




已閱讀5頁,還剩3頁未讀, 繼續(xù)免費閱讀
A standard conical point drill grinding machine.PDF.pdf 免費下載
版權說明:本文檔由用戶提供并上傳,收益歸屬內容提供方,若內容存在侵權,請進行舉報或認領
文檔簡介
International Journal of Machine Tools & Manufacture 41 (2001) 915922A standard conical point drill grinding machineM.A. Fugelso*Industrial Engineering Department, The University of Minnesota, 176 Engineering Building, Duluth, MN 55812,USAReceived 13 August 1999; received in revised form 7 July 2000; accepted 13 July 2000AbstractThis paper describes a drill grinding machine that can produce conical twist drill points with very accu-rately specified point shapes. The machine is adjusted by precise orthogonal movements using shims andgages to make sure that the drill parameters are set precisely. The confidence in the point shape producedis high enough that inspection of the points produced is not necessary.Keywords: Drill grinding; Drill sharpening; Cone model drill point; Twist drill grinding1. IntroductionThere are some problems in the adjustment of existing simple conical twist drill grindingmachines. Many of these machines allow the operator to easily vary point parameters that arenot very important as far as drilling performance is concerned, such as point angle, and at thesame time do not allow straightforward adjustment of parameters that have a very powerful effecton performance, such as skew distance, d parameter described by Tsai and Wu 1,2 and wparameter described by Fugelso 3,4. Most machines adjust w in a trial-and-error manner untilan acceptable but uncharacterized drill is produced. This leads to variations in batches of drillpoints produced.After a conical drill point has been produced it is very difficult to measure the point andascertain its model parameters. It is easy to find the sum of q and f because twice that sum isthe easily measured point angle, but separating q and f is difficult. The measured chisel edgeangle contains the w parameter and w cannot easily be separated from the chisel edge angle.While the d parameter cannot be measured directly, Tsai and Wu 1 showed that it can be inferred* Fax: +1-218-726-8596.E-mail address: (M.A. Fugelso).916 M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 915922Nomenclatured distance between tip of drill and tip of grinding cone measured parallel to coneaxisD drill diameterHRheight of calibrating rod tip over the baseHSheight of contact point of square calibrating bar and grinding wheel over the baseL a calibration distanceP skew distance adjusting shim thicknessP0thickness of shim P that causes the drill axis to intersect the cone axis AA9Q a parameter adjusting shim thicknessQ0shim thickness required to produce d=0 on a drill of diameter D=0QCthickness of shim Q in place during Q0calibration, any thickness will doR distance from base to top side of gage GR0distance from base to tip of calibrating rodS skew distance between drill axis and grinding cone axisw width of gage block to set w parameterw0width of gage block that lines up with cone axis in side view, Fig. 2W drill web thicknessq grinding cone half anglef angle between drill axis and grinding cone axisw rotation of drill blank about its own axis before grindingfrom the chisel edge angle if the other parameters are known. This confounding of cone modelparameters makes it difficult to inspect points, and it is therefore important to produce the pointscorrectly in the first place.This paper describes a twist drill grinding machine that allows the setting of all of the conedrill point parameters and makes sure that these parameters are well known and repeatable. Thisis because they are set directly from first principles using shims and gage blocks to position thedrill blank precisely. And it can be calibrated with as little knowledge of grinder part dimensionsas possible.2. Description of grinderFig. 1 shows the cone model of a twist drill point with the parameters cone half angle (q),drill axis to cone axis angle (f), skew distance (S) and distance from cone tip to drill tip (d)asdescribed by Tsai and Wu 1.Fig. 2 shows the configuration of the standard conical drill grinder. The axis AA9 is the axisof the cone model. The angle q is set at 30 as this gives a good distribution of relief angle alongthe cutting edge, but not too large a chisel edge angle, see Fugelso 4; a chisel edge angle lessthan 120 sacrifices potential drill performance. The angle f is fixed at 29 to give a standard917M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 915922Fig. 1. Cone model of a twist drill point.Fig. 2. Side view of the standard conical twist drill grinder.point angle of 118 , the point angle being double the sum of f and q. If desired q and f couldbe different, but the above values should be adequate for a wide range of applications.Skew distance has a great effect on drill geometry. A small change in skew distance changesthe relief angles as defined in 5 a great deal. An increase in skew distance results in a uniform918 M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 915922increase in relief angle over the entire length of the cutting edge of the drill. Typically the skewdistance is about equal to the web thickness. The skew distance S can be accurately adjusted byvarying the thickness of shim P, Fig. 3. The value of skew distance is equal to a machine constantP0determined after construction minus the shim thickness P.The d parameter can be adjusted with shim Q, Fig. 3. The shim Q causes displacements atright angles to the displacements caused by shim P, raising and lowering the drill blank. Theshim thickness Q is given by the following equation that is a function of drill diameter D andthe d parameter:Q5Q02D2 sin 45 sin(q+f)2dcos q. (1)The d parameter is a function of the drill diameter because the drill is held in a V groove. Ifthe drill were held in a chuck, d would not be a function of drill diameter. The value of d shouldbe equal to 6090% of the drill diameter, as small as possible without making the chisel edgeangle too large, i.e., greater than 133 . This results in the relief angle increasing as much aspossible along the cutting edge traveling toward the drill axis. Most existing drill grinders do notallow adjustment of this parameter and have a built-in fixed d value that is marginally acceptablefor large drills and much too large for smaller drills.The top side of gage G must be at a distance J from the cone tip to properly align w, Fig. 2.J is given by:J5d1d cos q2 sin(q+f). (2)Then distance R would be:R5R02J. (3)Fig. 3. Isometric view of the standard conical twist drill grinder.919M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 915922Fig. 4. Setting distance R, with drill rotated 90 about cone axis.Fig. 4 shows the distance R from gage G to the base. The gage G must be positioned along theZ axis of the flute stop, Fig. 5, so that it engages the flute of the drill, but this is not a precisionadjustment because of the concave shape of the flute. The w parameter is adjusted by the width(w) of gage G. The drill holder rotates 90 about the cone axis AA9. Then the gage contacts thepoint on the drill where the cutting edge will reach the outside diameter after grinding has takenplace, Figs. 4 and 5. This results in setting w from first principles, w is given by the following equ-ation:Fig. 5. Setting drill point w parameter.920 M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 915922w5w02W22D2tan w. (4)The w parameter ranges from zero to a small positive angle, not more than +15 . Increasing wby 1 increases the chisel edge angle by 1 . Increasing w has a beneficial effect on the distributionof relief angle along the cutting edge, see Fugelso 3,4. But doing this increases chisel edgeangle. The chisel edge angle must be less than about 133 or the chisel edge will be too long.Often the w parameter is increased to compensate for a built-in d parameter that is too large, asdemonstrated by Fugelso 3.After touching off the drill flute on the gage G as shown in Fig. 4, the drill is clamped in theV groove drill holder and the drill holder is rotated backward by 90 on the cone axis, encoun-tering the grinding wheel and forming half the point. The drill is then loosened and rotated about180 , and the drill holder is rotated forward 90 . The second flute is touched off on gage G toline up the second half of the point and the drill is reclamped. Then the drill holder is rotatedback again, forming the second half of the point. For clarity the clamps and AA9 axis rotationstops are not shown on the figures.3. CalibrationIt is desirable to calibrate the machine without explicitly knowing the dimensions of the grinderbecause then the calibration is not affected by inaccurately formed or measured parts. While thereis no easy way to get around measuring the angular dimensions, it is possible to calibrate withoutknowing many of the linear dimensions. But, finding P0is very simple and may be found utilizingordinary measuring tools.The calibration of Q0and R0assumes that the grinding wheel can be moved along its axis ofrotation and returned to a previous axial position accurately. R0may be found by replacing therotating part of the grinder with a conical pointed calibrating rod, dashed lines in Fig. 2. R0isthe distance from the base to the tip of the rod when the side of the cone touches the grindingwheel. The height HRfrom the tip of the rod to the base must be recorded to use in the calibrationof Q0. HRonly needs to measured once because it has a constant ratio with R0.Q0may be found by placing a square calibrating bar on the V groove and measuring theheight HSfrom the base to the point of contact of the square bar and the grinding wheel, dashedlines in Fig. 2. Also, the distance L should be measured at this point for future recalibrations. Then:Q05HR2HS1QC. (5)In a grinding machine intended to produce a wide range of drill diameters, the range of shimQ thicknesses required may be inconveniently large. The grinding wheel may be translated to theleft increasing L, Fig. 2. Increasing L from its originally measured value will increase d and threeof the calibration constants according to the following relations:Dd5DL/tan q2DL tan(902q2f) cos q, DR05DL/sin q, DHR5DL/tan q, DHS(6)921M.A. Fugelso / International Journal of Machine Tools & Manufacture 41 (2001) 9159225DL tan(902q2f).Eq. (6) also may be used to recalibrate the machine after dressing the side of the grindingwheel. The effect of wheel dressing is to create a small DL.4. AccuracyWhen the V groove drill holder is in the position shown in Fig. 2, there is a very small gapbetween the drill point and the grinding wheel. The gap width is given by:Gap width5S- (W/2)2D. (7)The gap width approaches 0.0 as the skew distance approaches its lower limit of W/2. This gapincreases with increasing skew distance. Neglecting this gap produces a small error in of thesecond term of Eq. (2) of about 1%. This could result in a fraction of a degree error in the wparameter. This is acceptable because w is normally specified in whole degrees, not fractions.5. DiscussionThe drill points created by this standard drill grinder can be compared with drills produced byother grinders in a number of ways. The surface of the drill flank and its edges could be measuredwith a coordinate-measuring machine (CMM) to compare the point produced by a productiongrinder with a standard point. This would tell if the two points were the same. However, it wouldbe good for the comparison if the drill parameters of the point could be extracted from the flanksurface points measured by the CMM. Then the production drill grinder could be adjusted in arational way so that it produces points the same as the standard drill grinder.Another comparison would be to conduct tool life tests of the standard point and the productionpoint, but the problem is that the cutting performance could be quite similar for points that haddifferent shapes. The drills produced by the standard grinder are intended to provide a geometricbenchmark for tests of new drill point shapes.A third comparison would be to check the relief angle of the two drill points at the outerdiameter (OD) and at a point near the end of the chisel edge. These angles are critical to drillperformance. The relief angle near the chisel edge should be larger than at the OD. This approachwould yield good drilling performance but still leave the shape of the production drill incom-pletely specified.6. ConclusionsWhile cam-driven mechanical grinding machines and computer-controlled grinders can producea wide variety of points with programmed changeover
溫馨提示
- 1. 本站所有資源如無特殊說明,都需要本地電腦安裝OFFICE2007和PDF閱讀器。圖紙軟件為CAD,CAXA,PROE,UG,SolidWorks等.壓縮文件請下載最新的WinRAR軟件解壓。
- 2. 本站的文檔不包含任何第三方提供的附件圖紙等,如果需要附件,請聯(lián)系上傳者。文件的所有權益歸上傳用戶所有。
- 3. 本站RAR壓縮包中若帶圖紙,網(wǎng)頁內容里面會有圖紙預覽,若沒有圖紙預覽就沒有圖紙。
- 4. 未經(jīng)權益所有人同意不得將文件中的內容挪作商業(yè)或盈利用途。
- 5. 人人文庫網(wǎng)僅提供信息存儲空間,僅對用戶上傳內容的表現(xiàn)方式做保護處理,對用戶上傳分享的文檔內容本身不做任何修改或編輯,并不能對任何下載內容負責。
- 6. 下載文件中如有侵權或不適當內容,請與我們聯(lián)系,我們立即糾正。
- 7. 本站不保證下載資源的準確性、安全性和完整性, 同時也不承擔用戶因使用這些下載資源對自己和他人造成任何形式的傷害或損失。
最新文檔
- 合伙外包項目管理辦法
- 庫房物資存儲管理辦法
- 班主任畢業(yè)班沖刺備考計劃
- 幼兒心理健康德育計劃
- 科技英語專項提升教學計劃
- 新版人教版一年級數(shù)學上冊教學課件制作計劃
- 2025年中國驅動電源行業(yè)市場發(fā)展前景及發(fā)展趨勢與投資戰(zhàn)略研究報告
- NBS酸性固色劑項目投資可行性研究分析報告(2024-2030版)
- 2025年中國建工機械行業(yè)市場深度研究及發(fā)展趨勢預測報告
- 2022-2027年中國節(jié)能建材行業(yè)市場調查研究及投資戰(zhàn)略研究報告
- 帶狀皰疹課件(課件演示)
- T/CAS 413-2020排水管道檢測和非開挖修復工程監(jiān)理規(guī)程
- 小酒館合伙人合作協(xié)議書
- 電玩城入股合同范本
- 2025-2030中國搜索引擎行業(yè)現(xiàn)狀供需分析及市場深度研究發(fā)展前景及規(guī)劃可行性分析研究報告
- 驛站合伙承包協(xié)議書
- 2025年社會工作專業(yè)資格考試試題及答案
- 拖欠房租分期協(xié)議書
- 藍莓鮮果采購合同協(xié)議
- 人事行政部2025年部門工作總結模版
- 方劑歌訣(廣中醫(yī)版)
評論
0/150
提交評論