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712 吉康牌饮水瓶盖的注射模具设计【全套16张CAD图+开题报告+文献翻译+说明书】

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本课题主要是针对吉康牌塑料饮水瓶盖的模具设计,通过对塑件进行工艺的分析和比较,最终设计出一副注塑模。该课题从产品结构工艺性,具体模具结构出发,对模具的浇注系统、模具成型部分的结构、顶出系统、冷却系统、注塑机的选择及有关参数的校核、都有详细的设计,同时并简单的编制了模具的加工工艺。通过整个设计过程表明该模具能够达到此塑件所要求的加工工艺。根据题目设计的主要任务是吉康牌塑料饮水瓶盖注塑模具的设计。也就是设计一副注塑模具来生产吉康牌塑料饮水瓶盖塑件产品,以实现自动化提高产量。针对吉康牌塑料饮水瓶盖的具体结构,该模具是侧浇口的单分型面注射模具。由于塑件两端相通,又有螺纹,并且考虑到材质较软,内螺纹为半圆形且只有二圈,所以采用侧抽芯机构来实现外螺纹,内螺纹采用强制拔模。


关键词  塑料模具;饮水瓶盖;模具


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附表五开题报告 题目吉康牌饮水瓶盖的注射模具设计学生姓名班级学号专业1、 研究的意义,同类研究工作国内外现状、存在问题(列出主要参考文献)模具生产技术水平的高低不仅是衡量一个国家产品制造水平高低的重要标志,而且在很大程度上决定着这个国家的产品质量、效益及新产品开发能力。我国目前的模具开发制造水平比国际先进水平至少相差10年,特别是大型、精密、复杂、长寿命模具的产需矛盾十分突出,已成为严重制约我国制造业发展的瓶颈。 模具是工业的基础工艺装备,在电讯、汽车、摩托车、电机、电器、仪器、家电、建材等产品中,80%以上都要依靠模具成形,用模具生产制件所表现出来的高精度、高复杂程度、高一致性、高生产力和低消耗,是其它加工制造方法所不能比拟的。模具又是“放大器”,用模具生产的最终产品的价值往往是模具自身价值的几十倍或上百倍,目前全世界的模具年产值约有600亿美元,日、美两国的模具工业产值早已超过机床工业产值。 随着我国工业的不断发展,对模具提出越来越高的要求,因此,精密、大型、复杂、长寿命模具的需求发展将高于总量发展速度。李德群唐志玉.中国模具设计大典.江西:江西科学技术出版社,2003.2、 研究目标、内容和拟解决的关键问题(根据任务要求进一步具体化)我国几个主要模具市场主要有:汽车、摩托车行业 ,电行业电讯行业,而塑料型材模具增幅将高于模具行业总体发展水平! 我们的研究目标是:提高产品的质量及生产效率,缩短设计及制造周期,降低生产成本,最大限度地提高模具行业的应变能力,满足用户需要。中国模具产业除了要继续提高生产能力,今后更要着重于行业内部结构的调整和技术发展水平的提高。本次我研究的内容就是:塑料模具中的塑料吉康牌饮水瓶盖的注射。1. 模具结构类型的选择与设计; 2. 型腔、型芯、连接、顶出、抽芯等零件的设计;3合模导向和定位机构的设计; 4. 主要零件(型腔型芯等)的选材; 5. 注射模成型零件部件设计; 6. 塑件脱模机构设计。解决的关键问题是:设计饮水瓶盖注射模螺纹抽芯结构:3、 特色与创新之处a) 以塑料为原材料由注射模制成塑件产品,以代替金属材料。注射模设计的结构特点是:侧浇口形式的单分型面的注射模,具有侧向抽芯。4、 拟采取的研究方法、步骤、技术路线研究方法:1查阅资料: 2.以实物零件做参考。3 塑件的测绘,塑件工艺性分析与结构性分析,塑件的使用与成型性能分析;4 模具结构的总体设计;5 装配图设计(草图修改计算机绘制)6 零件图的设计与绘制;7 设计图纸的校核;说明书的编写。技术路线:塑件工艺特点型腔数目的确定分型面与成型位置的确定抽芯机构设计浇注系统形式与浇口位置脱模机构5、 拟使用的主要仪器设备、试剂和药品根据产品所生成模具尺寸拟定注塑机为:XS-ZY-125型卧式注塑机;根据产品的用途、工作环境、经济角度考虑选材:高密度聚乙烯;6、 参考文献1詹友刚、Pro/ENGINEER中文野火版2.0基础教程、北京:清华大学出版社,20052齐晓杰. 塑料成型工艺与模具设计. 北京:机械工业出版社,20063沈齐文. 材料成型工艺基础. 武汉:华中科技大学出版社,20034许鹤峰、陈言秋编. 注塑模具设计要点与图例. 北京:化学工业出版社,19995章飞 陈国平 型腔模具设计与制造 化学工业出版社.2003.86 廖念钊、古莹庵、李硕根编. 互换性与技术测量. 北京:中国计量出版社,20007 许发樾主编. 塑料模具设计制造与应用实例. 北京:机械工业出版社,2002.7指导教师批阅意见 指导教师(签名): 年 月 日注:可另附A4纸The machinability of a materialThe machinability of a material usually defined in terms of four factors:1、 Surface finish and integrity of the machined part;2、 Tool life obtained;3、 Force and power requirements;4、 Chip control. Thus, good machinability good surface finish and integrity, long tool life, and low force And power requirements. As for chip control, long and thin (stringy) cured chips, if not broken up, can severely interfere with the cutting operation by becoming entangled in the cutting zone.Because of the complex nature of cutting operations, it is difficult to establish relationships that quantitatively define the machinability of a material. In manufacturing plants, tool life and surface roughness are generally considered to be the most important factors in machinability. Although not used much any more, approximate machinability ratings are available in the example below.20.9.1 Machinability Of SteelsBecause steels are among the most important engineering materials (as noted in Chapter 5), their machinability has been studied extensively. The machinability of steels has been mainly improved by adding lead and sulfur to obtain so-called free-machining steels.Resulfurized and Rephosphorized steels. Sulfur in steels forms manganese sulfide inclusions (second-phase particles), which act as stress raisers in the primary shear zone. As a result, the chips produced break up easily and are small; this improves machinability. The size, shape, distribution, and concentration of these inclusions significantly influence machinability. Elements such as tellurium and selenium, which are both chemically similar to sulfur, act as inclusion modifiers in resulfurized steels.Phosphorus in steels has two major effects. It strengthens the ferrite, causing increased hardness. Harder steels result in better chip formation and surface finish. Note that soft steels can be difficult to machine, with built-up edge formation and poor surface finish. The second effect is that increased hardness causes the formation of short chips instead of continuous stringy ones, thereby improving machinability.Leaded Steels. A high percentage of lead in steels solidifies at the tip of manganese sulfide inclusions. In non-resulfurized grades of steel, lead takes the form of dispersed fine particles. Lead is insoluble in iron, copper, and aluminum and their alloys. Because of its low shear strength, therefore, lead acts as a solid lubricant (Section 32.11) and is smeared over the tool-chip interface during cutting. This behavior has been verified by the presence of high concentrations of lead on the tool-side face of chips when machining leaded steels.When the temperature is sufficiently high-for instance, at high cutting speeds and feeds (Section 20.6)the lead melts directly in front of the tool, acting as a liquid lubricant. In addition to this effect, lead lowers the shear stress in the primary shear zone, reducing cutting forces and power consumption. Lead can be used in every grade of steel, such as 10xx, 11xx, 12xx, 41xx, etc. Leaded steels are identified by the letter L between the second and third numerals (for example, 10L45). (Note that in stainless steels, similar use of the letter L means “low carbon,” a condition that improves their corrosion resistance.)However, because lead is a well-known toxin and a pollutant, there are serious environmental concerns about its use in steels (estimated at 4500 tons of lead consumption every year in the production of steels). Consequently, there is a continuing trend toward eliminating the use of lead in steels (lead-free steels). Bismuth and tin are now being investigated as possible substitutes for lead in steels.Calcium-Deoxidized Steels. An important development is calcium-deoxidized steels, in which oxide flakes of calcium silicates (CaSo) are formed. These flakes, in turn, reduce the strength of the secondary shear zone, decreasing tool-chip interface and wear. Temperature is correspondingly reduced. Consequently, these steels produce less crater wear, especially at high cutting speeds.Stainless Steels. Austenitic (300 series) steels are generally difficult to machine. Chatter can be s problem, necessitating machine tools with high stiffness. However, ferritic stainless steels (also 300 series) have good machinability. Martensitic (400 series) steels are abrasive, tend to form a built-up edge, and require tool materials with high hot hardness and crater-wear resistance. Precipitation-hardening stainless steels are strong and abrasive, requiring hard and abrasion-resistant tool materials.The Effects of Other Elements in Steels on Machinability. The presence of aluminum and silicon in steels is always harmful because these elements combine with oxygen to form aluminum oxide and silicates, which are hard and abrasive. These compounds increase tool wear and reduce machinability. It is essential to produce and use clean steels.Carbon and manganese have various effects on the machinability of steels, depending on their composition. Plain low-carbon steels (less than 0.15% C) can produce poor surface finish by forming a built-up edge. Cast steels are more abrasive, although their machinability is similar to that of wrought steels. Tool and die steels are very difficult to machine and usually require annealing prior to machining. Machinability of most steels is improved by cold working, which hardens the material and reduces the tendency for built-up edge formation.Other alloying elements, such as nickel, chromium, molybdenum, and vanadium, which improve the properties of steels, generally reduce machinability. The effect of boron is negligible. Gaseous elements such as hydrogen and nitrogen can have particularly detrimental effects on the properties of steel. Oxygen has been shown to have a strong effect on the aspect ratio of the manganese sulfide inclusions; the higher the oxygen content, the lower the aspect ratio and the higher the machinability.In selecting various elements to improve machinability, we should consider the possible detrimental effects of these elements on the properties and strength of the machined part in service. At elevated temperatures, for example, lead causes embrittlement of steels (liquid-metal embrittlement, hot shortness; see Section 1.4.3), although at room temperature it has no effect on mechanical properties.Sulfur can severely reduce the hot workability of steels, because of the formation of iron sulfide, unless sufficient manganese is present to prevent such formation. At room temperature, the mechanical properties of resulfurized steels depend on the orientation of the deformed manganese sulfide inclusions (anisotropy). Rephosphorized steels are significantly less ductile, and are produced solely to improve machinability.20.9.2 Machinability of Various Other Metals Aluminum is generally very easy to machine, although the softer grades tend to form a built-up edge, resulting in poor surface finish. High cutting speeds, high rake angles, and high relief angles are recommended. Wrought aluminum alloys with high silicon content and cast aluminum alloys may be abrasive; they require harder tool materials. Dimensional tolerance control may be a problem in machining aluminum, since it has a high thermal coefficient of expansion and a relatively low elastic modulus.Beryllium is similar to cast irons. Because it is more abrasive and toxic, though, it requires machining in a controlled environment.Cast gray irons are generally machinable but are. Free carbides in castings reduce their machinability and cause tool chipping or fracture, necessitating tools with high toughness. Nodular and malleable irons are machinable with hard tool materials.Cobalt-based alloys are abrasive and highly work-hardening. They require sharp, abrasion-resistant tool materials and low feeds and speeds.Wrought copper can be difficult to machine because of built-up edge formation, although cast copper alloys are easy to machine. Brasses are easy to machine, especially with the addition pf lead (leaded free-machining brass). Bronzes are more difficult to machine than brass.Magnesium is very easy to machine, with good surface finish and prolonged tool life. However care should be exercised because of its high rate of oxidation and the danger of fire (the element is pyrophoric).Molybdenum is ductile and work-hardening, so it can produce poor surface finish. Sharp tools are necessary.Nickel-based alloys are work-hardening, abrasive, and strong at high temperatures. Their machinability is similar to that of stainless steels.Tantalum is very work-hardening, ductile, and soft. It produces a poor surface finish; tool wear is high.Titanium and its alloys have poor thermal conductivity (indeed, the lowest of all metals), causing significant temperature rise and built-up edge; they can be difficult to machine.Tungsten is brittle, strong, and very abrasive, so its machinability is low, although it greatly improves at elevated temperatures.Zirconium has good machinability. It requires a coolant-type cutting fluid, however, because of the explosion and fire.20.9.3 Machinability of Various MaterialsGraphite is abrasive; it requires hard, abrasion-resistant, sharp tools.Thermoplastics generally have low thermal conductivity, low elastic modulus, and low softening temperature. Consequently, machining them requires tools with positive rake angles (to reduce cutting forces), large relief angles, small depths of cut and feed, relatively high speeds, and proper support of the workpiece. Tools should be sharp.External cooling of the cutting zone may be necessary to keep the chips from becoming “gummy” and sticking to the tools. Cooling can usually be achieved with a jet of air, vapor mist, or water-soluble oils. Residual stresses may develop during machining. To relieve these stresses, machined parts can be annealed for a period of time at temperatures ranging from to (to), and then cooled slowly and uniformly to room temperature.Thermosetting plastics are brittle and sensitive to thermal gradients during cutting. Their machinability is generally similar to that of thermoplastics.Because of the fibers present, reinforced plastics are very abrasive and are difficult to machine. Fiber tearing, pulling, and edge delamination are significant problems; they can lead to severe reduction in the load-carrying capacity of the component. Furthermore, machining of these materials requires careful removal of machining debris to avoid contact with and inhaling of the fibers.The machinability of ceramics has improved steadily with the development of nanoceramics (Section 8.2.5) and with the selection of appropriate processing parameters, such as ductile-regime cutting (Section 22.4.2).Metal-matrix and ceramic-matrix composites can be difficult to machine, depending on the properties of the individual components, i.e., reinforcing or whiskers, as well as the matrix material.20.9.4 Thermally Assisted MachiningMetals and alloys that are difficult to machine at room temperature can be machined more easily at elevated temperatures. In thermally assisted machining (hot machining), the source of heata torch, induction coil, high-energy beam (such as laser or electron beam), or plasma arcis forces, (b) increased tool life, (c) use of inexpensive cutting-tool materials, (d) higher material-removal rates, and (e) reduced tendency for vibration and chatter.It may be difficult to heat and maintain a uniform temperature distribution within the workpiece. Also, the original microstructure of the workpiece may be adversely affected by elevated temperatures. Most applications of hot machining are in the turning of high-strength metals and alloys, although experiments are in progress to machine ceramics such as silicon nitride. SUMMARYMachinability is usually defined in terms of surface finish, tool life, force and power requirements, and chip control. Machinability of materials depends not only on their intrinsic properties and microstructure, but also on proper selection and control of process variables. 可机加工性一种材料的可机加工性通常以四种因素的方式定义:1、 分的表面光洁性和表面完整性。2、刀具的寿命。3、切削力和功率的需求。4、切屑控制。以这种方式,好的可机加工性指的是好的表面光洁性和完整性,长的刀具寿命,低的切削力和功率需求。关于切屑控制,细长的卷曲切屑,如果没有被切割成小片,以在切屑区变的混乱,缠在一起的方式能够严重的介入剪切工序。因为剪切工序的复杂属性,所以很难建立定量地释义材料的可机加工性的关系。在制造厂里,刀具寿命和表面粗糙度通常被认为是可机加工性中最重要的因素。尽管已不再大量的被使用,近乎准确的机加工率在以下的例子中能够被看到。一 钢的可机加工性因为钢是最重要的工程材料之一(正如第5章所示),所以他们的可机加工性已经被广泛地研究过。通过宗教铅和硫磺,钢的可机加工性已经大大地提高了。从而得到了所谓的易切削钢。二次硫化钢和二次磷化钢 硫在钢中形成硫化锰夹杂物(第二相粒子),这些夹杂物在第一剪切区引起应力。其结果是使切屑容易断开而变小,从而改善了可加工性。这些夹杂物的大小、形状、分布和集中程度显著的影响可加工性。化学元素如碲和硒,其化学性质与硫类似,在二次硫化钢中起夹杂物改性作用。钢中的磷有两个主要的影响。它加强铁素体,增加硬度。越硬的钢,形成更好的切屑形成和表面光洁性。需要注意的是软钢不适合用于有积屑瘤形成和很差的表面光洁性的机器。第二个影响是增加的硬度引起短切屑而不是不断的细长的切屑的形成,因此提高可加工性。含铅的钢 钢中高含量的铅在硫化锰夹杂物尖端析出。在非二次硫化钢中,铅呈细小而分散的颗粒。铅在铁、铜、铝和它们的合金中是不能溶解的。因为它的低抗剪强度。因此,铅充当固体润滑剂并且在切削时,被涂在刀具和切屑的接口处。这一特性已经被在机加工铅钢时,在切屑的刀具面表面有高浓度的铅的存在所证实。当温度足够高时例如,在高的切削速度和进刀速度下铅在刀具前直接熔化,并且充当液体润滑剂。除了这个作用,铅降低第一剪切区中的剪应力,减小切削力和功率消耗。铅能用于各种钢号,例如10XX,11XX,12XX,41XX等等。铅钢被第二和第三数码中的字母L所识别(例如,10L45)。(需要注意的是在不锈钢中,字母L的相同用法指的是低碳,提高它们的耐蚀性的条件)。然而,因为铅是有名的毒素和污染物,因此在钢的使用中存在着严重的环境隐患(在钢产品中每年大约有4500吨的铅消耗)。结果,对于估算钢中含铅量的使用存在一个持续的趋势。铋和锡现正作为钢中的铅最可能的替代物而被人们所研究。脱氧钙钢 一个重要的发展是脱氧钙钢,在脱氧钙钢中矽酸钙盐中的氧化物片的形成。这些片状,依次减小第二剪切区中的力量,降低刀具和切屑接口处的摩擦和磨损。温度也相应地降低。结果,这些钢产生更小的月牙洼磨损,特别是在高切削速度时更是如此。不锈钢 奥氏体钢通常很难机加工。振动能成为一个问题,需要有高硬度的机床。然而,铁素体不锈钢有很好的可机加工性。马氏体钢易磨蚀,易于形成积屑瘤,并且要求刀具材料有高的热硬度和耐月牙洼磨损性。经沉淀硬化的不锈钢强度高、磨蚀性强,因此要求刀具材料硬而耐磨。钢中其它元素在可机加工性方面的影响 钢中铝和矽的存在总是有害的,因为这些元素结合氧会生成氧化铝和矽酸盐,而氧化铝和矽酸盐硬且具有磨蚀性。这些化合物增加刀具磨损,降低可机加工性。因此生产和使用净化钢非常必要。根据它们的构成,碳和锰钢在钢的可机加工性方面有不同的影响。低碳素钢(少于0.15%的碳)通过形成一个积屑瘤能生成很差的表面光洁性。尽管铸钢的可机加工性和锻钢的大致相同,但铸钢具有更大的磨蚀性。刀具和模具钢很难用于机加工,他们通常再煅烧后再机加工。大多数钢的可机加工性在冷加工后都有所提高,冷加工能使材料变硬并且减少积屑瘤的形成。其它合金元素,例如镍、铬、钳和钒,能提高钢的特性,减小可机加工性。硼的影响可以忽视。气态元素比如氢和氮在钢的特性方面能有特别的有害影响。氧已经被证明了在硫化锰夹杂物的纵横比方面有很强的影响。越高的含氧量,就产生越低的纵横比和越高的可机加工性。选择各种元素以改善可加工性,我们应该考虑到这些元素对已加工零件在使用中的性能和强度的不利影响。例如,当温度升高时,铝会使钢变脆(液体金属脆化,热脆化,见
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