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锆:高熔点金 属之一,呈浅灰色。密度6.49克/厘米3。熔点1852±2℃,沸点4377℃。化合价+2、+3和+4。第一电离能6.84电子伏特。锆的表面易形成 一层氧化膜,具有光泽,故外观与钢相似。有耐腐蚀性,可溶于氢氟酸和王水;高温时,可与非金属元素和许多金属元素反应,生成固体溶液化合物。锆一般被认为 是稀有金属,其实它在地壳中的含量相当大,比一般的常用的金属锌、铜、锡等都大。

纠错 编辑摘要

目录

  • 1 概述
  • 2 综合性质
  • 3 元素描述
  • 4 产量分布
  • 5 特殊性质
  •  

  • 1 概述
  • 2 综合性质
  • 3 元素描述
  • 4 产量分布
  • 5 特殊性质
  • 6 锆合金
  • 7 氧化锆
  • 8 硅酸锆
  • 9 锆指数
  • 10 用途制取

 

锆 - 概述

锆, 原子序数40,原子量91.224。1789年德国化学家克拉普罗斯在锆石中发现锆的氧化物,并根据锆石的英文名命名;1824年瑞典化学家贝采利乌斯首 次制的不纯的金属锆;1925年荷兰科 学家阿克尔和德博尔制得有延展性的块状金属锆。锆在地壳中的含量为0.025%,但分布非常分散。主要矿物有锆石和二氧化锆矿。天然锆有6种稳定同位素: 锆90、91、92、94、96,其中锆90含量最大。 锆为银灰色金属,外观似钢,有光泽;熔点1852°C,沸点4377°C,密度6.49克/厘米³。锆容易吸收氢、氮和氧气;锆对氧的亲和力很 强,1000°C氧气溶于锆中能使其体积显著增加。

 

锆 - 综合性质

 

元素名称:锆

元素符号:Zr

元素英文名称:Zirconium

元素类型:金属元素

原子体积:(立方厘米/摩尔):14.1

元素在太阳中的含量:(ppm):0.04

锆屑

 

元素在海水中的含量:(ppm):0.000009

地壳中含量:(ppm):190

相对原子质量:91.22

原子序数:40

质子数:40

中子数:51

摩尔质量:91

原子半径:

所属周期:5

所属族数:IVB

电子层排布: 2-8-18-10-2

 

氧化态:

Main Zr 4

Other Zr0, Zr 1, Zr 2, Zr 3

晶体结构:晶胞为六方晶胞。

晶胞参数:

a = 323.2 pm

b = 323.2 pm

c = 514.7 pm

镶锆三叉项链

 

α = 90°

β = 90°

γ = 120°

莫氏硬度:5

声音在其中的传播速率:(m/S):3800

 

电离能 (kJ /mol)

M - M 660

M - M2 1267

M2 - M3 2218

M3 - M4 3313

M4 - M5 7860

M5 - M6 9500

M6 - M7 11200

M7 - M8 13800

M8 - M9 15700

M9 - M10 17500

常见化合价: 2, 3

单质:Zr

单质化学符号:Zr

颜色和状态:

发现人:克拉普罗德 发现年代:1789年

 

发现过程:

1789年,德国的克拉普罗德,在分析锡兰锆时,发现了锆土。

 

锆 - 元素描述

 

元素英文名称:Zirconium

相对原子质量:91.22

核内质子数:40

核外电子数:40

核电核数:40

质子质量:6.692E-26

硫酸锆

 

质子相对质量:40.28

所属周期:5

所属族数:IVB

摩尔质量:91

氢化物:ZrH4

氧化物:ZrO2

最高价氧化物化学式:ZrO2

密度:6.49

熔点:1852.0

沸点:4377.0

外围电子排布:4d2 5s2

核外电子排布:2,8,18,10,2

颜色和状态:钢灰色金属

原子半径:2.16

常见化合价:+2,+3,+4

元素来源:

四氧化锆用镁还原可制得。

 

锆 - 产量分布

 锆产品的主要原料是锆英砂,全球90%的氧氯化

蓝锆银戒

锆(初级产品)的生产能力在中国。目前,国内锆的加工能力12万吨/年,实际产量在8万吨/年,85%以上出口,目前全球锆市场供不应求,目前锆的价格大约每吨12000元,而且价格仍在不断上涨。

含 锆的天然硅酸盐矿石被成为锆石(zircon)或风信子石(hyacinth),广泛分布在自然界中。由于它们美丽的颜色,自古以来被称为宝石。化学家很 早就对锆石进行了分析,认为是含有硅、铝、钙和铁的氧化物。1789年,德国化学家克拉普罗特发表研究来自斯里兰卡锆石的报告中提到他发现了一种未知的独 特而简单物质的氧化物,并提议称之为Zirconerde(锆土——氧化锆)。不久,法国化学家德毛沃和沃克兰两人都证实克拉普罗特的分析是正确的。 Zirconerde的存在被肯定,元素得到zirconnium的命名,元素符号为Zr。

 

锆 - 特殊性质

金属锆的外表象钢,常温下表面被致密的氧化物

氧化钙锆

层 覆盖,但仍有金属光泽。粉状锆为暗灰色。金属锆的熔点为1852℃,密度6.49克/厘米3。其可塑性好,易于加工成板、丝等。锆在加热时能大量地吸收 氧、氢、氮等气体,可用作贮氢材料。锆的耐蚀性比钛好,接近铌、钽。锆与铪是化学性质历史学相似、又共生在一起的两个金属,且含有放射性物质。地壳中锆的 含量居第20位,几乎与铬相等。目前,自然界中具有工业价值的含锆矿物,主要有锆英石及斜锆石。锆虽为稀有金属,但在地壳中含量却超过铜、锡、锌等。

 

锆在空气中比较稳定;粉末状的锆容易燃烧,细的锆丝可用火柴点燃;高温时能与溶入的氧、氮、氢直接化合。

锆比钛软,主要用于制造防弹合金钢;锆还可作反应堆中铀燃料的包覆合金;锆在高温时易发射电子;锆还少量用于外科刀具。

 

锆 - 锆合金

以锆为基体加入其他元素而构成的有色合

锆管头

金。 主要合金元素有锡、铌、铁等。 锆合金在300~400℃的高温高压水和蒸汽中有良好的耐蚀性能、适中的力学性能、较低的原子热中子吸收截面,对核燃料有良好的相容性,多用作水冷核反应 堆的堆芯结构材料。此外,锆对多种酸、碱和盐有优良的抗蚀性,与氧、氮等气体有强烈的亲和力,因此锆合金也用于制造耐蚀部件和制药机械部件,在电真空和灯 泡工业中被广泛用作非蒸散型消气剂。

工业规模生产的锆合金有锆锡系和锆铌系两类。前者合金牌号有Zr-2、Zr-4,后者的典型代表是 Zr-2.5Nb 。在锆锡系合金中,合金元素锡、铁、铬、镍可 提高材料的强度 、耐蚀性和耐蚀膜的导热性,降低表面状态对腐蚀的敏感性 。通常Zr-2合金用于沸水堆 ,Zr-4 合金用于压水堆 。在锆铌系合金中,铌的添加量达到使用温度下锆的晶体结构的固溶极限时,合金的耐蚀性最好。锆合金有同质异晶转变,高温下的晶体结构为体心立方,低温下为 密排六方。锆合金塑性好,可通过塑性加工制成管材、板材、棒材和丝材;其焊接性也好,可用以进行焊接加工。

 

锆 - 氧化锆

氧化锆(ZrO2)自然界的氧化锆矿物原

氧氯化锆

料, 主要有斜锆石和锆英石。 锆英石系火成岩深层矿物,颜色有淡黄、棕黄、黄绿等,比重4.6—4.7,硬度7.5,具有强烈的金属光泽,可为陶瓷釉用原料。纯的氧化锆是一种高级耐火 原料,其熔融温度约为2900℃它可提高釉的高温粘度和扩大粘度变化的温度范围,有较好的热稳定性,其含量为2%-3%时,能提高釉的抗龟裂性能。还因它 的化学惰性大,故能提高釉的化学稳定性和耐酸碱能力,还能起到乳浊剂的作用。在建筑陶瓷釉料中多使用锆英石,一般用量为8%—12%。并为“釉下白”的主 要原料,氧化锆为黄绿色颜料良好的助色剂,若想获得较好的钒锆黄颜料必须选用质纯的氧化锆。

CAS No.: 1314-23-4

 

锆 - 硅酸锆

 

Zr(SiO4), 折射率高1.93-2.01,化学稳定性能, 是一种优质、价廉的乳浊剂,被广泛用于各种建筑陶瓷、卫生陶瓷、日用陶瓷、一级工艺品陶瓷等的生产中,在陶瓷釉料的加工生产中,使用范围广,应用量大。硅 酸锆之所以在陶瓷生产中得以广泛应用,还因为其化学稳定性好,因而不受陶瓷烧成气氛的影响,且能显著改善陶瓷的坯釉结合性能,提高陶瓷釉面硬度。硅酸锆也 在电视行业的彩色显像管、玻璃行业的乳化玻璃、搪瓷釉料生产中得到了进一步的应用。硅酸锆的熔点高:2500摄氏度,所以在耐火材料、玻璃窑炉锆捣打料、 浇注料、喷涂料中也被广泛应用。

 

锆 - 锆指数

Zr index,后处理工艺中用来衡量溶剂降解程度的指标。95Zr是一种重要的裂片,降解后的溶剂对95Zr具有高选择性的保留作用,锆指数越大,溶剂降解 越严重。锆指数(Z值)的测量方法是:反萃后有机相经氢氧化钠、水和 硝酸洗涤后,用示踪量95Zr水相与之平衡,用3mol/L硝酸洗有机相3次,除去TBP萃取的95Zr。测定溶剂相中被保留的锆量,每109L溶剂保留 的95Zr的摩尔数为溶剂的Z值。由于锆在水溶液中行为复杂,随测量条件不同,Z值会不同,因而常用不稳定系数来表征溶剂的稳定性: 戈德堡-霍格内斯盒。

 

锆 - 用途制取

粉末状铁与硝酸锆混合,可作闪光粉。金属锆几乎全部用作核反

锆英

应 堆中铀燃料元件的包壳。也用来制造照相用的闪光灯,以及耐腐蚀的容器和管道,特别是能耐盐酸和硫酸。锆的化学药品可作聚合物的交联剂。克拉普罗特最初研究 锆的硅酸盐实验操作一直到今天仍是工业上提取锆的基础。但一直到1914年,荷兰一家金属白热电灯制造厂的两位研究人员列里和汉保格将四氯化锆和金属钠作 用,取得纯金属锆。锆一般被认为是稀有金属,其实它在地壳中的含量相当大,比一般的常用的金属锌、铜、锡等都大。

引用出處: 

 http://www.hudong.com/wiki/%E9%94%86

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歡迎來到Bewise Inc.的世界,首先恭喜您來到這接受新的資訊讓產業更有競爭力,我們是提供專業刀具製造商,應對客戶高品質的刀具需求,我們可以協助客戶滿足您對產業的不同要求,我們有能力達到非常卓越的客戶需求品質,這是現有相關技術無法比擬的,我們成功的滿足了各行各業的要求,包括:精密HSS DIN切削刀具協助客戶設計刀具流程DIN or JIS 鎢鋼切削刀具設計NAS986 NAS965 NAS897 NAS937orNAS907 航太切削刀具,NAS航太刀具設計超高硬度的切削刀具醫療配件刀具設計複合式再研磨機PCD地板專用企口鑽石組合刀具粉末造粒成型機主機版專用頂級電桿PCD V-Cut捨棄式圓鋸片組粉末成型機航空機械鉸刀主機版專用頂級電汽車業刀具設計電子產業鑽石刀具木工產業鑽石刀具銑刀與切斷複合再研磨機銑刀與鑽頭複合再研磨機銑刀與螺絲攻複合再研磨機等等。我們的產品涵蓋了從民生刀具到工業級的刀具設計;從微細刀具到大型刀具;從小型生產到大型量產;全自動整合;我們的技術可提供您連續生產的效能,我們整體的服務及卓越的技術,恭迎您親自體驗!!  

BW Bewise Inc. Willy Chen willy@tool-tool.com  bw@tool-tool.com  www.tool-tool.com skype:willy_chen_bw mobile:0937-618-190 Head &Administration Office No.13,Shiang Shang 2nd St., West Chiu Taichung,Taiwan 40356 http://www.tool-tool.com/ / FAX:+886 4 2471 4839 N.Branch 5F,No.460,Fu Shin North Rd.,Taipei,Taiwan S.Branch No.24,Sec.1,Chia Pu East Rd.,Taipao City,Chiayi Hsien,Taiwan

Welcome to BW tool world! We are an experienced tool maker specialized in cutting tools. We focus on what you need and endeavor to research the best cutter to satisfy users demand. Our customers involve wide range of industries, like mold & die, aerospace, electronic, machinery, etc. We are professional expert in cutting field. We would like to solve every problem from you. Please feel free to contact us, its our pleasure to serve for you. BW product including: cutting toolaerospace tool .HSS  DIN Cutting toolCarbide end millsCarbide cutting toolNAS Cutting toolNAS986 NAS965 NAS897 NAS937orNAS907 Cutting Tools,Carbide end milldisc milling cutter,Aerospace cutting toolhss drillФрезерыCarbide drillHigh speed steelCompound SharpenerMilling cutterINDUCTORS FOR PCD’CVDD(Chemical Vapor Deposition Diamond )’PCBN (Polycrystalline Cubic Boron Nitride) Core drill、Tapered end millsCVD Diamond Tools Inserts’PCD Edge-Beveling Cutter(Golden FingerPCD V-CutterPCD Wood toolsPCD Cutting toolsPCD Circular Saw BladePVDD End Millsdiamond tool. INDUCTORS FOR PCD . POWDER FORMING MACHINE Single Crystal Diamond Metric end millsMiniature end millsСпециальные режущие инструменты Пустотелое сверло Pilot reamerFraisesFresas con mango PCD (Polycrystalline diamond) ‘FresePOWDER FORMING MACHINEElectronics cutterStep drillMetal cutting sawDouble margin drillGun barrelAngle milling cutterCarbide burrsCarbide tipped cutterChamfering toolIC card engraving cutterSide cutterStaple CutterPCD diamond cutter specialized in grooving floorsV-Cut PCD Circular Diamond Tipped Saw Blade with Indexable Insert PCD Diamond Tool Saw Blade with Indexable InsertNAS toolDIN or JIS toolSpecial toolMetal slitting sawsShell end millsSide and face milling cuttersSide chip clearance sawsLong end millsend mill grinderdrill grindersharpenerStub roughing end millsDovetail milling cuttersCarbide slot drillsCarbide torus cuttersAngel carbide end millsCarbide torus cuttersCarbide ball-nosed slot drillsMould cutterTool manufacturer.

Bewise Inc.  www.tool-tool.com

ようこそBewise Inc.の世界へお越し下さいませ、先ず御目出度たいのは新たな

情報を受け取って頂き、もっと各産業に競争力プラス展開。

弊社は専門なエンドミルの製造メーカーで、客先に色んな分野のニーズ

豊富なパリエーションを満足させ、特にハイテク品質要求にサポート致します。

弊社は各領域に供給できる内容は:

(1)精密HSSエンドミルのR&D

(2)Carbide Cutting tools設計

(3)鎢鋼エンドミル設計

(4)航空エンドミル設計

(5)超高硬度エンドミル

(6)ダイヤモンドエンドミル

(7)医療用品エンドミル設計

(8)自動車部品&材料加工向けエンドミル設計

弊社の製品の供給調達機能は:

(1)生活産業~ハイテク工業までのエンドミル設計

(2)ミクロエンドミル~大型エンドミル供給

(3)小Lot生産~大量発注対応供給

(4)オートメーション整備調達

(5)スポット対応~流れ生産対応

弊社の全般供給体制及び技術自慢の総合専門製造メーカーに貴方のご体験を御待ちしております。   

Bewise Inc. talaşlı imalat sanayinde en fazla kullanılan ve üç eksende (x,y,z) talaş kaldırabilen freze takımlarından olan Parmak Freze imalatçısıdır. Çok geniş ürün yelpazesine sahip olan firmanın başlıca ürünlerini Karbür Parmak Frezeler, Kalıpçı Frezeleri, Kaba Talaş Frezeleri, Konik Alın Frezeler, Köşe Radyüs Frezeler, İki Ağızlı Kısa ve Uzun Küresel Frezeler, İç Bükey Frezeler vb. şeklinde sıralayabiliriz.

BW специализируется в научных исследованиях и разработках, и снабжаем самым высокотехнологичным карбидовым материалом для поставки режущих / фрезеровочных инструментов для почвы, воздушного пространства и электронной индустрии. В нашу основную продукцию входит твердый карбид / быстрорежущая сталь, а также двигатели, микроэлектрические дрели, IC картонорезальные машины, фрезы для гравирования, режущие пилы, фрезеры-расширители, фрезеры-расширители с резцом, дрели, резаки форм для шлицевого вала / звездочки роликовой цепи, и специальные нано инструменты. Пожалуйста, посетите сайт  www.tool-tool.com  для получения большей информации.

BW is specialized in R&D and sourcing the most advanced carbide material with high-tech coating to supply cutting / milling tool for mould & die, aero space and electronic industry. Our main products include solid carbide / HSS end mills, micro electronic drill, IC card cutter, engraving cutter, shell end mills, cutting saw, reamer, thread reamer, leading drill, involute gear cutter for spur wheel, rack and worm milling cutter, thread milling cutter, form cutters for spline shaft/roller chain sprocket, and special tool, with nano grade. Please visit our web  www.tool-tool.com  for more info.

 

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晶矽、薄膜、高聚光互不相讓 !太陽能量產逆勢看漲

‧零組件 2010/12/16

目前可進入量產階段的太陽光電技術,以單/多晶矽、薄膜(Thin Film)以及新興高聚光型(HCPV)三大技術為主,在這三大技術領域中也有許多台灣廠商投入其中。

 

 

 

【撰文/鍾榮峯】

 

目前可進入量產階段的太陽光電技術,以單/多晶矽、薄膜(Thin Film)以及新興高聚光型(HCPV)三大技術為主,在這三大技術領域中也有許多台灣廠商投入其中。

 

從 整體市場佔有率來看,單/多晶矽依舊穩居太陽能市場主流,預估比重佔85%左右,至於薄膜太陽能約佔整體市場的10%,新興的聚光型產品已經有 5%的市佔率。量產能力、製程成熟度、轉換效率、採光穩定度、材料和製程成本等因素,是評比多晶矽、薄膜和高聚光型材料太陽能技術應用的主要區分點。

 

穩定供應材料是單/多晶矽擴產關鍵

 

單 /多晶矽太陽能技術在量產能力、製程成熟度和製程成本上都具有相當的優勢,不過由於晶矽材料只能吸收到可見光光譜範圍的波長,所以光源轉換效能的 成長空間比較小。此外,晶矽材料的溫度係數較高,容易受到溫度變化影響採光效能,日照瓦數的穩定度也因此較低。因此在陰天多雲的氣候變化下,單/多晶矽太 陽能面板的採光效能會隨之受限,呈現線性下降的反應。

另一方面,單/多晶矽價格波動幅度過大,矽晶材料廠商也會以庫存方式哄抬市場價格, 對於產能滿載的台灣電池和模組廠來說,形成不小的成本壓力。茂迪 執行長張秉衡在台灣國際太陽光電論壇發表演講時指出,如何建立長期穩定的晶矽材料供應鏈,是降低單/多晶矽太陽能面板成本的重要關鍵。台灣儘管在今年已經 重建太陽能產業的發展契機,不過值得注意的是,在具有高獲利的上游矽晶材料部份,台灣廠商的掌握程度仍舊不足,目前只有福聚太陽能可以量產多晶矽。相較而 言,南韓的OCI在短短的三年之內,已經成為全球多晶矽第三大的供應大廠,對於台灣多晶矽太陽能產業發展來說,是個值得注意的警訊。因此垂直整合矽晶原 料、電池、模組或逆變器的一條龍生產模式,正逐漸成為台廠單/多晶矽太陽能廠商控制成本的營運方向。

 

 

薄膜太陽能技術各有一片天!

 

薄 膜太陽能電池則主要以非晶矽A-Si、非微晶堆疊(Micromorph)和銅銦鎵硒(CIGS)三大類為主,薄膜太陽能面板的透光性比多晶矽來 得高,也具有可撓性,且採用強化玻璃材質,相較於單多晶矽太陽能面板,也較不易破裂破碎。相較於單/多晶矽,薄膜太陽能也較不受日照、濕度和遮蔽效應影 響。

 

 

A-Si量產能力可威脅單/多晶矽

 

從 量產能力來看,目前A-Si和Micromorph都可進入量產階段,A-Si的量產穩定度可達99%,Micromorph大概在90%左右。 CIGS剛進入量產階段,產能則仍有待加強,良率也不夠高。旭能光電(SUNNER SOLAR)副董事長歐政豪博士指出,相較於單/多晶矽和高聚光型(HCPV)材料和設備的成本,儘管薄膜太陽能面板的生產設備並不便宜,不過HCPV和 多晶矽的材料成本相對較為昂貴,因此薄膜太陽能面板的成本結構仍相對較低。

A-Si製程由於研發時程已有一段時日,材料成本也相對穩定,儘管生產設備也不便宜,整體生產成本相對低廉。整體來看,A-Si薄膜太陽能產品應用具有發展潛力,材料、量產和良率穩定度高且不斷成熟,對於佔主導地位的多晶矽太陽能產品最具威脅性。

 

 

CIGS後勢看漲 確立製程標準才能擴產

 

具備低成本和高轉換效率潛力的銅銦鎵硒(CIGS)製程,也成為薄膜太陽光電領域備受矚目的焦點。綠陽光電、台積電、友達、錸寶等,正積極參與CIGS薄膜太陽能的開發作業。

由 於CIGS對於溫度係數較不敏感,可吸收漫射光,因此可吸收的光譜較寬,光吸收的角度沒有單/多晶矽太陽能來的狹窄,因此總發電量較高。另外,不 同於其他非晶矽(A-Si)和非微晶堆疊(Micromorph)採用氣體沈積的製程方式,CIGS製程主要可分為真空製程和非真空製程,前者須經過共蒸 鍍和濺鍍製程,後者則採用化學電鍍和奈米印刷。真空濺鍍製程可滿足大量量產的需求,成本頗具競爭優勢。

目前CIGS製程主流分成幾大類, 也沒有標準產線可以購買,幾乎所有的廠商都是客製化機台,因此產能與產線放大,勢必要考量到機台供應的速度。最關 鍵的是,模組面積放大,薄膜太陽能模組均一性控制難度也隨之增加,轉換效率就會跟著模組面積增加而下降,CIGS製程也會面臨相同的問題。值得注意的 是,CIGS所需關鍵材料銅銦鎵硒中的銦,屬於高度敏感的稀土原料,能不能獲得穩定的供應來源仍需諸多考量。

正由於目前並沒有標準化的CIGS製程,因此投入CIGS的廠商,一開始必須以一條龍的生產方式,整合開發電池、模組和生產製程設備,初期投入資金壓力相對最高。雖然CIGS薄膜太陽能電池在台積電和友達的加持下聲勢高漲,但是距離量產階段仍有段距離。

 

 

 

 

【完整內容請見《<span>零組件雜誌</span>》2010.12月號】

 

 

引用出處: 

 http://tw.myblog.yahoo.com/lifung-biz/article?mid=4389&prev=4392&next=4388

歡迎來到Bewise Inc.的世界,首先恭喜您來到這接受新的資訊讓產業更有競爭力,我們是提供專業刀具製造商,應對客戶高品質的刀具需求,我們可以協助客戶滿足您對產業的不同要求,我們有能力達到非常卓越的客戶需求品質,這是現有相關技術無法比擬的,我們成功的滿足了各行各業的要求,包括:精密HSS DIN切削刀具協助客戶設計刀具流程DIN or JIS 鎢鋼切削刀具設計NAS986 NAS965 NAS897 NAS937orNAS907 航太切削刀具,NAS航太刀具設計超高硬度的切削刀具醫療配件刀具設計複合式再研磨機PCD地板專用企口鑽石組合刀具粉末造粒成型機主機版專用頂級電桿PCD V-Cut捨棄式圓鋸片組粉末成型機航空機械鉸刀主機版專用頂級電汽車業刀具設計電子產業鑽石刀具木工產業鑽石刀具銑刀與切斷複合再研磨機銑刀與鑽頭複合再研磨機銑刀與螺絲攻複合再研磨機等等。我們的產品涵蓋了從民生刀具到工業級的刀具設計;從微細刀具到大型刀具;從小型生產到大型量產;全自動整合;我們的技術可提供您連續生產的效能,我們整體的服務及卓越的技術,恭迎您親自體驗!!  

BW Bewise Inc. Willy Chen willy@tool-tool.com  bw@tool-tool.com  www.tool-tool.com skype:willy_chen_bw mobile:0937-618-190 Head &Administration Office No.13,Shiang Shang 2nd St., West Chiu Taichung,Taiwan 40356 http://www.tool-tool.com/ / FAX:+886 4 2471 4839 N.Branch 5F,No.460,Fu Shin North Rd.,Taipei,Taiwan S.Branch No.24,Sec.1,Chia Pu East Rd.,Taipao City,Chiayi Hsien,Taiwan

Welcome to BW tool world! We are an experienced tool maker specialized in cutting tools. We focus on what you need and endeavor to research the best cutter to satisfy users demand. Our customers involve wide range of industries, like mold & die, aerospace, electronic, machinery, etc. We are professional expert in cutting field. We would like to solve every problem from you. Please feel free to contact us, its our pleasure to serve for you. BW product including: cutting toolaerospace tool .HSS  DIN Cutting toolCarbide end millsCarbide cutting toolNAS Cutting toolNAS986 NAS965 NAS897 NAS937orNAS907 Cutting Tools,Carbide end milldisc milling cutter,Aerospace cutting toolhss drillФрезерыCarbide drillHigh speed steelCompound SharpenerMilling cutterINDUCTORS FOR PCD’CVDD(Chemical Vapor Deposition Diamond )’PCBN (Polycrystalline Cubic Boron Nitride) Core drillTapered end millsCVD Diamond Tools Inserts’PCD Edge-Beveling Cutter(Golden FingerPCD V-CutterPCD Wood toolsPCD Cutting toolsPCD Circular Saw BladePVDD End Millsdiamond tool. INDUCTORS FOR PCD . POWDER FORMING MACHINE Single Crystal Diamond Metric end millsMiniature end millsСпециальные режущие инструменты Пустотелое сверло Pilot reamerFraisesFresas con mango PCD (Polycrystalline diamond) ‘FresePOWDER FORMING MACHINEElectronics cutterStep drillMetal cutting sawDouble margin drillGun barrelAngle milling cutterCarbide burrsCarbide tipped cutterChamfering toolIC card engraving cutterSide cutterStaple CutterPCD diamond cutter specialized in grooving floorsV-Cut PCD Circular Diamond Tipped Saw Blade with Indexable Insert PCD Diamond Tool Saw Blade with Indexable InsertNAS toolDIN or JIS toolSpecial toolMetal slitting sawsShell end millsSide and face milling cuttersSide chip clearance sawsLong end millsend mill grinderdrill grindersharpenerStub roughing end millsDovetail milling cuttersCarbide slot drillsCarbide torus cuttersAngel carbide end millsCarbide torus cuttersCarbide ball-nosed slot drillsMould cutterTool manufacturer. 

Bewise Inc.  www.tool-tool.com

ようこそBewise Inc.の世界へお越し下さいませ、先ず御目出度たいのは新たな

情報を受け取って頂き、もっと各産業に競争力プラス展開。

弊社は専門なエンドミルの製造メーカーで、客先に色んな分野のニーズ

豊富なパリエーションを満足させ、特にハイテク品質要求にサポート致します。

弊社は各領域に供給できる内容は:

(1)精密HSSエンドミルのR&D

(2)Carbide Cutting tools設計

(3)鎢鋼エンドミル設計

(4)航空エンドミル設計

(5)超高硬度エンドミル

(6)ダイヤモンドエンドミル

(7)医療用品エンドミル設計

(8)自動車部品&材料加工向けエンドミル設計

弊社の製品の供給調達機能は:

(1)生活産業~ハイテク工業までのエンドミル設計

(2)ミクロエンドミル~大型エンドミル供給

(3)小Lot生産~大量発注対応供給

(4)オートメーション整備調達

(5)スポット対応~流れ生産対応

弊社の全般供給体制及び技術自慢の総合専門製造メーカーに貴方のご体験を御待ちしております。   

Bewise Inc. talaşlı imalat sanayinde en fazla kullanılan ve üç eksende (x,y,z) talaş kaldırabilen freze takımlarından olan Parmak Freze imalatçısıdır. Çok geniş ürün yelpazesine sahip olan firmanın başlıca ürünlerini Karbür Parmak Frezeler, Kalıpçı Frezeleri, Kaba Talaş Frezeleri, Konik Alın Frezeler, Köşe Radyüs Frezeler, İki Ağızlı Kısa ve Uzun Küresel Frezeler, İç Bükey Frezeler vb. şeklinde sıralayabiliriz.

BW специализируется в научных исследованиях и разработках, и снабжаем самым высокотехнологичным карбидовым материалом для поставки режущих / фрезеровочных инструментов для почвы, воздушного пространства и электронной индустрии. В нашу основную продукцию входит твердый карбид / быстрорежущая сталь, а также двигатели, микроэлектрические дрели, IC картонорезальные машины, фрезы для гравирования, режущие пилы, фрезеры-расширители, фрезеры-расширители с резцом, дрели, резаки форм для шлицевого вала / звездочки роликовой цепи, и специальные нано инструменты. Пожалуйста, посетите сайт  www.tool-tool.com  для получения большей информации.

BW is specialized in R&D and sourcing the most advanced carbide material with high-tech coating to supply cutting / milling tool for mould & die, aero space and electronic industry. Our main products include solid carbide / HSS end mills, micro electronic drill, IC card cutter, engraving cutter, shell end mills, cutting saw, reamer, thread reamer, leading drill, involute gear cutter for spur wheel, rack and worm milling cutter, thread milling cutter, form cutters for spline shaft/roller chain sprocket, and special tool, with nano grade. Please visit our web  www.tool-tool.com  for more info.

 

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【文/孫蓉萍】

郭台銘、朱鎔基爭相取經的機器人龍頭企業

 

 

 

台 幣升值趨勢強勁,台灣科技業廠商哀鴻遍野,連「 代工皇帝」鴻海集團董事長郭台銘都吃不消,近來頻頻造訪日本,就是要學習日本企業在失落的二十年,熬過長期不景氣、日圓劇烈升值的生存祕訣。據了解,郭台 銘拜訪的日本企業中,有一家世界第一的黑手企業,它不僅提供生產iPhone手機必備的機械設備,還是全球高科技業倚賴的供應商,它有何生存之道,值得郭 台銘學習?

在日本富士山下,錯落著數十幢大小不一的廠房,參觀者都對其整齊一致的鮮黃色留下深刻印象。這家廠商就是世界第一的數位控制 系 統及機器人製造商─發 那科(FANUC),從iPhone手機、TOYOTA汽車、波音噴射機的機翼到美軍戰車,都需要發那科的自動化設備。「對一般人來說,發那科沒沒無聞, 其實他們是工具機業界的微軟;如果富士山爆發摧毀發那科,全球都會跟著停止運作!?」東京巴黎銀行分析師佛斯特說。

 

除了購買自動化設備外,發那科還有什麼值得郭台銘取經?

發 那科生產包括機器人、智慧機械等各種工廠自動化設備,是全球最大工具機用數控系統廠商。相較於總市值一兆一千三百億餘元、集團總員工數八十餘萬人 的鴻海;發那科總市值二兆九八六七億日圓(約合新台幣一兆元),集團員工數僅五千餘人。而且儘管二○一○年日圓兌美元大幅升值約一二%,堅持留在日本製造 生產的發那科,股價仍大漲四五%,淨利依然成長?這就是郭台銘最想學的祕密。

領先同業 時鐘撥快十倍

這 家傳奇公司的創辦人是現年八十六歲的稻葉清右衛門。原為富士通內部企業的發那科,在東京大學工學博士稻葉清右衛門的領導下,專心研發工具機等數控 機器,一九五六年生產出日本第一個數控裝置,七二年公司獨立出來,七六年股票上市,中國前總理朱鎔基二○○○年造訪日本時,也曾經特別親自參觀過發那科。

近 來iPhone等智慧型手機需求大爆發,台灣代工廠商接到手機大廠訂單,需要採購大量工具機。能夠符合快速交貨、精密度高、價錢合理等嚴苛要求 的,全球只有發那科一家廠商,它所生產的機床Robodrill兼具鑽孔、銑削等多項功能,讓代工廠商不必使用模具,就能製造出角度完美的機殼。發那科能 夠快速提出解決方案,背後的推動者就是稻葉清右衛門。

進入富士山麓發那科研究大樓的大門,立刻可以看到一個令人不可思議的大時鐘,因為 它 的速度比一般時鐘快了十倍,正常的一分鐘它只要六秒鐘就會走完。 稻葉掛這個時鐘的用意是希望提醒所有員工,研發工作需要追求速度。稻葉的名言是:「技術有歷史,但是技術人員沒有過去,只有創造。」他讓所有的員工充滿危 機感。

為了在速度上領先,他將研究所分成兩個:一個是基礎開發研究所、一個是商品研究所。基礎研究專攻五年、十年之後市場需要的產品;商品化目標一旦確立,就移交到商品研究所,這個研究所由發那科的精銳部隊組成,規定在一年內交出成果,整個大樓內充滿戰鬥氣息。

為了快速研發,領先全球業界,發那科延攬人才不手軟,例如,它的基礎研究所需要有學問的專才,因此稻葉立下一個「三不原則」:不問國籍、不問年齡、不問性別,但要求必須是學識淵博、教授以上的專家。

稻葉清右衛門屬於獨裁型的經營者,他擔任社長時,業務員要便宜一萬日圓給客戶,或要錄用一名剛畢業的大學生,都要由他拍板定案才算數。為了把事情做到盡善盡美,永遠保持全速前進。他說:「我一直全力投球,所以我要求部屬也做到這一點。」

軍事化管理 更勝郭台銘

當時他一年有一百天在國外出差,早上八點五十分上班,沒有一天在晚上九點前離開,一個月還有好幾天會工作到半夜。因此如果員工不像他一樣認真,他就會大聲斥責。

從創業開始,稻葉就把「嚴謹」視為基本原則。稻葉之子、現任發那科社長的稻葉善治說:「父親的恩師池邊洋在指導父親寫論文的時候,要求論文一定要非常嚴謹。」不只是寫論文,稻葉知道,推動事業永續經營,所有過程也都要非常周密。

稻 葉要求員工放棄「自我」,強迫員工接受自己的價值觀,徹底實現「黃色」企業也是一例。造訪發那科的網站,首先映入眼簾的就是鮮明的黃色。發那科從 東京日野搬到富士山麓的山梨縣忍野,占地四十五萬坪的土地上,所有建物都漆成黃色,從空中鳥瞰,一眼就能分辨出發那科,企業識別做得非常徹底。

社 長以下所有員工都穿黃色制服,工廠的機器人、卡車都是黃色。這個黃色軍團不但讓人印象深刻,也的確創下傲人的佳績。曾經參觀發那科的師大運動與休 閒管理研究所副教授朱文增說:「除了黃色,這家公司還給人樸實、保守的印象。它的科技含量很高,員工待遇、福利都不錯,離職率很低,是日本理工科系嚮往的 工作單位。」

雖然二十年來,日本經過數場泡沫危機、國際金融危機,日圓升值幅度達四成以上,但是唯有發那科沒被打倒,在成本大幅升高之際,如何還能保有競爭力?很簡單,就是做到世界第一,做到別人無法沒有你...

 

 

引用出處: 

 http://tw.myblog.yahoo.com/lifung-biz/article?mid=4388&prev=4389&next=4387

歡迎來到Bewise Inc.的世界,首先恭喜您來到這接受新的資訊讓產業更有競爭力,我們是提供專業刀具製造商,應對客戶高品質的刀具需求,我們可以協助客戶滿足您對產業的不同要求,我們有能力達到非常卓越的客戶需求品質,這是現有相關技術無法比擬的,我們成功的滿足了各行各業的要求,包括:精密HSS DIN切削刀具協助客戶設計刀具流程DIN or JIS 鎢鋼切削刀具設計NAS986 NAS965 NAS897 NAS937orNAS907 航太切削刀具,NAS航太刀具設計超高硬度的切削刀具醫療配件刀具設計複合式再研磨機PCD地板專用企口鑽石組合刀具粉末造粒成型機主機版專用頂級電桿PCD V-Cut捨棄式圓鋸片組粉末成型機航空機械鉸刀主機版專用頂級電汽車業刀具設計電子產業鑽石刀具木工產業鑽石刀具銑刀與切斷複合再研磨機銑刀與鑽頭複合再研磨機銑刀與螺絲攻複合再研磨機等等。我們的產品涵蓋了從民生刀具到工業級的刀具設計;從微細刀具到大型刀具;從小型生產到大型量產;全自動整合;我們的技術可提供您連續生產的效能,我們整體的服務及卓越的技術,恭迎您親自體驗!!  

BW Bewise Inc. Willy Chen willy@tool-tool.com  bw@tool-tool.com  www.tool-tool.com skype:willy_chen_bw mobile:0937-618-190 Head &Administration Office No.13,Shiang Shang 2nd St., West Chiu Taichung,Taiwan 40356 http://www.tool-tool.com/ / FAX:+886 4 2471 4839 N.Branch 5F,No.460,Fu Shin North Rd.,Taipei,Taiwan S.Branch No.24,Sec.1,Chia Pu East Rd.,Taipao City,Chiayi Hsien,Taiwan

Welcome to BW tool world! We are an experienced tool maker specialized in cutting tools. We focus on what you need and endeavor to research the best cutter to satisfy users demand. Our customers involve wide range of industries, like mold & die, aerospace, electronic, machinery, etc. We are professional expert in cutting field. We would like to solve every problem from you. Please feel free to contact us, its our pleasure to serve for you. BW product including: cutting toolaerospace tool .HSS  DIN Cutting toolCarbide end millsCarbide cutting toolNAS Cutting toolNAS986 NAS965 NAS897 NAS937orNAS907 Cutting Tools,Carbide end milldisc milling cutter,Aerospace cutting toolhss drillФрезерыCarbide drillHigh speed steelCompound SharpenerMilling cutterINDUCTORS FOR PCD’CVDD(Chemical Vapor Deposition Diamond )’PCBN (Polycrystalline Cubic Boron Nitride) Core drillTapered end millsCVD Diamond Tools Inserts’PCD Edge-Beveling Cutter(Golden FingerPCD V-CutterPCD Wood toolsPCD Cutting toolsPCD Circular Saw BladePVDD End Millsdiamond tool. INDUCTORS FOR PCD . POWDER FORMING MACHINE Single Crystal Diamond Metric end millsMiniature end millsСпециальные режущие инструменты Пустотелое сверло Pilot reamerFraisesFresas con mango PCD (Polycrystalline diamond) ‘FresePOWDER FORMING MACHINEElectronics cutterStep drillMetal cutting sawDouble margin drillGun barrelAngle milling cutterCarbide burrsCarbide tipped cutterChamfering toolIC card engraving cutterSide cutterStaple CutterPCD diamond cutter specialized in grooving floorsV-Cut PCD Circular Diamond Tipped Saw Blade with Indexable Insert PCD Diamond Tool Saw Blade with Indexable InsertNAS toolDIN or JIS toolSpecial toolMetal slitting sawsShell end millsSide and face milling cuttersSide chip clearance sawsLong end millsend mill grinderdrill grindersharpenerStub roughing end millsDovetail milling cuttersCarbide slot drillsCarbide torus cuttersAngel carbide end millsCarbide torus cuttersCarbide ball-nosed slot drillsMould cutterTool manufacturer. 

Bewise Inc.  www.tool-tool.com

ようこそBewise Inc.の世界へお越し下さいませ、先ず御目出度たいのは新たな

情報を受け取って頂き、もっと各産業に競争力プラス展開。

弊社は専門なエンドミルの製造メーカーで、客先に色んな分野のニーズ

豊富なパリエーションを満足させ、特にハイテク品質要求にサポート致します。

弊社は各領域に供給できる内容は:

(1)精密HSSエンドミルのR&D

(2)Carbide Cutting tools設計

(3)鎢鋼エンドミル設計

(4)航空エンドミル設計

(5)超高硬度エンドミル

(6)ダイヤモンドエンドミル

(7)医療用品エンドミル設計

(8)自動車部品&材料加工向けエンドミル設計

弊社の製品の供給調達機能は:

(1)生活産業~ハイテク工業までのエンドミル設計

(2)ミクロエンドミル~大型エンドミル供給

(3)小Lot生産~大量発注対応供給

(4)オートメーション整備調達

(5)スポット対応~流れ生産対応

弊社の全般供給体制及び技術自慢の総合専門製造メーカーに貴方のご体験を御待ちしております。     

Bewise Inc. talaşlı imalat sanayinde en fazla kullanılan ve üç eksende (x,y,z) talaş kaldırabilen freze takımlarından olan Parmak Freze imalatçısıdır. Çok geniş ürün yelpazesine sahip olan firmanın başlıca ürünlerini Karbür Parmak Frezeler, Kalıpçı Frezeleri, Kaba Talaş Frezeleri, Konik Alın Frezeler, Köşe Radyüs Frezeler, İki Ağızlı Kısa ve Uzun Küresel Frezeler, İç Bükey Frezeler vb. şeklinde sıralayabiliriz. 

BW специализируется в научных исследованиях и разработках, и снабжаем самым высокотехнологичным карбидовым материалом для поставки режущих / фрезеровочных инструментов для почвы, воздушного пространства и электронной индустрии. В нашу основную продукцию входит твердый карбид / быстрорежущая сталь, а также двигатели, микроэлектрические дрели, IC картонорезальные машины, фрезы для гравирования, режущие пилы, фрезеры-расширители, фрезеры-расширители с резцом, дрели, резаки форм для шлицевого вала / звездочки роликовой цепи, и специальные нано инструменты. Пожалуйста, посетите сайт  www.tool-tool.com  для получения большей информации.

BW is specialized in R&D and sourcing the most advanced carbide material with high-tech coating to supply cutting / milling tool for mould & die, aero space and electronic industry. Our main products include solid carbide / HSS end mills, micro electronic drill, IC card cutter, engraving cutter, shell end mills, cutting saw, reamer, thread reamer, leading drill, involute gear cutter for spur wheel, rack and worm milling cutter, thread milling cutter, form cutters for spline shaft/roller chain sprocket, and special tool, with nano grade. Please visit our web  www.tool-tool.com  for more info.

 

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近年來,國外興起一種稱之為硬切削的新工藝,對傳統的磨削方法提岀挑戰並產一定衝擊,同時還引發了一場硬 切削是否會取代磨削的爭議。磨削加工的前景如何?下個世紀是否有新的發展?對我們生產磨床的廠家而 言,對這一發展動向肯定是感興趣的,因為它關係到我們今後的發展與生存。

 

  硬切削的概念是什麼?

 

    硬切削是指使用CBN實體刀具、CBN刀頭或陶瓷刀具來加工淬硬的工件。用硬切削這種新工藝可以切 削淬硬鋼、灰鑄鐵、球墨鑄鐵、粉末冶金和特殊材料。當然,也有一些材料如青銅等不適合採用硬切 削。用硬切削可進行車削、表面加工、攻螺紋、銑削、開槽、靠模加工、車削錐面。據美國有關文章報導,硬切削使工件光潔度始終保持16um。在正常條件下, 光潔度能達到6~8um。目前,硬切 削這種新工藝正在許多工業部門採用,如汽車製造廠用這種方法對傳動軸、各類軸傳動鏈、發動機、制動盤和製動轉子進行半精加工和精加工;飛機製造廠用這種方 法製造副翼齒輪和起落架,從油田到鋼廠到處可以看到硬切削方法的應用。機床、工具、重型卡車、農業 機具、醫用設備、罐頭模具、汽車零件都把硬切削作為其生產過程的一個組成部份。

採用硬切削工藝的優點:

1、 硬切削成本低廉,一般僅為磨削的四分之一:

2、 用硬切削不需用專用刀具、專用機械和夾具,而磨削則要求使用磨床,硬切舉賢則可在現有的NC或CNC車削中心上進行;

3、 生產率高,因為CBN刀具的切削速度可高達274m/min以上,使生產率大大提高,節省了大量時間。

 

  由於CBN刀具的成本近年來已大大降低,從而為硬切削推廣應用創造了條件。成本不僅指刀具成本,而 是每隻零件的製造成本,以較長的刀具壽命和每個切削刀頭的低成本,CBN為硬加工提供了一條最經濟的途 徑。如美國有一家公司以前用粗磨來加工一種硬質齒輪的端面,後改用硬切削作為粗加工,再進行精磨, 成本減少40%。如果把粗磨和精磨都改為硬切削,那麼加工時、夾具成本、刀具成本以及能耗都可下 降,而生產率卻可提高,並使每隻零件的成本下降55%。美國另一家生產壓力環的工廠,原工藝都是磨 削,包括內圓磨削、端面磨削、外圓磨削和球面磨削四道工序,改用硬切削後,只用VNMA332和CNMA432兩把刀具,使加工速度提高10 倍。

 

  此外,在廢物處理和環保方面,硬切削優於磨削。磨削會產生磨屑和冷卻液的混合物,這是不能再利用的 廢物,會污染環境。硬切削產生的廢屑則可再利用,這對重視環境保護的今天來講特別重要。 

 近年來,工廠的空間備受重視,與CBN刀具相比,砂輪比較大而且笨重,因此難以貯存。CBN刀具很 小,而且不必再增加新機床就可用於硬切削,從而節省了工廠的空間。

 

  硬切削的迅速發展是建立在過去幾年CBN刀具技術進步的基礎上,90年代初只能在少數幾種CBN刀具中選擇用於硬切 削。目前,用戶的選擇多了10倍。再者,速 度也大大提高,90年代初對鑄鐵的最大切削速度約為152m/min,現在最高切削速度達1524m/min,大多數連續的硬質鋼切削速度在 90~150m/min,進給量0.05~0.2mm/r,切削深度達到0.1~0.5mm。CBN的適用性擴大,過去不能用於脆性工件,現在對硬度不一 的工件都能進行加工。

   鑑於硬切削有上述許多優點,國外有關專家認為這項新技術代表了今天,也預示著明天。有的還發出了 “你為何還採用磨削”的問題。

   但是,高速機械加工和硬切削真的會取代磨削嗎

 

  磨削專家認為不會,因為磨床具有自身的一些優勢,磨削精度較高,對公差要求較嚴的加工非磨削莫屬。磨削時可以加上在線測量,在加工時間可閉合循環,這種方 法在其它機床上難以實現。而最重要的一點, 近幾年新材料層出不窮。替代了許多傳統的材料。實踐證明,磨削是加工這類新型材料的好方法。因此, 今後磨削加工仍是不可缺少的。誠然,對一般材料而言,磨削可能會遇到銑削、鉸削、車削等方法強有力 的競爭。但對諸如陶瓷、金屬陶瓷複合材料、晶須加強材料以及高溫超級合金之類的新一代材料而言,硬 切削決不是磨削的對手,而且必須用磨削進行加工。例如,磨削是加工在噴氣飛機發動機中使用的超級合 金工件的唯一方法,也是加工用陶瓷合金、陶瓷和玻璃製成的汽車和光學無件的唯一方法。新型材料一般 都具有硬脆、耐磨、耐熱等特點,聚合型材料都是絕對需要的加工手段。對耐熱和耐磨損的陶瓷塗料而 言,面臨更為複雜的問題,即要同時磨削陶瓷和金屬。

 

   隨著生產發展和技術進步,對磨床提出了許多新的要求,如美國磨削協會提出如下要求:

 主 軸轉速要達到25000r/min,可以來9144/min(152.4m/s)甚至更高的速度進行磨削;磨頭主軸設計剛性好,機床體積較小,輕便,加 工區體積可加工各種形狀的工件,範圍廣的和精密控制的拖板定位系統,採用模塊化設計和較多的標準件,與CNC相連的修整系統,可跟踪砂輪尺寸,修整器位置 以及砂輪對工件的位置國具有能監控機床狀態,機床動平衡、主軸和電動機狀態以及砂輪狀態的傳感器,監控修整時金剛三石與CBN砂輪間的接觸,監督CNB砂 輪與工件之間的接觸,以提高效率。該協會還希望具有對小工件進行緩進給成形磨削的能力,希望用平面 磨床替代平面銑床。該 協會還對21世紀的磨削提出展望,21世紀的磨床將採用磁性懸浮主軸,在15kW功率範圍內,轉速達到40000r/min,而佔地面積很小,水基靜壓軸 承可以使用水基切削液,能進行連續修整的高感應大氣孔陶瓷結合劑砂輪,用於加工陶瓷的金屬結合劑金剛砂輪可進行電解修 整。一些公司對高速磨削作了許多試驗,目前CNB砂輪的線速已達150~250m/s,並以聲速作 了試輸,下個世紀,高速磨削將更廣泛地得到應用。CNC控制將更完善,比如能處理在緩進給磨削陶瓷 時的擺線磨削,恆定的常用進給量磨削使砂輪最優化,能減少磨削時間的切入式和縱向進向進給磨削,在平面磨床上作外圓磨削,以及一個坐標軸或幾個坐標軸的進 給量補償,以便使磨削循環最佳化。

引用出處: 

 

http://tw.myblog.yahoo.com/lifung-biz/article?mid=4392&prev=-1&next=4389

 

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Caesium or cesium[note 1] ( /ˈsiːziəm/ SEE-zee-əm) is the chemical element with the symbol Cs and atomic number 55. It is a soft, silvery-gold alkali metal with a melting point of 28 °C (82 °F), which makes it one of only five elemental metals that are liquid at (or near) room temperature.[note 2] Caesium is an alkali metal and has physical and chemical properties similar to those of rubidium and potassium. The metal is extremely reactive and pyrophoric, reacting with water even at −116 °C (−177 °F). It is the least electronegative element that has stable isotopes, of which it has only one, caesium-133. Caesium is mined mostly from pollucite, while the radioisotopes, especially caesium-137, are extracted from waste produced by nuclear reactors.

Two German chemists, Robert Bunsen and Gustav Kirchhoff, discovered caesium in 1860 by the newly developed method of flame spectroscopy. The first small-scale applications for caesium have been as a "getter" in vacuum tubes and in photoelectric cells. In 1967, a specific frequency from the emission spectrum of caesium-133 was chosen to be used in the definition of the second by the International System of Units. Since then, caesium has been widely used in atomic clocks.

Since the 1990s, the largest application of the element has been as caesium formate for drilling fluids. It has a range of applications in the production of electricity, in electronics, and in chemistry. The radioactive isotope caesium-137 has a half-life of about 30 years and is used in medical applications, industrial gauges, and hydrology. Although the element is only mildly toxic, it is a hazardous material as a metal and its radioisotopes present a high health risk in case of radiation leaks.

 

 

Contents

[hide]

  • 1 Characteristics
    • 1.1 Physical properties
    • 1.2 Chemical properties
    • 1.3 Compounds
      • 1.3.1 Complexes
      • 1.3.2 Halides
      • 1.3.3 Oxides
    • 1.4 Isotopes
    • 1.5 Occurrence
  • 2 Production
  • 3 History
  • 4 Applications
    • 4.1 Petroleum exploration
    • 4.2 Atomic clocks
    • 4.3 Electric power and electronics
    • 4.4 Centrifugation fluids
    • 4.5 Chemical and medical use
    • 4.6 Nuclear and isotope applications
    • 4.7 Other uses
    • 4.8 Prognostications
  • 5 Health and safety hazards
  • 6 See also
  • 7 Notes
  • 8 References
  • 9 External links

[edit] Characteristics

[edit] Physical properties

 

 

 

 

 

High-purity caesium-133 preserved under argon

Caesium is a very soft (it has the lowest Mohs hardness of all elements), very ductile, silvery-white metal, which develops a silvery-gold hue in the presence of trace amounts of oxygen.[6][7] It has a melting point of 28.4 °C (83.1 °F), making it one of the few elemental metals which are liquid near room temperature. Mercury is the only metal with a known melting point lower than caesium.[note 3][9] In addition, the metal has a rather low boiling point, 641 °C (1,186 °F), the lowest of all metals other than mercury.[10] Its compounds burn with a blue color.[11]

Caesium forms alloys with the other alkali metals as well as with gold, and amalgams with mercury. At temperatures below 650 °C (1,202 °F), it alloys with cobalt, iron, molybdenum, nickel, platinum, tantalum or tungsten. It forms well-defined intermetallic compounds with antimony, gallium, indium and thorium, which are photosensitive.[6] It mixes with the other alkali metals (except with lithium), and the alloy with a molar distribution of 41% caesium, 47% potassium, and 12% sodium has the lowest melting point of any known metal alloy, at −78 °C (−108 °F).[9][12] A few amalgams have been studied: CsHg2 is black with a purple metallic lustre, while CsHg is golden-coloured, also with a metallic lustre.[13]

[edit] Chemical properties

 

 

 

 

 

 

 

 

Addition of a small amount of caesium to cold water is explosive.

Caesium metal is highly reactive and very pyrophoric. In addition to igniting spontaneously in air, it reacts explosively with water even at low temperatures, more so than other members of the first group of the periodic table.[6] The reaction with solid water occurs at temperatures as low as −116 °C (−177 °F).[9] Because of its high reactivity, the metal is classified as a hazardous material. It is stored and shipped in dry saturated hydrocarbons such as mineral oil. Similarly, it must be handled under inert atmosphere such as argon or nitrogen. It can be stored in vacuum-sealed borosilicate glass ampoules. In quantities of more than about 100 grams (3.5 oz), caesium is shipped in hermetically sealed stainless steel containers.[6]

The chemistry of caesium is similar to that of other alkali metals, but is more closely similar to that of rubidium, the element above caesium in the periodic table.[14] Some small differences arise from the fact that it has a higher atomic mass and is more electropositive than other (non-radioactive) alkali metals.[15] Caesium is the most electropositive stable chemical element.[note 4][9] The caesium ion is also larger and less "hard" than those of the lighter alkali metals.

[edit] Compounds

 

 

 

 

Ball-and-stick model of the cubic coordination of Cs and Cl in CsCl

 

The vast majority of caesium compounds contain the element as the cation Cs+

, which binds ionically to a wide variety of anions. One noteworthy exception is provided by the caeside anion (Cs−

).[17] Other exceptions include the several suboxides (see section on oxides below).

Returning to more normal compounds, salts of Cs+ are almost invariably colorless unless the anion itself is colored. Many of the simple salts are hygroscopic, but less so than the corresponding salts of the lighter alkali metals. The acetate, carbonate, halides, oxide, nitrate, and sulfate salts are water-soluble. Double salts are often less soluble, and the low solubility of cesium aluminum sulfate is exploited in the purification of Cs from its ores. The double salt with antimony (such as CsSbCl4), bismuth, cadmium, copper, iron, and lead are also poorly soluble.[6]

Caesium hydroxide (CsOH) is hygroscopic and a very strong base.[14] It rapidly etches the surface of semiconductors such as silicon.[18] CsOH has been previously regarded by chemists as the "strongest base", reflecting the relatively weak attraction between the large Cs+ ion and OH-.[11] Many compounds are far more basic than CsOH, such as n-butyllithium and sodium amide.[14]

[edit] Complexes

Like all metal cations, Cs+ forms complexes with Lewis bases in solution. Because of its large size, Cs+ usually adopts coordination numbers greater than six-coordination, which is typical for the lighter alkali metal cations. This trend is already apparent by the 8-coordination in CsCl, vs the halite motif adopted by the other alkali metal chlorides. Its high coordination number and softness (tendency to form covalent bonds) are the basis of the separation of Cs+ from other cations, as is practiced in the remediation of nuclear wastes, where 137Cs+ is separated from large amounts of non-radioactive K+.[19]

[edit] Halides

 

Caesium chloride (CsCl) crystallizes in the simple cubic crystal system. Also called the "caesium chloride structure",[15] this structural motif is composed of a primitive cubic lattice with a two-atom basis, each with an eightfold coordination; the chloride atoms lie upon the lattice points at the edges of the cube, while the caesium atoms lie in the holes in the center of the cubes. This structure is shared with CsBr and CsI, and many other compounds that do not contain Cs. In contrast, most other alkaline halides adopt the sodium chloride (NaCl) structure.[15] The CsCl structure is preferred because Cs+ has an ionic radius of 174 pm and Cl−

181 pm.[20]

[edit] Oxides

 

 

 

 

Cs11O3 cluster

More so than the other alkali metals, caesium forms numerous binary compounds with oxygen. When caesium burns in air, the superoxide CsO2 is the main product.[21] The "normal" caesium oxide (Cs2O) forms yellow-orange hexagonal crystals,[22] and is the only oxide of the anti-CdCl2 type.[23] It vaporizes at 250 °C (482 °F), and decomposes to caesium metal and the peroxide Cs2O2 at temperatures above 400 °C (752 °F).[24] Aside from the superoxide and the ozonide CsO3,[25][26] several brightly colored suboxides have also been studied.[27] These include Cs7O, Cs4O, Cs11O3, Cs3O (dark-green[28]), CsO, Cs3O2,[29] as well as Cs7O2.[30][31] The latter may be heated under vacuum to generate Cs2O.[23] Binary compounds with sulfur, selenium, and tellurium also exist.[6]

[edit] Isotopes

Main article: Isotopes of caesium

Caesium has a total of 39 known isotopes that range in their mass number (i.e. number of nucleons in its nucleus) from 112 to 151. Several of these are synthesized from lighter elements by the slow neutron capture process (S-process) inside old stars,[32] as well as inside supernova explosions (R-process).[33] However, the only stable isotope is 133Cs, which has 78 neutrons. Although it has a large nuclear spin (7/2+), nuclear magnetic resonance studies can be done with this isotope at a resonating frequency of 11.7 MHz.[34]

 

 

 

 

Decay of caesium-137

The radioactive 135Cs has a very long half-life of about 2.3 million years, while 137Cs and 134Cs have half-lives of 30 and 2 years, respectively. 137Cs decomposes to a short-lived 137mBa by beta decay, and then to non-radioactive barium, while 134Cs transforms into 134Ba directly. The isotopes with mass numbers of 129, 131, 132 and 136, have half-times between a day and two weeks, while most of the other isotopes have half-lives from a few seconds to fractions of a second. There are at least 21 metastable nuclear isomers. Other than 134mCs (with a half-life of just under 3 hours), all are very unstable and decay with half-lives of a few minutes or less.[35][36]

The isotope 135Cs is one of medium-lived fission products of uranium which form in nuclear reactors.[37] However, its fission product yield is reduced in most reactors because its predecessor, 135Xe, is an extremely potent neutron poison and transmutes frequently to stable 136Xe before it can decay to 135Cs.[38][39]

Because of its beta decay (to 137mBa), 137Cs is a strong emitter of gamma radiation.[40] Its half-life makes it the principal long-lived fission product along with 90Sr—both are responsible for radioactivity of spent nuclear fuel after several years of cooling up to several hundred years after use.[41] For example 137Cs together with 90Sr currently generate the largest source of radioactivity generated in the area around the Chernobyl disaster.[42] It is not feasible to dispose of 137Cs through neutron capture (due to the low capture rate) and as a result it must be allowed to decay.[43]

Almost all caesium produced from nuclear fission comes from beta decay of originally more neutron-rich fission products, passing through various isotopes of iodine and of xenon.[44] Because iodine and xenon are volatile and can diffuse through nuclear fuel or air, radioactive caesium is often created far from the original site of fission.[45] With the commencement of nuclear weapons testing around 1945, 137Cs was released into the atmosphere and then returned to the surface of the earth as a component of radioactive fallout.[6]

[edit] Occurrence

 

 

 

 

Pollucite, a caesium mineral

See also: Caesium minerals

Caesium is a relatively rare element as it is estimated to average approximately 3 parts per million in the Earth’s crust.[46] This makes it the 45th most abundant of all elements and the 36th of all the metals. Nevertheless, it is more abundant than such elements as antimony, cadmium, tin and tungsten, and two orders of magnitude more abundant than mercury or silver, but 30 times less abundant than rubidium—with which it is so closely chemically associated.[6]

Due to its large ionic radius, caesium is one of the "incompatible elements."[47] During magma crystallization, caesium is concentrated in the liquid phase and crystallizes last. Therefore the largest deposits of caesium are zone pegmatite ore bodies formed by this enrichment process. Because caesium does not substitute for potassium as readily as does rubidium, the alkali evaporite minerals sylvite (KCl) and carnallite (KMgCl3·6H2O) may contain only 0.002% caesium. Consequently, Cs is found in few minerals. Percent amounts of caesium may be found in beryl (Be3Al2(SiO3)6) and avogadrite ((K,Cs)BF4), up to 15 wt% Cs2O in the closely related mineral pezzottaite (Cs(Be2Li)Al2Si6O18), up to 8.4 wt% Cs2O in the rare mineral londonite ((Cs,K)Al4Be4(B,Be)12O28), and less in the more widespread rhodizite.[6] The only economically important source mineral for caesium is pollucite Cs(AlSi2O6), which is found in a few places around the world in zoned pegmatites, and is associated with the more commercially important lithium minerals lepidolite and petalite. Within the pegmatites, the large grain size and the strong separation of the minerals create high-grade ore for mining.[48]

One of the world's most significant and richest sources of the metal is the Tanco mine at Bernic Lake in Manitoba, Canada. The deposits there are estimated to contain 350,000 metric tons of pollucite ore, which represents more than two-thirds of the world’s reserve base.[48][49] Although the stoichiometric content of caesium in pollucite is 42.6%, pure pollucite samples from this deposit contain only about 34% caesium, while the average content is 24 wt%.[49] Commercial pollucite contains over 19% caesium.[50] The Bikita pegmatite deposit in Zimbabwe is mined for its petalite but it also contains a significant amount of pollucite. Notable amounts of pollucite are also mined in the Karibib Desert, Namibia.[49] At the present rate of world mine production of 5 to 10 metric tons per year, reserves will last thousands of years.[6]

[edit] Production

The mining of pollucite ore is a selective process and is conducted on a small scale in comparison with most metal mining operations. The ore is crushed, hand-sorted, but not usually concentrated, and then ground. Caesium is then extracted from pollucite mainly by three methods: acid digestion, alkaline decomposition, and direct reduction.[6][51]

In the acid digestion, the silicate pollucite rock is dissolved with strong acids such as hydrochloric (HCl), sulfuric (H2SO4), hydrobromic (HBr), or hydrofluoric (HF). With hydrochloric acid, a mixture of soluble chlorides is produced, and the insoluble chloride double salts of caesium are precipitated as caesium antimony chloride (Cs4SbCl7), caesium iodine chloride (Cs2ICl), or caesium hexachlorocerate (Cs2(CeCl6)). After separation, the pure precipitated double salt is decomposed, and pure CsCl is obtained after evaporating the water. The method using sulfuric acid yields the insoluble double salt directly as caesium alum (CsAl(SO4)2·12H2O). The aluminium sulfate in it is converted to the insoluble aluminium oxide by roasting the alum with carbon, and the resulting product is leached with water to yield a Cs2SO4 solution.[6]

The roasting of pollucite with calcium carbonate and calcium chloride yields insoluble calcium silicates and soluble caesium chloride. Leaching with water or dilute ammonia (NH4OH) yields then a dilute chloride (CsCl) solution. This solution can be evaporated to produce caesium chloride or transformed into caesium alum or caesium carbonate. Albeit not commercially feasible, direct reduction of the ore with potassium, sodium or calcium in vacuum can produce caesium metal directly.[6]

Most of the mined caesium (as salts) is directly converted into caesium formate (HCOO−Cs+) for applications such as oil drilling. To supply the developing market, Cabot Corporation built a production plant in 1997 at the Tanco Mine near Bernic Lake in Manitoba, Canada, with a capacity of 12,000 barrels per year of caesium formate solution.[52] The primary smaller-scale commercial compounds of caesium are caesium chloride and its nitrate.[53]

Alternatively, caesium metal may be obtained from the purified compounds derived from the ore. Caesium chloride, and the other caesium halides as well, can be reduced at 700 to 800 °C (1,292 to 1,472 °F) with calcium or barium, followed by distillation of the caesium metal. In the same way, the aluminate, carbonate, or hydroxide may be reduced by magnesium.[6] The metal can also be isolated by electrolysis of fused caesium cyanide (CsCN). Exceptionally pure and gas-free caesium can be made by the thermal decomposition at 390 °C (734 °F) of caesium azide CsN3, which is produced from aqueous caesium sulfate and barium azide.[51] In vacuum applications, caesium dichromate can be reacted with zirconium forming pure caesium metal without other gaseous products.[53]

 

Cs2Cr2O7 + 2 Zr → 2 Cs + 2 ZrO2+ Cr2O3

The price of 99.8% pure caesium (metal basis) in 2009 was about US$10 per gram ($280 per ounce), but its compounds are significantly cheaper.[49]

[edit] History

 

 

 

 

Gustav Kirchhoff (left) and Robert Bunsen (center) discovered caesium spectroscopically.

In 1860, Robert Bunsen and Gustav Kirchhoff discovered caesium in the mineral water from Dürkheim, Germany. Due to the bright blue lines in its emission spectrum, they chose a name derived from the Latin word caesius, meaning sky-blue.[note 5][54][55][56] Caesium was the first element to be discovered spectroscopically, only one year after the invention of the spectroscope by Bunsen and Kirchhoff.[9]

To obtain a pure sample of caesium, 44,000 litres (9,700 imp gal; 12,000 US gal) of mineral water had to be evaporated to yield 240 kilograms (530 lb) of concentrated salt solution. The alkaline earth metals were precipitated either as sulfates or oxalates, leaving the alkali metal in the solution. After conversion to the nitrates and extraction with ethanol, a sodium-free mixture was obtained. From this mixture, the lithium was precipitated by ammonium carbonate. Potassium, rubidium and caesium form insoluble salts with chloroplatinic acid, but these salts show a slight difference in solubility in hot water. Therefore, the less-soluble caesium and rubidium hexachloroplatinate ((Cs,Rb)2PtCl6) could be obtained by fractional crystallization. After reduction of the hexachloroplatinate with hydrogen, caesium and rubidium could be separated by the difference in solubility of their carbonates in alcohol. The process yielded 9.2 grams (0.32 oz) of rubidium chloride and 7.3 grams (0.26 oz) of caesium chloride from the initial 44,000 liters of mineral water.[55]

The two scientists used the caesium chloride thus obtained to estimate the atomic weight of the new element at 123.35 (compared to the currently accepted one of 132.9).[55] They tried to generate elemental caesium by electrolysis of molten caesium chloride, but instead of a metal, they obtained a blue homogenous substance which "neither under the naked eye nor under the microscope" showed the slightest trace of metallic substance;" as a result, they assigned it as a subchloride (Cs2Cl). In reality, the product was probably a colloidal mixture of the metal and caesium chloride.[57] The electrolysis of the aqueous solution of chloride with a mercury anode produced a caesium amalgam which readily decomposed under the aqueous conditions.[55] The pure metal was eventually isolated by the German chemist Carl Setterberg while working on his doctorate with Kekule and Bunsen.[56] In 1882 he produced caesium metal by electrolyzing caesium cyanide, and thus avoiding the problems with the chloride.[58]

Historically, the most important use for caesium has been in research and development, primarily in chemical and electrical fields. Very few applications existed for caesium until the 1920s when it became used in radio vacuum tubes. It had two functions: as a getter it removed excess oxygen after manufacture, and as a coating on the heated cathode, it increased its electrical conductivity. Caesium did not become recognized as a high-performance industrial metal until the 1950s.[59] Applications of non-radioactive caesium included photoelectric cells, photomultiplier tubes, optical components of infrared spectrophotometers, catalysts for several organic reactions, crystals for scintillation counters, and in magnetohydrodynamic power generators.[6]

Since 1967, the International System of Measurements has based its unit of time, the second, on the properties of caesium. The International System of Units (SI) defines the second as 9,192,631,770 cycles of the radiation, which corresponds to the transition between two hyperfine energy levels of the ground state of the caesium-133 atom.[60] The 13th General Conference on Weights and Measures of 1967 defined a second as: "the duration of 9,192,631,770 cycles of microwave light absorbed or emitted by the hyperfine transition of caesium-133 atoms in their ground state undisturbed by external fields".

[edit] Applications

[edit] Petroleum exploration

The largest current end-use of caesium is in caesium formate-based drilling fluids for the extractive oil industry.[citation needed] Aqueous solutions of caesium formate (HCOO-Cs+)—made by reacting caesium hydroxide with formic acid—were developed in the mid-1990s for use as oil well drilling and completion fluids. The function of caesium formate as a drilling fluid is to lubricate drill bits, to bring rock cuttings to the surface, and to maintain pressure on the formation during drilling of the well; as completion fluid (which refers to the emplacement of control hardware after drilling but prior to production) is to maintain the pressure.[6]

The high density of the caesium formate brine (up to 2.3 g·cm−3, or 19.2 pounds per gallon),[61] coupled with the relatively benign nature of most caesium compounds, reduces the requirement for toxic high-density suspended solids in the drilling fluid—a significant technological, engineering and environmental advantage. Unlike the components of many other heavy liquids, caesium formate is relatively environment-friendly.[61] The caesium formate brine can be blended with potassium and sodium formates to decrease the density of the fluids down to that of water (1.0 g·cm−3, or 8.3 pounds per gallon). Furthermore, it is biodegradable and reclaimable, and may be recycled, which is important in view of its high cost (about $4,000 per barrel in 2001).[62] Alkali formates are safe to handle and do not damage the producing formation or downhole metals as their corrosive alternative, high-density brines (such as zinc bromide ZnBr2 solutions),sometimes do; they also require less cleanup and disposal costs.[6]

[edit] Atomic clocks

 

 

 

 

Atomic clock ensemble at the U.S. Naval Observatory

 

 

 

 

FOCS-1, a continuous cold caesium fountain atomic clock in Switzerland, started operating in 2004 at an uncertainty of one second in 30 million years

Caesium-based atomic clocks observe electromagnetic transitions in the hyperfine structure of caesium-133 atoms and use it as a reference point. The first accurate caesium clock was built by Louis Essen in 1955 at the National Physical Laboratory in the UK.[63] Since then, they have been improved repeatedly over the past half-century, and form the basis for standards-compliant time and frequency measurements. These clocks measure frequency with an accuracy of 2 to 3 parts in 1014, which would correspond to a time measurement accuracy of 2 nanoseconds per day, or one second in 1.4 million years. The latest versions in the United States and France are accurate to 1.7 parts in 1015, which means they would be off by about 4 seconds since the extinction of the dinosaurs 65 million years ago,[6] and has been regarded as "the most accurate realization of a unit that mankind has yet achieved."[60]

Caesium clocks are also used in networks that oversee the timing of cell phone transmissions and the information flow on the Internet.[64]

[edit] Electric power and electronics

Caesium vapor thermionic generators are low-power devices that convert heat energy to electrical energy. In the two-electrode vacuum tube converter, it neutralizes the space charge that builds up near the cathode, and in doing so, it enhances the current flow.[65]

Caesium is also important for its photoemissive properties by which light energy is converted to electron flow. It is used in photoelectric cells because caesium-based cathodes such as the intermetallic compound K2CsSb have low threshold voltage for emission of electrons.[66] The range of photoemissive devices using caesium include optical character recognition devices, photomultiplier tubes, and video camera tubes.[67][68] Nevertheless, germanium, rubidium, selenium, silicon, tellurium, and several other elements can substitute caesium in photosensitive materials.[6]

Caesium iodide (CsI), bromide (CsBr) and caesium fluoride (CsF) crystals are employed for scintillators in scintillation counters widely used in mineral exploration and particle physics research as they are well suited for the detection of gamma and x-ray radiation. Caesium, being a heavy element, provides good stopping power contributing to better detectivity. Caesium compounds may also provide a faster response (CsF) and be less hygroscopic (CsI).

Caesium vapor is used in many common magnetometers.[69] The element is also used as an internal standard in spectrophotometry.[70] Like other alkali metals, caesium has a great affinity for oxygen and is used as a "getter" in vacuum tubes.[71] Other uses of the metal include high-energy lasers, vapor glow lamps, and vapor rectifiers.[6]

[edit] Centrifugation fluids

Because of their high density, solutions of caesium chloride (CsCl), sulfate (Cs2SO4), and trifluoroacetate (Cs(O2CCF3)) are commonly used in molecular biology for density gradient ultracentrifugation.[72] This technology is primarily applied to the isolation of viral particles, sub-cellular organelles and fractions, and nucleic acids from biological samples.[73]

[edit] Chemical and medical use

 

 

 

 

A sample of caesium chloride

Relatively few chemical applications exist for caesium.[74] Doping with caesium compounds is used to enhance the effectiveness of several metal-ion catalysts used in the production of chemicals, such as acrylic acid, anthraquinone, ethylene oxide, methanol, phthalic anhydride, styrene, methyl methacrylate monomers, and various olefins. It is also used in the catalytic conversion of sulfur dioxide into sulfur trioxide in the production of sulfuric acid.[citation needed]

Caesium fluoride enjoys niche use in organic chemistry as a base,[14] or as an anhydrous source of fluoride ion.[75] Caesium salts sometimes replace potassium or sodium salts in organic synthesis, such as cyclization, esterification, and polymerization.

[edit] Nuclear and isotope applications

Caesium-137 is a very common radioisotope used as a gamma-emitter in industrial applications. Its advantages include a half-life of roughly 30 years, its availability from the nuclear fuel cycle, and having 137Ba as stable end product. The high water solubility is a disadvantage which makes it incompatible with irradiation of food and medical supplies.[76] It has been used in agriculture, cancer treatment, and the sterilization of food, sewage sludge, and surgical equipment.[6][77] Radioactive isotopes of caesium in radiation devices were used in the medical field to treat certain types of cancer,[78] but emergence of better alternatives and the use of water-soluble caesium chloride in the sources, which could create wide-ranging contamination, gradually put some of these caesium sources out of use.[79][80] Caesium-137 has been employed in a variety of industrial measurement gauges, including moisture, density, leveling, and thickness gauges.[81] It has also been used in well logging devices for measuring the electron density of the rock formations, which is analogous to the bulk density of the formations.[82]

Isotope 137 has also been used in hydrologic studies analogous to those using tritium. It is produced from detonation of nuclear weapons and emissions from nuclear power plants. With the commencement of nuclear testing around 1945, and continuing through the mid-1980s, caesium-137 was released into the atmosphere where it is absorbed readily into solution. Known year-to-year variation within that period allows correlation with soil and sediment layers. Caesium-134, and to a lesser extent caesium-135, have also been used in hydrology as a measure of caesium output by the nuclear power industry. While they are less prevalent than either caesium-133 or caesium-137, these isotopes have the advantage of being produced solely from anthropogenic sources.[83]

[edit] Other uses

 

 

 

 

Schematics of an electrostatic ion thruster which was initially developed for use with caesium or mercury

Caesium and mercury were used as a propellant in early ion engines designed for spacecraft propulsion on very long interplanetary or extraplanetary missions. The ionization method was to strip the outer electron from the propellant upon contact with a tungsten electrode that had voltage applied. Concerns about the corrosive action of caesium on spacecraft components have pushed development in the direction of use of inert gas propellants such as xenon; this is easier to handle in ground-based tests and has less potential to interfere with the spacecraft.[6] Eventually, xenon was used in the experimental spacecraft Deep Space 1 launched in 1998.[84][85] Nevertheless, field emission electric propulsion thrusters which use a simple system of accelerating liquid metal ions such as of caesium to create thrust have been built.[86]

Caesium nitrate is used as an oxidizer and pyrotechnic colorant to burn silicon in infrared flares[87] such as the LUU-19 flare,[88] because it emits much of its light in the near infrared spectrum.[89] Caesium has been used to reduce the radar signature of exhaust plumes in the SR-71 Blackbird military aircraft.[90] Caesium, along with rubidium, has been added as a carbonate to glass because it reduces electrical conductivity and improves stability and durability of fiber optics and night vision devices. Caesium fluoride or caesium aluminium fluoride are used in fluxes formulated for the brazing of aluminium alloys that contain magnesium.[6]

[edit] Prognostications

Magnetohydrodynamic (MHD) power-generating systems were researched but failed to gain widespread acceptance.[91] Caesium metal has also been considered as the working fluid in high-temperature Rankine cycle turboelectric generators.[92] Caesium salts have been evaluated as antishock reagents to be used following the administration of arsenical drugs. Because of their effect on heart rhythms, however, they are less likely to be used than potassium or rubidium salts. They have also been used to treat epilepsy.[6]

[edit] Health and safety hazards

 

 

 

 

The portion of the total radiation dose (in air) contributed by each isotope versus time after the Chernobyl disaster depicting caesium-137 becoming the largest source of radiation about 200 days after the accident.[93]

Caesium compounds are rarely encountered by most people, but most caesium compounds are mildly toxic because of chemical similarity of caesium to potassium. Exposure to large amounts of caesium compounds can cause hyperirritability and spasms, but as such amounts would not ordinarily be encountered in natural sources, caesium is not a major chemical environmental pollutant.[94] The median lethal dose (LD50) value for caesium chloride in mice is 2.3 g per kilogram, which is comparable to the LD50 values of potassium chloride and sodium chloride.[95]

 

NFPA 704

 

 

 

3

3

2

W

The fire diamond hazard sign for caesium metal

Caesium metal is one of the most reactive elements and is highly explosive when it comes in contact with water. The hydrogen gas produced by the reaction is heated by the thermal energy released at the same time, causing ignition and a violent explosion. This can occur with other alkali metals, but caesium is so potent that this explosive reaction can even be triggered by cold water.[6] The metal is highly pyrophoric, and ignites spontaneously in air to form caesium hydroxide and various oxides. Caesium hydroxide is a very strong base, and can rapidly corrode glass.[10]

The isotopes 134 and 137 (present in the biosphere in small amounts from radiation leaks) represent a radioactivity burden which varies depending on location. Radiocaesium does not accumulate in the body as effectively as many other fission products (such as radioiodine and radiostrontium). As with other alkali metals, radiocaesium washes out of the body relatively quickly in sweat and urine. However, radiocaesium follows potassium and tends to accumulate in plant tissues, including fruits and vegetables.[96][97][98] Accumulation of caesium-137 in lakes has been a high concern after the Chernobyl disaster.[99][100] Experiments with dogs showed that a single dose of 3800 μCi (4.1 μg of caesium-137) per kilogram is lethal within three weeks;[101] smaller amounts may cause infertility and cancer.[102] The International Atomic Energy Agency and other sources have warned that radioactive materials, such as caesium-137, could be used in radiological dispersion devices, or “dirty bombs”.[

 

引用出處: 

 http://en.wikipedia.org/wiki/Caesium

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铯,英文名 Caesium,元素符号Cs,原子序数为55,原子量为132.90543。铯铯是软而轻、熔点很低的金属,纯净的金属铯呈金黄色;熔点28.4°C, 沸点669.3°C,密度1.8785克/厘米3。铯可产生突出的光电效应,极易电离而放出电子,是光电管的主要材料;近年来在离子火箭、磁流体发电机和 热电换能器等方面也有新的应用。

纠错 编辑摘要

目录

  • 1 概述
  • 2 性质
  • 3 特点
  • 4 来源及用途
  • 5 发现
  •  

  • 1 概述
  • 2 性质
  • 3 特点
  • 4 来源及用途
  • 5 发现
  • 6 最软的金属
  • 7 原子钟
  • 8 参考资料

 

 

铯 - 概述

铯 与水和-116°C的冰反应都很剧烈;碘化铯与三碘化铋反应能生成难溶的亮红色复盐,此反应用来定性和定量测定铯;铯的火焰成紫红色,可用来检验铯。元素 名来源于拉丁文,原意是“天蓝”。1860年德国化学家本生和基尔霍夫在研究矿泉水残渣的光谱时发现铯,因其光谱上有独特的蓝线而得名。铯在地壳中的含量 为百万分之七,主要矿物为铯榴石。

 

铯 - 性质

 

原子体积:(立方厘米/摩尔) :71.07

元素在太阳中的含量:(ppm):0.008

元素在海水中的含量:(ppm) :30000

地壳中含量:(ppm) :3

氟化铯

 

名称, 符号, 序号  铯、Cs、55 

系列  碱金属 

族, 周期, 元素分区  1族, 6, s 

密度、硬度  1879 kg/m3、0.2 

颜色和外表  银金色

Image:Cs,55.jpg 

地壳含量  6×10-4% 

原子属性 

原子量  132.9054519(2) 原子量单位 

原子半径 (计算值)  260(298)pm 

共价半径  225 pm 

莫氏硬度:0.2 

氧化态:Main  Cs-1, Cs+1

 

晶胞参数:

a = 614.1 pm

b = 614.1 pm

c = 614.1 pm

α = 90°

β = 90°

γ = 90°

 

电离能 (kJ /mol) 

M - M+ 375.7

M+ - M2+ 2420

M2+ - M3+ 3400

M3+ - M4+ 4400

M4+ - M5+ 6000

M5+ - M6+ 7100

M6+ - M7+ 8300

M7+ - M8+ 11300

M8+ - M9+ 12700

高强度单片铯钾防火玻璃

 

M9+ - M10+ 23700

 

价电子排布  [氙]6s1 

电子在每能级的排布  2,8,18,18,8,1 

氧化价(氧化物)  1(强碱性) 

晶体结构  体新立方格 

物理属性 

物质状态  固态(顺磁性) 

熔点  301.59 K(28.44 °C) 

沸点  944 K(671 °C) 

摩尔体积  70.94×10-6m3/mol 

汽化热  67.74 kJ/mol 

熔化热  2.092 kJ/mol 

蒸气压  2500 帕(1112K) 

声速  无数据 

其他性质 

电负性  0.79(鲍林标度) 

比热  240 J/(kg•K) 

电导率  4.89×106/(米欧姆) 

热导率  35.9 W/(m•K) 

第一电离能 375.7 kJ/mol 

第二电离能 2234.3 kJ/mol 

第三电离能 3400 kJ/mol 

最稳定的同位素 

 

同位素  丰度  半衰期  衰变模式  衰变能量

MeV  衰变产物 

133Cs 100 %  稳定 

134Cs 人造  2.05年 电子捕获

β衰变

2.06 134Xe

134Ba 

135Cs 微量  2.0×106年 β衰变 2.10 135Ba 

137Cs 人造  30.17年 β衰变 1.17 137Ba

元素序号:55

元素符号:Cs

元素名称:铯

元素原子量:132.9

元素类型:金属

 

铯 - 特点

银 白色金属,性软而轻,具有延展性。密度1.8785克/厘米3。熔点28.40±0.01℃,沸点678.4℃。化合价+1。电离能3.894电子伏特。 在碱金属中它是最活泼的,能和氧发生剧烈反应,生成多种氧化物的混合物。在潮湿空气中,氧化的热量足以使铯熔化并点燃。铯不与氮反应,但在高温下能与氢反 应,生成相当稳定的氢化物。铯和水,甚至和温度低到-116℃的冰均可发生猛烈反应。与卤素也可生成稳定的卤化物,这是由于它的离子半径大所带来的特点。 铯和有机物也会发生同其他碱金属相类似的反应,但它比较活泼。氯化铯是它的主要化合物。

 

铯 - 来源及用途

 

来源:自然界中铯盐存在于矿物中,也有少量氯化铯存在于光卤石。由氯化铯用钙还原制取。

元 素用途:在光的作用下,铯会放出电子,金属铯主要用于制造光电管、摄谱仪、闪烁计数器、无线电电子管、军用红外信号灯以及各种光学仪器和检测仪器中。它的 化合物用于玻璃和陶瓷的生产,用作二氧化碳净化装置中的吸收剂、无线电电子管吸气剂和微量化学中。在医药上铯盐还可用作服用含砷药物后的防休克剂。同位素 铯-137可用以治疗癌症。

 

铯 - 发现

发现人:本生、基尔霍夫,发现年代:其实早在1846

钾铯防火玻璃

年, 德国弗赖贝格(Freiberg)冶金学教授普拉特勒曾经分析了鳞云母(又称红云母)的矿石时,误将硫酸铯当成了硫酸钠和硫酸钾的混合物了。铯从他手中溜 走了。1860年,光谱分析比化学分析灵敏度高,在地壳中含量较少的铯、铷、铊、铟,在逃过了分析化学家们的手之后,就被光谱分析的关卡逮捕住了。

 

1860 年,本生和基尔霍夫创建光谱分析的这一年,他们用分光镜在浓缩的杜克海姆矿泉水中发现有一个新的碱金属存在。他们在一篇报告中叙述着:“蒸发掉40吨矿泉 水,把石灰、锶土和苦土沉淀后,用碳酸铵除去锂土,得到的滤液在分光镜中除显示出钠、钾和锂的谱线外,还有两条明亮的蓝线,在锶线附近。现在并无已知的简 单物质能在光谱的这一部分显现出这两条蓝线。经过研究可以得出结论,必有一未知的简单物质存在,属于碱金属族。我们建议把这一物质叫做 caesium(铯),符号为Cs。命名来自拉丁文caesius,古代人们用它指晴朗天空的蓝色。 金属铯一直到1882年才由德国化学家塞特贝格电解氰化铯(CsCN)和氰化钡(Ba(CN)2)的混合物获得。

 

铯 - 最软的金属

最软的金属——铯 (可用小刀切割),如果有人问,自然界里最软的金属元素是什么?你可以这样回答,铯就是最软的金属,它甚至比石蜡还软。

 

铯具有活泼的个性,它本来披着一件漂亮的银白色的“外衣

氟化铯

”, 可是一与空气接触,马上就换成了灰蓝色,甚至不到一分钟就自动地燃烧起来,发出玫瑰般的紫红色或蓝色的光辉,把它投到水里,会立即发生强烈的化学反应,着 火燃烧,有时还会引起爆炸。即使把它放在冰上,也会燃烧起来。正因为它这么地“不老实”,平时人们就把它“关”在煤油里,以免与空气、 水接触。最有意思的是,铯的熔点很低,很容易就能变成液体。一般的金属只有在熊熊的炉火中才能熔化。,可是铯却十分特别,熔点只有摄氏二十八度半,除了水 银之外,它就是熔点最低的金属了。大家都知道,我们人体的正常温度是摄氏三十七度,所以把铯放到手心里,它就会像冰块掉进热锅里那样很快地化成液体,在手 心里滚来滚去。

 

铯 - 原子钟

在自然界里,铯的分布相当广 泛,岩石、土壤、海水以至某些植物机体,到处都有它的“住地”。可是铯没有形成单独的矿场,在其他矿物中含量又少,所以生产起来很麻烦。一年下来,生产出 的铯很少,“物以稀为贵”,现在铯比金子还贵。最准确的计时仪器用铯可以做成最准确的计时仪器——原子钟。一说到钟,你们自然明白这是一种计量时间的工 具。人类的生活和生产活动离不开计时,想想看,如果有一天起床后,世界上所有的钟表都不翼而飞了,世界会变成什么样子呢?

过去,人们确定时间都拿地球的自转作为基准。地球是个天然的

硫酸铯

计 时器,它每昼夜绕轴自转一周,寒来暑往,年年如此。人们把地球自转一周所需要的时间定为一天——二十四小时,它的八百六千四百分之一就是一秒,秒的时间单 位就是这样来的。但是,后来人们发现,由于潮汐力等许多因素的影响,地球不是一个非常准确的“时钟”。它的自转速度是不稳定的,时快时慢。虽然这种快慢的 差别极小,但累计起来,误差就很大了。

 

人们开始打破旧的传统习惯,大的一头不行,往小的一头探索。人们发现:铯原子的第 六层——即最外层的电子绕着原子核旋 转的速度,总是极其精确地在几十亿分之一秒的时间内转完一圈,稳定性比地球绕轴自转高得多。利用铯原子的这个特点,人们制成了一种新型的钟——铯原子钟, 规定一秒就是铯原子“振动”9192601770次(即相当于铯原子的最外层电子旋转这么多圈)所需要的时间。这就是“秒”的最新定义。

 

利 用铯原子钟,人们可以十分精确地测量出十亿分之一秒的时间,精确度和稳定性远远地扭过世界上以前有过的任何一种表,也超过了许多年来一直以地球自转作基准 的天文时间。人类创造性的劳动得到了收获。大家知道,在我们日常生活里,只要知道年、月、日以至时、分、秒就可以了。但是现代的科学技术却往往需要精确地 计量更为短暂的时间,比如毫秒(千分之一秒)、微秒(百万分之一秒)等

铯束管

等。有了像铯原子钟这样一类的钟表,人类就有可能从事更为精细的科学研究和生产实践,比如对原子弹和氢弹的爆炸、火箭和导弹的发射以及宇宙航行等等,实行高度精确的控制,当然也可以用于远程飞行和航海。

 

铯 原子的最外层电子极不稳定,很容易被激发放射出来,变成为带正电的铯离子,所以是宇宙航行离子火箭发动机理想的“燃料”。铯离子火箭的工作原理是这样的: 发动机开动后,产生大量的铯蒸气,铯蒸气经过离化器的“加工”,变成了带正电的铯离子,接着在磁场的作用下加速到每秒一百五十公里,从喷管喷射出去,同时 绘离子火箭以强大的推动力,把火箭高度推向前进。计算表明,用这种铯离子作宇宙火箭的推进剂,单位重量产生的推力要比现在使用的液体或固体燃料高出上百 倍。这种铯离子火箭可以在宇宙太空遨游一二年甚至更久!

用铯作成的原子钟,可以精确的测出十亿分之一秒的一刹那,它连续走上三十万年,误差 也不超过1s,精确度相当高.,另外,铯在医学上、导弹上、宇宙飞船上及各种高科技行业中都有广泛应用。铯是碱金属的一种。与水发生强烈反应,产生氢气、 氢氧化物。生成的氢氧化铯是氢氧化碱中碱性最强的。

 

 

引用出處: 

 http://www.hudong.com/wiki/%E9%93%AF

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