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Cerium www.tool-tool.com

Cerium ( /ˈsɪəriəm/) is a chemical element with the symbol Ce and atomic number 58. It is a soft, silvery, ductile metal which easily oxidizes in air. Cerium was named after the dwarf planet Ceres (itself named for the Roman goddess of agriculture). Cerium is the most abundant of the rare earth elements, making up about 0.0046% of the Earth's crust by weight. It is found in a number of minerals, the most important being monazite and bastnasite. Commercial applications of cerium are numerous. They include catalysts, additives to fuel to reduce emissions and to glass and enamels to change their color. Cerium oxide is an important component of glass polishing powders and phosphors used in screens and fluorescent lamps.

Contents

[hide]

  • 1 Characteristics
    • 1.1 Physical properties
    • 1.2 Chemical properties
    • 1.3 Compounds
    • 1.4 Isotopes
  • 2 History
  • 3 Occurrence
  • 4 Production
  • 5 Applications
  • 6 Precautions
  • 7 References
  • 8 External links

[edit] Characteristics

[edit] Physical properties

Cerium is a silvery metal, belonging to the lanthanide group. It resembles iron in color and luster, but is soft, and both malleable and ductile. Cerium has the second-longest liquid range of any element: 2648 C° (795 °C to 3443 °C) or 4766 F° (1463 °F to 6229 °F). (Thorium has the longest liquid range.)

Phase diagram of cerium

Cerium is especially interesting because of its variable electronic structure. The energy of the inner 4f level is nearly the same as that of the outer or valence electrons, and only small energy is required to change the relative occupancy of these electronic levels. This gives rise to dual valency states. For example, a volume change of about 10% occurs when cerium is subjected to high pressures or low temperatures. It appears that the valence changes from about 3 to 4 when it is cooled or compressed. The low temperature behavior of cerium is complex. Four allotropic modifications are thought to exist: cerium at room temperature and at atmospheric pressure is known as γ cerium. Upon cooling to –16 °C, γ cerium changes to β cerium. The remaining γ cerium starts to change to α cerium when cooled to –172 °C, and the transformation is complete at –269 °C. α Cerium has a density of 8.16; δ cerium exists above 726 °C. At atmospheric pressure, liquid cerium is more dense than its solid form at the melting point.[3][4][5]

[edit] Chemical properties

Cerium metal tarnishes slowly in air and burns readily at 150 °C to form cerium(IV) oxide:

Ce + O2 → CeO2

Cerium is quite electropositive and reacts slowly with cold water and quite quickly with hot water to form cerium hydroxide:

2 Ce (s) + 6 H2O (l) → 2 Ce(OH)3 (aq) + 3 H2 (g)

Cerium metal reacts with all the halogens:

2 Ce (s) + 3 F2 (g) → 2 CeF3 (s) [white]2 Ce (s) + 3 Cl2 (g) → 2 CeCl3 (s) [white]2 Ce (s) + 3 Br2 (g) → 2 CeBr3 (s) [white]2 Ce (s) + 3 I2 (g) → 2 CeI3 (s) [yellow]

Cerium dissolves readily in dilute sulfuric acid to form solutions containing the colorless Ce(III) ions, which exist as a [Ce(OH2)9]3+ complexes:[6]

2 Ce (s) + 3 H2SO4 (aq) → 2 Ce3+ (aq) + 3 SO2−

4 (aq) + 3 H2 (g)

[edit] Compounds

See also Category: Cerium compounds

Cerium(IV) sulfate

Cerium(IV) (ceric) salts are orange red or yellowish, whereas cerium(III) (cerous) salts are usually white or colorless. Both oxidation states absorb ultraviolet light strongly. Cerium(III) can be used to make glasses that are colorless, yet absorb ultraviolet light almost completely. Cerium can be readily detected in rare earth mixtures by a very sensitive qualitative test: addition of ammonia and hydrogen peroxide to an aqueous solution of lanthanides produces a characteristic dark brown color if cerium is present.

Cerium exhibits three oxidation states, +2, +3 and +4. The +2 state is rare and is observed in CeH2, CeI2 and CeS.[5] The most common compound of cerium is cerium(IV) oxide (CeO2), which is used as "Jeweller's rouge" as well as in the walls of some self-cleaning ovens. Two common oxidizing agents used in titrations are ammonium cerium(IV) sulfate (ceric ammonium sulfate, (NH4)2Ce(SO4)3) and ammonium cerium(IV) nitrate (ceric ammonium nitrate or CAN, (NH4)2Ce(NO3)6). Cerium also forms a chloride, CeCl3 or cerium(III) chloride, used to facilitate reactions at carbonyl groups in organic chemistry. Other compounds include cerium(III) carbonate (Ce2(CO3)3), cerium(III) fluoride (CeF3), cerium(III) oxide (Ce2O3), as well as cerium(IV) sulfate (ceric sulfate, Ce(SO4)2) and cerium(III) triflate (Ce(OSO2CF3)3).

The two oxidation states of cerium differ enormously in basicity: cerium(III) is a strong base, comparable to the other trivalent lanthanides, but cerium(IV) is weak. This difference has always allowed cerium to be by far the most readily isolated and purified of all the lanthanides, otherwise a notoriously difficult group of elements to separate. A wide range of procedures have been devised over the years to exploit the difference. Among the better ones:

  1. Leaching the mixed hydroxides with dilute nitric acid: the trivalent lanthanides dissolve in cerium-free condition, and tetravalent cerium remains in the insoluble residue as a concentrate to be further purified by other means. A variation on this uses hydrochloric acid and the calcined oxides from bastnasite, but the separation is less sharp.
  2. Precipitating cerium from a nitrate or chloride solution using potassium permanganate and sodium carbonate in a 1:4 molar ratio.
  3. Boiling rare-earth nitrate solutions with potassium bromate and marble chips.

Formerly used commercially was a method whereby a solution of cerium(IV) in nitric acid would be added to dilute sulfuric acid. This caused cerium(IV) to largely precipitate as a basic salt, leaving trivalent lanthanide in solution. However, the finely divided precipitate was difficult to filter from the highly corrosive medium. Using the classical methods of rare-earth separation, there was a considerable advantage to a strategy of removing cerium from the mixture at the beginning. Cerium typically comprised 45% of the cerite or monazite rare earths, and removing it early greatly reduced the bulk of what needed to be further processed (or the cost of reagents to be associated with such processing). However, not all cerium purification methods relied on basicity. Ceric ammonium nitrate [ammonium hexanitratocerate(IV)] crystallization from nitric acid was one purification method. Cerium(IV) nitrate (hexanitratoceric acid) was more readily extractable into certain solvents (e.g. tri-n-butyl phosphate) than the trivalent lanthanides. However, modern practice in China seems to be to do purification of cerium by counter-current solvent extraction, in its trivalent form, just like the other lanthanides.

Cerium(IV) is a strong oxidant under acidic conditions, but stable under alkaline conditions, when it is cerium(III) that becomes a strong reductant, easily oxidized by atmospheric oxygen (O2). This ease of oxidation under alkaline conditions leads to the occasional geochemical parting of the ways between cerium and the trivalent light lanthanides under supergene weathering conditions, leading variously to the "negative cerium anomaly" or to the formation of the mineral cerianite. Air-oxidation of alkaline cerium(III) is the most economical way to get to cerium(IV), which can then be handled in acid solution.

[edit] Isotopes

Main article: Isotopes of cerium

Naturally occurring cerium is composed of 4 stable isotopes; 136

Ce, 138

Ce, 140

Ce, and 142

Ce with 140

Ce being the most abundant (88.48% natural abundance). 136

Ce and 142

Ce are predicted to be double beta active but no signs of activity were ever observed (for 142

Ce, the lower limit on half-life is 5×1016

yr). 26 radioisotopes have been characterized with the most long-lived being 144

Ce with a half-life of 284.893 days, 139

Ce with a half-life of 137.640 days, and 141

Ce with a half-life of 32.501 days. All of the remaining radioactive isotopes have half-lives that are less than 4 days and the majority of these have half-lives that are less than 10 minutes. This element also has 2 meta states.

The known isotopes of cerium range in atomic weight from 123 u (123

Ce) to 152 u (152

Ce).

144

Ce is a high-yield product of nuclear fission; the ORNL Fission Product Pilot Plant separated substantial quantities of 144

Ce from reactor waste, and it was used in the Aircraft Nuclear Propulsion and SNAP programs.

[edit] History

This section needs additional citations for verification.

Please help improve this article by adding reliable references. Unsourced material may be challenged and removed. (December 2009)

Cerium was discovered in Bastnäs in Sweden by Jöns Jakob Berzelius and Wilhelm Hisinger, and independently in Germany by Martin Heinrich Klaproth, both in 1803.[7] Cerium was named by Berzelius after the dwarf planet Ceres, discovered two years earlier (1801). As originally isolated, cerium was in the form of its oxide, and was named ceria, a term that is still used. The metal itself was too electropositive to be isolated by then-current smelting technology, a characteristic of rare earth metals in general. After the development of electrochemistry by Humphry Davy five years later, the earths soon yielded the metals they contained. Ceria, as isolated in 1803, contained all of the lanthanides present in the cerite ore from Bastnäs, Sweden, and thus only contained about 45% of what is now known to be pure ceria. It was not until Carl Gustaf Mosander succeeded in removing lanthana and "didymia" in the late 1830s, that ceria was obtained pure. Wilhelm Hisinger was a wealthy mine owner and amateur scientist, and sponsor of Berzelius. He owned or controlled the mine at Bastnäs, and had been trying for years to find out the composition of the abundant heavy gangue rock (the "Tungstein of Bastnäs"), now known as cerite, that he had in his mine. Mosander and his family lived for many years in the same house as Berzelius, and Mosander was undoubtedly persuaded by Berzelius to investigate ceria further.[8]

When the rare earths were first discovered, since they were strong bases like the oxides of calcium or magnesium, they were thought to be divalent. Thus, "ceric" cerium was thought to be trivalent, and the oxidation state ratio was therefore thought to be 1.5. Berzelius was annoyed to keep on getting the correct ratio 1.33. He was after all one of the finest analytical chemists in Europe.

In the late 1950s, the Lindsay Chemical Division of American Potash and Chemical Corporation of West Chicago, Illinois, then the largest producer of rare earths in the world, was offering cerium compounds in two purity ranges, "commercial" at 94-97% purity, and "purified", at a reported 99.9+% purity. In their October 1, 1958 price list, one-pound quantities of the oxides were priced at $3.30 or $8.10 respectively for the two purities; the per-pound price for 50-pound quantities were respectively $1.95 or $4.95 for the two grades. Cerium salts were proportionately cheaper, reflecting their lower net content of oxide.

[edit] Occurrence

See also Category: Lanthanide minerals

Allanite

Cerium is the most abundant of the rare earth elements, making up about 0.0046% of the Earth's crust by weight. It is found in a number of minerals including allanite (also known as orthite)—(Ca, Ce, La, Y)2(Al, Fe)3(SiO4)3(OH), monazite (Ce, La, Th, Nd, Y)PO4, bastnasite (Ce, La, Y)CO3F, hydroxylbastnasite (Ce, La, Nd)CO3(OH, F), rhabdophane (Ce, La, Nd)PO4-H2O, zircon (ZrSiO4), and synchysite Ca(Ce, La, Nd, Y)(CO3)2F. Monazite and bastnasite are presently the two most important sources of cerium. Large deposits of monazite, allanite, and bastnasite will supply cerium, thorium, and other rare-earth metals for many years to come.[4]

[edit] Production

The mineral mixtures are crushed, ground and treated with hot concentrated sulfuric acid to produce water-soluble sulfates of rare earths. The acidic filtrates are partially neutralized with sodium hydroxide to pH 3–4. Thorium precipitates out of solution as hydroxide and is removed. After that the solution is treated with ammonium oxalate to convert rare earths in to their insoluble oxalates. The oxalates are converted to oxides by annealing. The oxides are dissolved in nitric acid that excludes one of the main components, cerium, whose salts are insoluble in HNO3. Metallic cerium is prepared by metallothermic reduction techniques, such as by reducing cerium fluoride or chloride with calcium, or by electrolysis of molten cerous chloride or other cerous halides. The metallothermic technique is used to produce high-purity cerium.[5]

[edit] Applications

A major technological application for Cerium(III) oxide is a catalytic converter for the reduction of CO emissions in the exhaust gases from motor vehicles. In particular, cerium oxide is added into Diesel fuels. Another important use of the cerium oxide is a hydrocarbon catalyst in self cleaning ovens, incorporated into oven walls and as a petroleum cracking catalyst in petroleum refining. [9]

Cerium(IV) oxide is considered one of the most efficient agents for precision polishing of optical components. Cerium compounds are also used in the manufacture of glass, both as a component and as a decolorizer. For example, cerium(IV) oxide in combination with titanium(IV) oxide gives a golden yellow color to glass; it also allows for selective absorption of ultraviolet light in glass. Cerium oxide has high refractive index and is added to enamel to make it more opaque.[9]

Cerium(IV) oxide is used in incandescent gas mantles, such as the Welsbach mantle, where it was combined with thorium, lanthanum, magnesium or yttrium oxides. Doped with other rare earth oxides, it has been investigated as a solid electrolyte in intermediate temperature solid oxide fuel cells: The cerium(IV) oxide-cerium(III) oxide cycle or CeO2/Ce2O3 cycle is a two step thermochemical process based on cerium(IV) oxide and cerium(III) oxide for hydrogen production.[10]

The photostability of pigments can be enhanced by addition of cerium. It provides pigments with light fastness and prevents clear polymers from darkening in sunlight. Television glass plates are subject to electron bombardment, which tends to darken them by creation of F-center color centers. This effect is suppressed by addition of cerium oxide. Cerium is also an essential component of phosphors used in TV screens and fluorescent lamps.[9]

A traditional use of cerium was in the pyrophoric mischmetal alloy used for light flints. Because of the high affinity of cerium to sulfur and oxygen, it is used in various aluminium alloys, and iron alloys. In steels, cerium degasifies and can help reduce sulfides and oxides, and it is a precipitation hardening agent in stainless steel. Adding cerium to cast irons opposes graphitization and produces a malleable iron. Addition of 3–4% of cerium to magnesium alloys, along with 0.2 to 0.6% zirconium, helps refine the grain and give sound casting of complex shapes. It also adds heat resistance to magnesium castings.[9]

Cerium alloys are used in permanent magnets and in tungsten electrodes for gas tungsten arc welding. Cerium is used in carbon-arc lighting, especially in the motion picture industry. Cerium oxalate is an anti-emetic drug. Cerium(IV) sulfate is used extensively as a volumetric oxidizing agent in quantitative analysis. Ceric ammonium nitrate is a useful one-electron oxidant in organic chemistry, used to oxidatively etch electronic components, and as a primary standard for quantitative analysis.[4][11]

[edit] Precautions

Cerium, like all rare-earth metals, is of low to moderate toxicity. Cerium is a strong reducing agent and ignites spontaneously in air at 65 to 80 °C. Fumes from cerium fires are toxic. Water should not be used to stop cerium fires, as cerium reacts with water to produce hydrogen gas. Workers exposed to cerium have experienced itching, sensitivity to heat, and skin lesions. Animals injected with large doses of cerium have died due to cardiovascular collapse. Cerium(IV) oxide is a powerful oxidizing agent at high temperatures and will react with combustible organic materials. While cerium is not radioactive, the impure commercial grade may contain traces of thorium, which is radioactive. Cerium serves no known biological function.[9]

引用出處:

http://en.wikipedia.org/wiki/Cerium

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铈Ce www.tool-tool.com

铈,原子序数 58,原子量140.115,元素名来源于小行星谷神星的英文名。1803年德国化学家克拉普罗特、瑞典化学家贝采利乌斯分别发现了铈的氧化物。铈的天然 稳定同位素有4种:铈136、138、140、142。铈在地壳中的含量约0.0046%,是稀土元素中丰度最高的。

纠错 编辑摘要

目录

  • 1 概述
  • 2 性质
  • 3 发现
  • 4 元素描述
  • 5 来源及用途
  • 1 概述
  • 2 性质
  • 3 发现
  • 4 元素描述
  • 5 来源及用途
  • 6 铈铝
  • 7 铈碳化硅
  • 8 参考资料

铈 - 概述

69215215

为 铁灰色金属,有延展性,熔点799°C,沸点3426°C,密度6.657克/厘米³。铈是除铕外稀土元素中最活泼的。铈在室温下很容易氧化;在冷水中缓 慢分解,在热水中反应加快;大多数铈盐及其溶液为橙红色到橙黄色,具有反磁性和强氧化性。二氧化铈用于抛光精密玻璃制品,也可做玻璃去色剂和用于生产有色 玻璃,硝酸铈用于制造白炽灯罩。

铈 - 性质

元素名称:铈

元素符号: Ce

英文名: Cerium

相对原子质量: 140.12

常见化合价: +3,+4

电负性: 1.12

外围电子排布: 4f1 5d1 6s2

核外电子排布: 2,8,18,20,8,2

铈钨电极

同位素及放射线: Ce-134[3016d] Ce-136 Ce-138 Ce-139[137.6d] *Ce-140 Ce-141[32.5d] Ce-142 Ce-143[1.4d] Ce-144[284.6d]

电子亲合和能: 0 KJ•mol-1

第一电离能: 528 KJ•mol-1

第二电离能: 1047 KJ•mol-1

第三电离能: 1880 KJ•mol-1

单质密度: 6.773 g/cm3

单质熔点: 795.0 ℃

单质沸点: 3257.0 ℃

原子半径: 2.7 埃

离子半径: 1.14(+3) 埃

共价半径: 1.65 埃

常见化合物: CeO2 CeCl3

原子体积:(立方厘米/摩尔):20.67

元素在海水中的含量:(ppm):太平洋表面 0.0000015

元素在太阳中的含量:(ppm):0.004

地壳中含量:(ppm):68

元素原子量:140.1

晶体结构:晶胞为面心立方晶胞,每个晶胞含有4个金属原子。

声音在其中的传播速率:(m/S) 2100

氧化态:Main Ce+3

Other Ce+4

电离能 (kJ /mol)

M - M+ 527.4

M+ - M2+ 1047

M2+ - M3+ 1949

M3+ - M4+ 3547

M4+ - M5+ 6800

M5+ - M6+ 8200

硝酸铈

M6+ - M7+ 9700

M7+ - M8+ 11800

M8+ - M9+ 13200

M9+ - M10+ 14700

晶胞参数:

a = 362 pm

b = 362 pm

c = 599 pm

α = 90°

β = 90°

γ = 120°

莫氏硬度:2.5

铈 - 发现

发现人:克拉普罗特(M.H.Klaproth)与贝齐利乌斯(J.J.Bergelius)、息辛格(W.Hisinger)

发现过程:1803年,克拉普罗特(M.H.Klaproth)与贝齐利乌斯(J.J.Bergelius)、息辛格(W.Hisinger)分别发现。铈是从另一块出产在瑞典小城瓦斯特拉斯的红色重石中发

氯化铈

现 的。1803年德国化学家克拉普罗特分析了这种红色重石,确定了有一种新元素的氧化物存在,称为ochra(赭色)土,因为它在灼烧时出现赭色。元素就被 命名为ochroium,矿石被 称为ochroite。同时瑞典化学家贝齐里乌斯和希辛格在该矿石中也发现了同一元素的氧化物,称为ceria(铈土),元素称为cerium(铈),元 素符号定为Ce,矿石称为cerite,以纪念当时发现的一颗小行星谷神星Ceres。Ochroium和cerium是同一元素,后者被采用了,前者被 丢弃了。

钇和铈的氧化物以及其他稀土元素氧化物和土族元素的氧化物一样很难还原。直到1875年希尔布郎德利用电解熔融 的铈的氧化物,获得金属铈。这是今天取得稀土元素金属的一种普遍的方法。它们的发现不仅仅是发现了它们的本身,而且带来了其他稀土元素的发现。其他稀土元 素的发现是从这两个元素的发现开始的。

钇和铈的发现仅仅是打开了发现稀土元素的第一道大门,是发现稀土元素的第一阶段。

铈 - 元素描述

灰 色金属,有延展性。熔点799℃,沸点3426℃。密度:立方晶体6.76克/厘米3,六方晶体6.66克/厘米3。外围电子层排布4f15d16s2。 第一电离能5.47电子伏 特。化学性质活泼,用刀刮即可在空气中燃烧(纯的铈不易自燃,但稍氧化或与铁生成合金时,极易自燃);加热时,在空气中燃烧生成二氧化铈。能与沸水作用, 溶于酸,不溶于碱。受低温和高压时,出现一种反磁性体,比普通形式的铈致密18%。铈是稀土元素中最丰富的金属元素。有四种同位素:136Ce、 138Ce、140Ce、142Ce。142Ce是放射性的α放射体,半衰期为5×1015年。

铈 - 来源及用途

元素来源:

铈是储量最丰富的稀土元素,见于独居石砂[Ce(PO4)]等许多矿物中。 铈主要存在独居石和氟碳铈矿中,也存在于铀、钍、钚的裂变产物中。常由氧化铈用镁粉还原,或由电解熔融的氯化铈而制得。

元素用途:

制造高辉度碳弧灯,掺入特种金属里充当合金添加剂。氧化物用于光学器件和玻璃工业,铈盐用于摄影和纺织工业。铈可作催化剂、电弧电极、特种玻璃等。铈的合金耐高热,可以用来制造喷气推进器零件。硝酸铈可用来制造煤气灯上用的白热纱罩。

铈 - 铈铝

铈铝就是我们平时说的Ce铝,Ce铝是一种新型的铈(Ce)系纯

锡铈

铝 复合涂层。主要包括铈(Ce)系纯铝涂层和环氧乙烯酯漆涂层,所述铈(Ce)系纯铝涂层是以铝为原料,添加铈(Ce)元素的热喷涂层,所述环氧乙烯酯漆涂 层为铈Ce铝热喷涂层的封闭层和功能涂层。铈(Ce)系纯铝涂层添加元素铈(Ce)重量百分比为0.05-0.50%(wt),其它杂质铁+铜+硅 ≤0.30%(wt),余量为铝,还可辅助添加元素镁,系纯铝涂层的制作方法为:加工制作成线材或者粉末用热喷涂技术在钢铁表面制作成Ce铝喷涂层。所述 环氧乙烯酯漆涂层为以环氧乙烯酯树脂为原料,添加炭化硅和铝粉或铝粉浆。环氧乙烯酯漆作为Ce系铝涂层的封闭层、中间层和表面层,也还可以其它油漆涂料代 替其中的某一层或者全部。

一种铈(Ce)系纯铝复合涂层,主要包括:铈(Ce)系纯铝涂层和环氧乙烯酯漆涂层,其特征在于:所述铈(Ce)系纯铝涂层是以铝为原料,添加铈 (Ce)元素的热喷涂层,所述环氧乙烯酯漆涂层为铈Ce铝热喷涂层的封闭层和功能涂层。

铈 - 铈碳化硅

铈碳化硅(CC): 铈碳化硅是在碳化硅的炉料内不加食盐而添加微量的

氟化铈

氧 化铈(CeO2)冶炼出来的,其外观和绿碳化硅相似,显微硬度为 36.29Gpa。与绿碳化硅相比,其铈碳化硅的显微硬度、单颗粒抗压强度、韧性等均比绿碳化硅高。由于铈碳化硅的物理性能有所改弯,因此,其磨削效果也 得到了一定的改善。试验证明磨钛合金时,铈碳化硅与绿碳化硅相比,切削效率提高近一倍,并且火花较小;磨铸铁时,当进刀量为0.01mm时,铈碳化硅的耐 用度比绿碳化硅砂轮提高18.9%,磨削比提高9.6%,当进刀量为0.02mm时,其耐用度提高27.4%,磨削比提高74.1%。由此可见,用铈碳化 硅磨削铸铁进刀量时,其效果比绿碳化硅提高的更显著。磨硬质合金的效果与绿碳化硅相近,磨削CO5Si M5Al 5F-6等难磨高速钢,其效果与单晶刚玉相似。

引用出處:

http://www.hudong.com/wiki/%E9%93%88

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PCBN刀具PCD刀具單晶刀具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!!

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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 инструментыПустотелое 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.

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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.

Cubic Boron Nitride刀具 www.tool-tool.com

聚晶立方氮化硼(PCBN,Polycrystalline Cubic Boron Nitride)是立方氮化硼(CBN.Cubic Boron Nitride)颗粒加结合剂在高温高压下烧结而成的非天然的物质,其硬度仅次于鑽石.且具有较好的导热性和耐磨性、较高的热稳定性和优良的化学稳定 性,是理想的切削铁系金属的刀具材料。根据结合剂种类的不同及CBN含量的不同,PCBN刀具的切削性能也有所不同。目前被航空航天、汽车等许多工业。介 绍了PCBN刀具材料的物理 性能和切削性能。结合剂体系以金属陶瓷为主,其中陶瓷组分包括TiN、AlN、Si3N4.TiC等,金属有Co、Ti、Al等。

立方氮化硼(CBN)是B与N形成的金刚石结构物质,它在自然界中还没有找到天然矿物。通常是在水、尿素和碱金属、碱土金属及它们的氮化物、硼化物、硼氮 化物和合金等触媒参与,在高压高温条件下由六方氮化硼(hBN)转变而成的。

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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PCBN刀具PCD刀具單晶刀具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 инструментыПустотелое 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

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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.