaction furnace waste gas exit into a reaction furnace mobile water seal valve, and after thermal cracking reaction being ended completely, moving the mobile reaction stand upwardly such that steam generated from moisture is used to remove waste gas out of the reaction furnace and can be used to cool reactant; finally, closing again the upper lid on the port right above the reaction furnace to complete the thermal cracking reaction process.

    An INDEPENDENT CLAIM is included for an apparatus for thermal cracking organic macromolecule mixture to recycle differentiated substrates.

    权利要求
    1.一种完全由弹性体制成的容器或袋,包括: 主体,所述主体包括: 前壁;和 后壁,所述后壁沿着外围边缘连接到所述前壁;和 封闭系统,所述封闭系统包括: 前侧,所述前侧具有前密封轮廓,所述前密封轮廓包括从加厚部分延伸的阳封闭元件;和 后侧,所述后侧具有后密封轮廓并限定空腔,所述后密封轮廓包括阴封闭元件,其中,中心线延伸穿过所述空腔, 其中,所述后侧包括内部部分和外部部分,所述内部部分包括整个所述空腔,并且 其中,在平行于所述中心线的方向上测量的所述加厚区域的厚度小于在平行于所述中心线的方向上测量的处于闭合配置的所述封闭系统的总厚度的35%。
    2.根据权利要求1所述的容器或袋,其中,所述加厚区域的厚度小于所述封闭系统总厚度的30%。
    3.根据权利要求1所述的容器或袋,其中,所述加厚区域的厚度小于所述封闭系统总厚度的25%。
    4.根据权利要求1所述的容器或袋,其中,所述加厚区域的厚度小于所述封闭系统总厚度的20%。
    5.根据权利要求1所述的容器或袋,其中,所述封闭系统还包括沿向外方向延伸的左凸片和右凸片。
    6.根据权利要求1所述的容器或袋,其中,所述阳封闭元件包括杆和从所述杆延伸的头部, 其中,所述头部限定的高度大于所述杆的高度, 其中,所述阴封闭元件包括限定进入所述空腔的开口的臂,并且所述开口限定一高度,并且 其中,所述杆的高度为所述开口的高度的至少100%。
    7.根据权利要求6所述的容器或袋,其中,所述杆的高度为所述开口高度的至少125%。
    8.根据权利要求6所述的容器或袋,其中,所述杆的高度为所述开口高度的至少150%。
    9.一种完全由弹性体制成的容器或袋,包括: 主体,所述主体包括: 前壁;和 后壁,所述后壁沿着外围边缘连接到所述前壁;和 封闭系统,所述封闭系统包括: 前侧,所述前侧具有前密封轮廓,所述前密封轮廓包括阳封闭元件;和 后侧,所述后侧具有后密封轮廓并限定空腔,所述后密封轮廓包括阴封闭元件,其中,中心线延伸穿过所述空腔, 其中,所述阳封闭元件包括杆和从所述杆延伸的头部,并且 其中,在垂直于所述中心线的方向上测量的所述杆的高度是在垂直于所述中心线的方向上测量的所述阴封闭元件的高度的约10%至约50%之间。
    10.根据权利要求9所述的容器或袋,其中,中心线延伸穿过所述空腔, 其中,所述后侧包括内部部分和外部部分,所述内部部分包括整个所述空腔,并且 其中,在平行于所述中心线的方向上测量的所述外部部分的厚度是在平行于所述中心线的方向上测量的阴封闭元件的总厚度的至少20%。
    11.根据权利要求10所述的容器或袋,其中,所述外部部分的厚度至少为所述阴封闭元件总厚度的30%。
    12.根据权利要求9所述的容器或袋,其中,所述杆的高度在所述阴封闭件高度的约20%至40%之间。
    13.根据权利要求9所述的容器或袋,其中,所述杆的高度小于所述阴封闭件高度的约35%。
    14.根据权利要求9所述的容器或袋,其中,所述封闭系统还包括沿向外方向延伸的左凸片和右凸片。
    15.根据权利要求14所述的容器或袋,其中,所述左凸片和所述右凸片包括突起或凹槽中的至少一个。
    16.一种完全由弹性体制成的容器或袋,包括: 主体,包括: 前壁;和 后壁,所述后壁沿着外围边缘连接到所述前壁;和 封闭系统,所述封闭系统包括: 前侧,所述前侧具有前密封轮廓,所述前密封轮廓包括阳封闭元件,其中,所述阳封闭元件包括杆和从所述杆延伸的头部;以及 后侧,所述后侧包括后密封轮廓并限定空腔,所述后密封轮廓包括阴封闭元件,其中,中心线延伸穿过所述空腔, 其中,所述后侧包括内部部分和外部部分,所述内部部分包括整个所述空腔,并且 其中,所述外部部分限定3.0毫米(mm)至6mm之间的厚度,并且所述阳封闭元件限定小于3.5mm的厚度。
    17.根据权利要求16所述的容器或袋,其中,所述阳封闭元件限定小于3.0mm的厚度。
    18.根据权利要求17所述的容器或袋,其中,在平行于所述中心线的方向上测量的所述外部部分的厚度是在平行于所述中心线的方向上测量的所述阴封闭元件的总厚度的至少20%。
    19.根据权利要求16所述的容器或袋,其中,所述左凸片和所述右凸片各自包括多个凹槽或突起。
    20.根据权利要求16所述的容器或袋,其中,所述左凸片和所述右凸片各自包括多个孔。
    21.一种完全由弹性体制成的容器或袋,包括: 主体,所述主体包括: 前壁;和 后壁,所述后壁沿着外围边缘连接到所述前壁;和 封闭系统,所述封闭系统包括: 前侧,所述前侧具有前密封轮廓,所述前密封轮廓包括阳封闭元件;和 后侧,所述后侧包括后密封轮廓并限定空腔,所述后密封轮廓包括阴封闭元件,其中,中心线延伸穿过所述空腔, 其中,所述后侧包括内部部分和外部部分,所述内部部分包括整个所述空腔,并且 其中,在平行于所述中心线的方向上测量的所述外部部分的厚度是在平行于所述中心线的方向上测量的所述阴封闭元件的总厚度的至少20%。
    22.根据权利要求21所述的容器或袋,其中,所述外部部分的厚度至少为所述阴封闭元件总厚度的30%。
    23.根据权利要求21所述的容器或袋,其中,所述外部部分的厚度至少为所述阴封闭元件总厚度的40%。
    24.根据权利要求21所述的容器或袋,其中,所述外部部分的厚度至少为所述阴封闭元件总厚度的50%。
    25.根据权利要求21所述的容器或袋,其中,所述封闭系统还包括沿向外方向延伸的左凸片和右凸片。
    26.根据权利要求21所述的容器或袋,其中,所述阳封闭元件包括杆和从所述杆延伸的头部, 其中,所述头部限定的高度大于所述杆的高度, 其中,所述阴封闭元件包括限定进入所述空腔的开口的臂,并且所述开口限定一高度,以及 其中,所述杆的高度至少是所述开口的高度的100%。
    27.根据权利要求26所述的容器或袋,其中,所述杆的高度为所述开口的高度的至少125%。
    28.根据权利要求26所述的容器或袋,其中,所述杆的高度为所述开口的高度的至少150%。
    29.一种完全由弹性体制成的容器或袋,包括: 主体,所述主体包括: 前壁;和 后壁,所述后壁沿着外围边缘连接到所述前壁;和 封闭系统,所述封闭系统包括: 前侧,所述前侧具有前密封轮廓,所述前密封轮廓包括阳封闭元件;和 后侧,所述后侧包括后密封轮廓并限定空腔,所述后密封轮廓包括阴封闭元件,其中,所述阳封闭元件包括杆和从所述杆延伸的头部, 其中,所述头部限定的高度大于所述杆的高度, 其中,所述阴封闭元件包括限定进入所述空腔的开口的臂,并且所述开口限定一高度,以及 其中,所述杆的高度至少是所述开口的高度的100%。
    30.根据权利要求29所述的容器或袋,其中,中心线延伸穿过所述空腔, 其中,所述后侧包括内部部分和外部部分,所述内部部分包括整个所述空腔,并且 其中,在平行于所述中心线的方向上测量的所述外部部分的厚度是在平行于所述中心线的方向上测量的所述阴封闭元件的总厚度的至少20%。
    31.根据权利要求30所述的容器或袋,其中,所述外部部分的厚度至少为所述阴封闭元件总厚度的30%。
    32.根据权利要求29所述的容器或袋,其中,所述杆的高度为所述开口的高度的至少125%。
    33.根据权利要求29所述的容器或袋,其中,所述杆的高度为所述开口的高度的至少150%。
    34.根据权利要求29所述的容器或袋,其中,所述封闭系统还包括沿向外方向延伸的左凸片和右凸片。
    35.根据权利要求34所述的容器或袋,其中,所述左凸片和所述右凸片包括突起或凹槽中的至少一个。
    说明书
    [0001]BACKGROUND
    [0002]The present invention relates generally to integrated circuits, and, more particularly, to decoupling capacitors in integrated circuits.
    [0003]Decoupling capacitors (decaps) are used in integrated circuit (IC) design to filter out noise coupling between a positive supply voltage (Vdd) and a complimentary lower supply voltage (Vss). Such power noises are caused by transistors in a high density IC demanding high current at high frequencies, which results in abrupt voltage drops. There can be both global and localized voltage drops on the power grid of the IC. This voltage drop can be reduced by providing localized sources of current, such as capacitors, which decouple current surges from the power grid, and thereby reduce noise on the power grid.
    [0004]One type of on-die capacitor is called a MOS-C or metal oxide semiconductor capacitor. The MOS-C has two terminals separated by a gate oxide. One of the terminals is the gate and the other is the body. Another type of on-die capacitor is using a field effect transistor (FET) such as an n-channel metal oxide semiconductor FET (NMOSFET) or a p-channel metal oxide semiconductor FET (PMOSFET). One of the terminals is the gate and the other terminal is the source, drain, and body. The terminals are separated by a gate oxide. One common feature in these two types of on-die capacitor is to use gate oxide as dielectric material, which suffers high leakage current tunneling through the gate oxide, especially in modern semiconductor devices where gate oxide is becoming ever thinner. Gate oxide directly connect to the Vdd is also prone to electrostatic discharge (ESD) damage.
    [0005]What is desired is a low leakage decap with flexibility in formation and robust to damages.
    [0006]SUMMARY
    [0007]In view of the foregoing, This invention discloses a decoupling capacitor in an integrated circuits, comprising a plurality of dedicated PN diodes with a total junction area greater than one tenth of a total active area of functional devices for which the dedicated PN diodes are intended to protect, a N-type region of the dedicated PN diodes coupling to a positive supply voltage (Vdd), and a P-type region of the dedicated PN diodes coupling to a complimentary lower supply voltage (Vss), wherein the dedicated PN diodes are reversely biased.
    [0008]The construction and method of operation of the invention, however, together with additional objects and advantages thereof will be best understood from the following description of specific embodiments when read in connection with the accompanying drawings.
    [0009]BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a cross sectional view of a traditional NMOSFET decoupling capacitor. FIG. 2 is a schematic diagram illustrating a reverse-biased PN diode serving as a decoupling capacitor according to one embodiment of the present invention. FIGS. 3A , 3 B and 3 C are cross sectional views of various formations of the reverse-biased PN diode decoupling capacitors. FIG. 4 is a schematic diagram illustrating the placement of a filler cell formed by a reverse-biased PN diodes decoupling capacitor according to one embodiment of the present invention.
    [0010]DESCRIPTION
    [0011]The present disclosure provides decoupling capacitors formed by reverse-biased PN diodes which have lower leakage and are flexible to be placed in integrated circuits.
    [0012]FIG. 1 is a cross sectional view of a traditional NMOSFET decoupling capacitor (decap) 100 . A gate 110 is coupled to a positive voltage supply (Vdd). A source/drain 120 and a Pwell bulk 130 are tied together and coupled to a complimentary lower voltage supply (Vss). The gate oxide 140 provide dielectric material for the NMOSFET decap 100 , which operates at inversion region where the capacitance is higher under the aforementioned connection. But using gate oxide to form decaps suffer high leakage current tunneling through the gate oxide, especially in modern semiconductor devices where gate oxide is becoming ever thinner. Gate oxide directly connect to the Vdd is also prone to electrostatic discharge (ESD) damage.
    [0013]FIG. 2 is a schematic diagram illustrating a reverse-biased PN diode 210 serving as a decap according to one embodiment of the present invention. A reverse-biased PN diode 210 can serve as a capacitor is because under reverse bias, the PN junction forms a depletion region, and the higher the bias voltage the wider the depletion region, and hence the smaller the PN junction capacitance. So the reverse-biased PN diode decap 210 works even better when Vdd becomes lower in advanced integrated circuits (ICs).
    [0014]Another advantage of the reverse-biased PN diode decap is an added electrostatic discharge (ESD) protection. Since PN junction breakdown under modest ESD voltage is reversible, meaning the PN junction itself will not be permanently damaged by modest ESD.
    [0015]There are numerous ways to form a PN diode in an IC chip, and FIGS. 3A through 3C show some of the examples. Here only dedicated PN diodes are referred to according to the present invention. A dedicated PN diode is a device functioning solely as a PN diode, and not a PN diode parasitic to other kind of devices.
    [0016]FIG. 3A is a cross sectional view of a reverse-biased PN diode decap 310 formed by a N+ region 312 inside a Pwell 314 . The N+ region 312 is coupled to Vdd and the Pwell 314 is coupled to Vss through a P+ pick-up region 316 . So that the PN junction formed by the N+ 310 and Pwell 316 is reverse biased.
    [0017]FIG. 3B is a cross sectional view of another reverse-biased PN diode decap 320 formed by a P+ region 322 inside a Nwell 324 which is in turn inside a Psub 326 . The Nwell 324 is coupled to Vdd through a N+ pick-up region 328 . The P+ region 322 is coupled to Vss. So that the PN junction formed by the P+ 322 and Nwell 324 is also reverse biased.
    [0018]FIG. 3C is a cross sectional view of a more complicated structure. A Nwell 332 is next to a Pwell 334 . Both Nwell 332 and Pwell 334 are inside a DNwell (deep Nwell) 336 , which is in turn inside as Psub 338 . The Nwell 322 is coupled to Vdd through a N+ pick-up region 342 . The Pwell 334 is coupled to Vss through a P+ pick-up region 344 . The DNwell 336 is coupled to Vdd through a N+ pick-up region 346 . The Psub 338 is coupled to Vss through a P+ pick-up region 348 . So that the Nwell 332 and the Pwell 334 forms a reverse-biased PN diode. The Pwell 334 and the DNwell 336 forms another reverse-biased PN diode. The DNwell 336 and the Psub 338 forms yet another reverse-biased PN diode.
    [0019]In order for the PN diode decaps to be effective in filtering out noises created by a fluctuating power demand, a total junction area of the PN diode decaps must be substantially in par with the total size of functional devices in the same region where the decaps are placed. If in a normal circuit, most functional devices use minimum channel width, and then the functional device active area can be used as a representative for the device size. The total junction area of the PN diode decaps should be at least one tenth of the total active area of the functional devices for which the dedicated PN diodes are intended to protect.
    [0020]FIGS. 3A , 3 B and 3 C demonstrate the flexibility of forming a reverse-biased PN diode decap. It can be extremely large formed from DNwell and Psub, or it can be a small 2-pitch filler type decap. The so called filler is a non-functional element placed in empty areas to fill up metal, poly, well and active regions in order to satisfy density rules of these layers.
    [0021]FIG. 4 is a schematic diagram illustrating the placement of a filler cell 410 formed by a reverse-biased PN diodes decoupling capacitor 415 according to one embodiment of the present invention. Inverters 420 and 430 are exemplary functional devices. They can be any other kind of devices. The filler cell 410 are placed in the empty spaces between the two functional inverters 420 and 430 , firstly to serve as a decoupling capacitor, and secondly to fill up the empty spaces to satisfy density rules for metal, poly, well and active region layers. If the filler cell 410 is near a bonding pad, the reverse-biased PN junction can also provide additional ESD protection to the internal circuits.
    [0022]The PN diode of the filler cell is coupled between Vdd and Vss through metal lines in the same or two different metal layers. In order to dump sufficient electric charges in a dynamic basis, the metal lines should have enough width to reduce resistance. In fact, the width or length of the filler cell should be no greater than five times, and preferably three times, the minimum width of the metal lines.
    [0023]As a part of a filler cell, some dummy pieces in layers, such as metal or poly, may be added if the area where the filler cell is placed is deprived of those layers. The so called dummy piece is a piece of a certain layer do not have any functional use and purely for filling up empty spaces to satisfy density rules.
    [0024]This invention provides many different embodiments, or examples, for implementing different features of the invention. Specific examples of components and methods are described to help clarify the disclosure. These are, of course, merely examples and are not intended to limit the disclosure from that described in the claims.
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