Structural Transitions in Sheared Electrically Stabilized Colloidal Crystals

المؤلفون المشاركون

Laven, Jozua
Senge, Bernhard
Kaldasch, Joachim

المصدر

Journal of Applied Chemistry

العدد

المجلد 2013، العدد 2013 (31 ديسمبر/كانون الأول 2013)، ص ص. 1-7، 7ص.

الناشر

Hindawi Publishing Corporation

تاريخ النشر

2013-12-24

دولة النشر

مصر

عدد الصفحات

7

التخصصات الرئيسية

العلوم الهندسية و تكنولوجيا المعلومات
الكيمياء
علوم

الملخص EN

A Landau theory is presented for the structural transition of electrically stabilized colloidal crystals under shear.

The model suggests that a structural transition from an ordered layered colloidal crystal into a disordered structure occurs at a critical shear stress.

The shear induced structural transition is related to a change of the rheological properties caused by the variation of the microstructure which can be verified by scattering experiments.

The theory is used to establish the shape of the flow curves.

A good qualitative agreement with experimental results can be achieved, while a scaling relation similar to the elastic scaling is established.

نمط استشهاد جمعية علماء النفس الأمريكية (APA)

Kaldasch, Joachim& Senge, Bernhard& Laven, Jozua. 2013. Structural Transitions in Sheared Electrically Stabilized Colloidal Crystals. Journal of Applied Chemistry،Vol. 2013, no. 2013, pp.1-7.
https://search.emarefa.net/detail/BIM-507356

نمط استشهاد الجمعية الأمريكية للغات الحديثة (MLA)

Kaldasch, Joachim…[et al.]. Structural Transitions in Sheared Electrically Stabilized Colloidal Crystals. Journal of Applied Chemistry No. 2013 (2013), pp.1-7.
https://search.emarefa.net/detail/BIM-507356

نمط استشهاد الجمعية الطبية الأمريكية (AMA)

Kaldasch, Joachim& Senge, Bernhard& Laven, Jozua. Structural Transitions in Sheared Electrically Stabilized Colloidal Crystals. Journal of Applied Chemistry. 2013. Vol. 2013, no. 2013, pp.1-7.
https://search.emarefa.net/detail/BIM-507356

نوع البيانات

مقالات

لغة النص

الإنجليزية

الملاحظات

Includes bibliographical references

رقم السجل

BIM-507356