EAS152 Strength of Materials

Similar documents
EAS 152/3 Strength Of Materials [Kekuatan Bahan]

UNIVERSITI SAINS MALAYSIA. EAS 152/3 Strength Of Materials [Kekuatan Bahan]

EMM 213 Strength of Materials [Kekuatan Bahan]

INSTRUCTION: This section consists of TWO (2) structured questions. Answer ALL the questions.

Figure A1(a)/Rajah A1(a)

EAS 253E/3 Theory of Structures EAS 253E/3 Teori Struktur

IWK 302 WOOD ENGINEERING [KEJURUTERAAN KAYU]

IWK 302 Wood Engineering [Kejuruteraan Kayu]

IWK 302 WOOD ENGINEERING [KEJURUTERAAN KAYU]

EAS151 Statics and Dynamics [Statik dan Dinamik]

EAS 254E/3 Structural Analysis (Analisis Struktur)

EAS253 Theory of Structures [Teori Struktur]

EAS 253E/3 Theory of Structures EAS 253E/3 Teori Struktur

EEE 208 TEORI LITAR II

MAT 223 DIFFERENTIAL EQUATIONS I [Persamaan Pembezaan I]

ESA 380/3 Orbital Mechanics Mekanik Orbit

MAA 101 Calculus for Science Students I [Kalkulus untuk Pelajar Sains I]

MAT Calculus [Kalkulus]

EME 411 Numerical Methods For Engineers [Kaedah Berangka Untuk Jurutera]

MAT 111 Linear Algebra [Aljabar Linear]

EAS 253/3 Theory of Structures [Teori Struktur]

EMM 101/3 Engineering Mechanics [Mekanik Kejuruteraan]

This paper consists of SIX (6) structured questions. Answer any FOUR (4) questions.

EMH 451 Numerical Methods For Engineers [Kaedah Berangka Untuk Jurutera]

EAA211 Engineering Mathematics for Civil Engineers [Matematik Kejuruteraan untuk Jurutera Awam]

EAS 566/4 Special Structures EAS 566/4 Struktur Khas

EEU 104 TEKNOLOGI ELEKTRIK

EMH 211 Thermodynamics [Termodinamik]

ESA 380/3 Orbital Mechanics [Mekanik Orbit]

EEM 423 KEJURUTERAAN KEBOLEHPERCAYAAN

MAT 111 Linear Algebra [Aljabar Linear]

MAA Calculus for Science Students I [Kalkulus untuk Pelajar Sains I]

MSG 356 Mathematical Programming [Pengaturcaraan Matematik]

MAT 202 Introduction to Analysis [ Pengantar Analisis]

MAT 101 Calculus [ Kalkulus] Duration : 3 hours [Masa : 3 jam]

EAS 254/3 Structural Analysis [Analisis Struktur]

MSG 389 Engineering Computation II [Pengiraan Kejuruteraan II]

MAT111 Linear Algebra [Aljabar Linear]

MSG 389 Engineering Computation II [Pengiraan Kejuruteraan II]

MAT 222 Differential Equations II [Persamaan Pembezaan II]

REG 363 Site Investigation (Kajian Tapak)

EAS 563/4 Kestabilan Dan Dinamik Struktur EAS 563/4 Structural Stability And Dynamics

MSS 317 Coding Theory [Teori Pengekodan]

CPT115 Mathematical Methods for Computer Sciences [Kaedah Matematik bagi Sains Komputer]

UNIVERSITI SAINS MALAYSIA. CCS513 Computer Vision and Image Analysis [Penglihatan Komputer dan Analisis Imej]

EMH 211 Thermodynamics [Termodinamik]

MAT 263 Probability Theory [Teori Kebarangkalian]

UNIVERSITI SAINS MALAYSIA EEE 354 SISTEM KAWALAN DIGIT

ESA 367/2 Flight Stability & Control I Kestabilan & Kawalan Penerbangan I

MSG 389 Engineering Computation II [Pengiraan Kejuruteraan II]

MGM 531 Euclidean Geometry [Geometri Euklidan]

MAT Linear Algebra [Aljabar Linear]

MAA 111 Algebra for Science Students [Aljabar untuk Pelajar Sains]

MAT 101 Calculus [ Kalkulus]

EME 451/3 Computational Fluid Dynamics Pengkomputeran Dinamik Bendalir

UNIVERSITI SAINS MALAYSIA. CPT115 Mathematical Methods for Computer Science [Kaedah Matematik bagi Sains Komputer]

EMH 451/3 Numerical Methods For Engineers Kaedah Berangka Untuk Jurutera

IEK 108 PROCESS FLUID MECHANICS [MEKANIK BENDALIR PROSES]

MAT 518 Numerical Methods for Differential Equations [Kaedah Berangka untuk Persamaan Pembezaan]

UNIVERSITI SAINS MALAYSIA EEE 354 SISTEM KAWALAN DIGIT

EEE REKABENTUK SISTEM KAWALAN

IEK 212 PROCESS HEAT TRANSFER [PEMINDAHAN HABA PROSES]

MST 565 Linear Model [Model Linear]

INSTRUCTION: This paper consists of SIX (6) essay questions. Answer any FOUR (4) questions only.

MST 565 Linear Models [Model Linear]

EPP 322 Advanced Manufacturing Process [Proses Pembuatan Termaju]

IEK 108 PROCESS FLUID MECHANICS [MEKANIK BENDALIR PROSES]

DJJ5113: MECHANICS OF MACHINES

EAH 221/3 Fluid Mechanics For Civil Engineers [Mekanik Bendalir Untuk Jurutera Awam]

EAK 263/4 Geomatic Engineering [Kejuruteraan Geomatik]

UNIVERSITI SAINS MALAYSIA EEM 352 REKABENTUK MEKATRONIK II

UNIVERSITI SAINS MALAYSIA. CCS511 Evolutionary Computing [Perkomputeran Berevolusi]

INSTRUCTION: This section consists of TEN (10) structure questions. Answer ALL questions.

-1- UNIVERSITI SAINS MALAYSIA. Second Semester Examination 2008/2009 Academic Session Peperiksaan Semester Kedua Sidang Akademik 2008/2009

UNIVERSITI SAINS MALAYSIA

ESA 382/3 Spacecraft Subsystem Design Rekabentuk Subsistem Kapal Angkasa

ESA 368/3 High Speed Aerodynamics Aerodinamik Berkelajuan Tinggi

-1- UNIVERSITI SAINS MALAYSIA. Second Semester Examination Academic Session 2009/2010. April/May 2010

IUK 107 CHEMISTRY FOR TECHNOLOGIST [KIMIA UNTUK TEKNOLOGIS]

UNIVERSITI SAINS MALAYSIA

MAT 100 Foundation Mathematics [Asas Matematik]

INSTRUCTION: This section consists of SIX (6) structured questions. Answer FOUR (4) questions only.

EEE 350 SISTEM KAWALAN

ESA 251/3 Control System Theory Teori Sistem Kawalan

(Kertas soalan ini mengandungi 5 soalan dalam 8 halaman yang bercetak) (This question paper consists of 5 questions on 8 printed pages)

IEK PROCESS HEAT TRANSFER [PEMINDAHAN HABA PROSES]

UNIVERSITI SAINS MALAYSIA. CIT562 Bioinformatics Computing [Perkomputeran Bioinformatik]

UNIVERSITI SAINS MALAYSIA. CPT112 Discrete Structures [Struktur Diskret]

INSTRUCTION: This section consists of TEN (10) structured questions. Answer ALL questions.

INSTRUCTION: This section consists of TWO (2) structured questions. Answer ALL questions.

DCC5143: FLUID MECHANICS

RET Construction Geotechnology [Geoteknologi Pembinaan]

BST 203/3 Population and Community Ecology [Ekologi Populasi dan Komuniti]

EMH 441 Heat Transfer [Pemindahan Haba]

SOALAN 1. Rajah S1. Data-data yang diberikan adalah seperti berikut:-

UNIVERSITI TUN HUSSEIN ONN MALAYSIA PEPERIKSAAN AKHIR SEMESTER II SESI 2009/2010

ZCT 104E/3 - Fizik IV (Fizik Moden)

EEE 223 TEORI ELEKTROMAGNET

UNIVERSITI SAINS MALAYSIA

UNIVERSITI SAINS MALAYSIA. Second Semester Examination Academic Session 2004/2005. March 2005 MGM ANALYSIS [ANA LISIS]

Transcription:

UNIVERSITI SAINS MALAYSIA KSCP Examination 2016/2017 Academic Session August 2017 EAS152 Strength of Materials [Kekuatan Bahan] Duration : 3 hours [Masa : 3 jam] Please check that this examination paper consists of ELEVEN (11) pages of printed material including appendix before you begin the examination. [Sila pastikan bahawa kertas peperiksaan ini mengandungi SEBELAS (11) muka surat yang bercetak termasuk lampiran sebelum anda memulakan peperiksaan ini.] Instructions : This paper consists of SIX (6) questions. Answer FIVE (5) questions. [Arahan : Kertas ini mengandungi ENAM (6) soalan. Jawab LIMA (5) soalan.] In the event of any discrepancies, the English version shall be used. [Sekiranya terdapat percanggahan pada soalan peperiksaan, versi Bahasa Inggeris hendaklah diguna pakai.] 2/-

-2-1. Figure 1 shows a horizontal rigid beam ABC supported by two bars BD and CE at point B and C, respectively. The rigid beam ABC is subjected to a downward vertical force of P=15kN acting at point A. Both bars BD and CE consist of pairs of links with cross-sectional sizes as follows: 7.5mm 20mm for each of the link of bar BD and 7.5mm 27.5mm for each of the link of bar CE. Bar BD is connected to support D by means of a bolt connection with bolt diameter dbolt,d=7.5mm whilst bar CE is connected to support E by means of welding. For the connections to rigid horizontal beam ABC, bolts of diameter dbolt,b=7.5mm and dbolt,c=12.5mm are used at B and C, respectively. Thickness of horizontal rigid beam ABC is t=12.5mm. Side views of bar BD and CE are shown in Figure 2. Rajah 1 menunjukkan satu rasuk tegar ABC yang disokong oleh bar BD pada titik B dan bar CE pada titik C. Rasuk tegar ABC berkenaan dikenakan satu beban pugak ke bawah P=15kN pada titik A. Kedua-dua bar BD dan CE terdiri daripada pasangan link dengan saiz keratan seperti berikut : 7.5mm 20mm untuk setiap link bar BD dan 7.5mm 27.5mm untuk setiap link bar CE. Bar BD disambung kepada penyokong D melalui satu sambungan dengan garispusat bolt dbolt,d=7.5mm ; manakala bar CE disambung kepada penyokong E melalui kimpalan. Untuk sambungan kepada rasuk tegar ABC, bolt bergarispusat dbolt,b=7.5mm digunakan pada B dan bergarispusat dbolt,e=12.5mm digunakan pada C. Tebal rasuk tegar ufuk ABC adalah t=12.5mm. Rajah 2 menunjukkan pandangan sisi bar BD dan CE. Based on information given above, calculate: Berdasarkan maklumat di atas, kirakan: [a] normal stress on gross sectional area in each of the link of bar BD and CE. Indicate if the stresses are compressive or tensile. tegasan normal atas keratan gross dalam setiap link bar BD dan CE. Nyatakan samada tegasan yang terhasil adalah jenis mampatan ataupun tegangan. [b] shear stress in bolt at connection B. tegasan ricih dalam bolt pada sambungan B. 3/-

-3 - [c] bearing stress between bolt and rigid beam at connection C tegasan galas antara bolt dan rasuk tegar pada sambungan C. [d] bearing stress between bolt and link at connection B. tegasan galas antara bolt dan link pada sambungan B. [e] maximum bearing stress on bolt at connection C. tegasan galas maksima atas bolt pada sambungan C. D E 0.75m A B C P=15kN 1.25m 1.25m Figure 1/Rajah 1 4/-

-4 - D E bolt with diameter 7.5mm B 0.75m C bolt with diameter 12.5mm 7.5mm 7.5mm 7.5mm 7.5mm 12.5mm 12.5mm (a) bar BD (b) bar CE Figure 2/ Rajah 2 [20 marks/markah] 2. Figure 3(a) shows a rigid bar ABCD which is supported by a vertical member BE and a pinned support at C. The thickness of the rigid bar is 37.5mm. Vertical member BE is made of one bar with rectangular section with width of 120mm and thickness of 22.5mm. Member BE is connected to rigid bar ABCD by means of a bolted connection at B as shown in Figure 3(b). Member BE is made of steel with elastic modulus E=210GPa. The rigid bar is acted upon by two vertical loads 35kN and 100kN at points A and D, respectively. Using the information above, determine: Rajah 3(a) menunjukkan satu bar tegar ABCD yang disokong oleh anggota pugak BE pada titik B dan penyokong jenis pin pada titik C. Tebal bar tegar ABCD adalah 37.5mm. Anggota BE terdiri daripada satu bar berkeratan segiempat tepat dengan lebar 120mm dan tebal 22.5mm. Anggota BE disambung kepada bar tegar ABCD dengan satu sambungan bolt seperti yang ditunjukkan dalam Rajah 3(b). Anggota BE dibuat daripada keluli dengan nilai modulus anjal E=210GPa. Dua beban pugak bertindak pada bar tegar ABCD : 35kN pada titik A dan 100kN pada titik D. Dengan menggunakan maklumat di atas, tentukan : 5/-

-5 - [a] normal stress in vertical member BE (State whether the resulting stress is tensile or compressive) tegasan normal dalam anggota BE (Nyatakan samada tegasan normal yang terhasil adalah tegasan tegangan ataupun mampatan) [b] elongation of member BE pemanjangan anggota BE [c] vertical deflection of points A and D anjakan pugak titik A dan D [d] minimum thickness required if elongation of bar BE should not exceed 10mm. tebal minima yang diperlukan jika pemanjangan bar BE harus tidak melebihi 10mm. F 1.5m 1.5m 2.0m P A =35kN 4.5m 2.4m P D =100kN 120mm 0.6m (a) 6/-

-6 - Rigid bar ABCD 37.5mm 22.5mm Member BE bolt (b) Figure 3/ Rajah 3 [20 marks/markah] 3. [a] A stepped shaft ABCD consisting of solid circular segments is subjected to three torques as shown in Figure 4. The torques have magnitudes of 1500 Nm, 1200 Nm and 800 Nm. End A is fixed. Sketch the vector for torques applied at the stepped shaft using Right-Hand Rule and calculate the internal torques at each segment. Satu aci pelbagai saiz ABCD terdiri daripada segmen bulat padu dikenakan tiga momen kilasan seperti yang ditunjukkan dalam Rajah 4. Magnitud momen kilasan ialah 1500 Nm, 1200 Nm dan 800 Nm. Hujung A adalah terikat. Lakarkan vektor untuk momen kilasan yang dikenakan atas aci pelbagai saiz dengan menggunakan Aturan Tangan Kanan dan kirakan momen kilasan dalaman untuk setiap segmen aci. [6 marks/markah] A 1500 Nm B 1200 Nm C D 800 Nm 1.5 m 1.0 m 0.75 m Figure 4/Rajah 4 7/-

-7 - When an electrical motor as shown in Figure 5 operates, it transmits 120 kw to the shaft at 15 Hz. The gears at B, C and D drive a machinery requiring power equal to 50 kw, 40 kw and 30 kw, respectively. Calculate the maximum shearing stress in the shaft and the angle of twist AD between the motor at A and gear at D if Apabila motor elektrik seperti yang ditunjukkan dalam Rajah 5 beroperasi, ia menghantar kuasa sebanyak 120 kw ke aci dalam 15 Hz. Gear di B, C and D memacu mesin yang memerlukan kuasa 50 kw, 40 kw dan 30 kw masing-masing. Kirakan tegasan ricih maksimum dalam aci dan sudut piuhan AD antara motor di A dan gear di D jika [i] each shaft is solid setiap aci adalah padu [ii] each shaft is hollow with 8 mm thick wall setiap aci adalah geronggang dengan ketebalan dinding 8 mm For solid shaft assembly, determine the smallest diameter of shaft AB that can be used for which the maximum shearing stress will not be increased. Use shear modulus of 80 GPa. Untuk pemasangan aci padu, tentukan diameter terkecil untuk aci AB yang boleh digunakan supaya tegasan ricih maksimum tidak bertambah. Guna modulus ricih 80 GPa. [14 marks/markah] Motor A 50 mm B 40 mm C 35 mm D 1 m Figure 5 /Rajah 5 1.2 m 0.8 m 8/-

-8-4. For the beam subjected to loading shown in Figure 6, Untuk rasuk yang dikenakan beban yang ditunjukkan dalam Rajah 6, [a] draw the shear force and bending moment diagram lukiskan gambarajah daya ricih dan momen lentur [14 marks/markah] [b] determine the maximum normal stress and the shearing stress in the beam. tentukan tegasan normal maksima dan tegasan ricih maksima dalam rasuk. 10 kn/m [6 marks/markah] A B 3.6 m 125 350 Figure 6/ Rajah 6 Dimension in mm 9/-

-9-5. Determine the equivalent state of stress on an element at the same point for the following cases with respects to the element shown in Figure 7 using Mohr s circle. Tentukan tegasan setara pada elemen pada titik yang sama untuk kes-kes berikut terhadap elemen yang ditunjukkan dalam Rajah 7 mengguna kaedah bulatan Mohr. [a] the principal stress and the corresponding orientation. tegasan utama dan arah putarannya [b] the maximum in-plane shear stress and the associated average normal stress and the corresponding orientation. tegasan ricih maksimum dan tegasan normal purata yang berkenaan dan arah putarannya. [c] the stresses at an angle of 40 in clockwise direction. tegasan pada sudut 40 dalam arah putaran jam. [d] the stresses at an angle of 25 in counter-clockwise direction. tegasan pada sudut 25 dalam arah putaran lawan jam. Sketch the respective plane element for each of the answer given in 5(a) to 5(d). Lakarkan elemen sesatah yang berkenaan bagi setiap jawapan yang diberikan dalam 5(a) hingga 5(d). [20 marks/markah] Figure 7/ Rajah 7 10/-

-10-6. A 7 m long concrete column of 300 mm 300 mm has Young s modulus of 30 GPa. Sebatang tiang konkrit 7 m panjang 300 mm 300 mm mempunyai modulus Young 30 GPa. [a] Sketch buckling mode of the column with the following end conditions. Show the distance of contra-flexure point of the column from any end supports. Lakarkan mod lengkokan tiang tersebut berdasarkan keadaan hujung berikut. Tunjukkan jarak titik kontralentur tiang tersebut dari mana-mana penyokong dihujung. [i] Fixed fixed ends Hujung tegar tegar [ii] Pinned pinned ends Hujung pin pin [iii] Fixed pinned ends Hujung tegar - pin [6 marks/markah] [b] Determine buckling load of the column for each case listed in Question 6[a]. Tentukan beban lengkokan tiang tersebut untuk setiap kes yang disenaraikan dalam Soalan 6[a]. [7 marks/markah] 11/-

-11 - [c] The column need to support an additional of 30% of the buckling load calculated in Question 6(b) and both column ends are changed to fixed. Propose the minimum dimension of the square column so the column does not buckle. Assume the factor of safety as 2.0. Tiang tersebut perlu menanggung tambahan beban sebanyak 30% daripada beban lengkokan yang telah dikira dalam Soalan 6(b) dan kedua-kedua keadaan hujung tiang diikat tegar. Cadangkan dimensi minimum tiang segiempat sama supaya ia tidak melengkok. Andaikan faktor keselamatan sebagai 2.0. [7 marks/markah] - ooooooo -