Kurumun Atıf Alan Makalesi
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Some physical properties of Hacihaliloglu apricot pit and its kernel
Scopus
Toplam 147 atıf DOI
Physical properties of apricot pits and apricot kernels are necessary for the design of equipments for processing, transportation, sorting, breaking and separating. In this study, some physical properties of pits and kernels of Hacihaliloglu apricots were evaluated as a function of moisture content varying from 6.79% to 36.19% d.b. for apricot pits and from 6.95% to 38.76% d.b. for apricot kernels. In apricot pits, dimensional properties and weight increased; the sphericity decreased from 0.6537 to 0.6526; the 1000 grain mass increased from 1720 to 2028 g; bulk density increased form 463 to 581 kg/m3; grain volume increased from 1626 to 1746 mm3; volume weight increased from 1053 to 1161 kg/m3; terminal velocity increased from 7.11 to 7.76 m/s; the projected area increased from 2.985 to 3.539 cm2; the porosity increased from 43.96% to 50.03%; the rupture strength of apricot pits decreased from 514.03 to 315.89 N; and the coefficient of static friction of apricot pits increased as the moisture content increased. In apricot kernels, however, dimensional properties and weight increased; the sphericity increased from 0.5879 to 0.7164; the 1000 grain mass increased from 473 to 616 g; bulk density decreased from 559 to 545 kg/m3; grain volume increased from 497 to 573 mm3; true density increased from 1003 to 1094 kg/m3; terminal velocity increased from 5.37 to 6.68 m/s; the projected area increased from 1.293 to 1.519 cm2; the porosity decreased from 55.70% to 49.70%; rupture strength of apricot kernels decreased from 63.28 to 44.13 N; and the coefficient of static friction increased as the moisture content increased. © 2002 Elsevier Science Ltd. All rights reserved.
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Atıf Yapan Yayın
Comparison of mechanical properties of some selected almond cultivars with hard and soft shell under compression loading
Scopus
Havuzumuzda 28 atıf almış
The mechanical properties of Nonpareil versus Gulcan 101-23 almond cultivars that have different shell properties were loaded between two parallel plates to determine the rupture force, rupture energy, rupture power requirement, toughness and firmness. The tests were carried out with three moisture contents, namely, 7.2, 22.9 and 33.6% wet basis and three loading axes (x, y, z). Physical characteristics of the almond cultivars such as length, width, thickness, geometric mean diameter, sphericity, volume, surface area and weight were determined. Physical properties of both cultivars increased as a numerical by increasing moisture content. The highest rupture force in all moisture content levels was obtained for almond pit loaded along the y-axis. In addition to rupture force, values of absorbed energy, toughness, power requirement and firmness were calculated as mechanical properties. The maximum force required to initiate pit rupture was found as maximum 554.3 N at y-axis for 7.2% moisture content and minimum 126.9 N at x-axis for 33.6% moisture content for Gulcan 101-23 cultivar. These values were determined as 53.3 and 11.2 N, respectively, for Nonpareil cultivar. Rupture force, absorbed energy, toughness, power requirement and firmness decreased with an increase of moisture content. The difference between mechanical properties of Nonpareil versus Gulcan 101-23 almond cultivars was found to be highly significant (P < 0.001). As almond production increases in the world, almond processes are performed by hand or by using old techniques. Therefore, major quality loss during harvesting and postharvesting processes of almonds occurs. The most critical and delicate operation in postharvesting processes is pit cracking to extract the fragile whole edible kernel from the almond pit. This process is still carried out by hand or by using an apricot cracking equipment. But this is not the right process because shell hardness of almond pit changes in relation to almond cultivars. While some almond pits can be cracked using high power and some apparatus, some of them can be cracked even by hand easily. The cracking operation causes damage and broken kernels because of the excessive mechanical forces. The extent and type of damage depend on the physical characteristics, cultivar and applied force. For this reason, systems must be designed while taking these criteria into consideration to prevent inadequate applications. © 2007, The Author(s); Journal compilation © 2007, Blackwell Publishing.
Atıf Yapan Makale Bilgileri
Kurumlar (2)
Harran Üniversitesi
Sanliurfa, Turkey
Tekirdağ Namık Kemal Üniversitesi
Tekirdag, Turkey