It has been illustrated several times how the built-in acceleration sensors of smartphones can be used gainfully for quantitative experiments in school and university settings (see the overview in Ref. 1). The physical issues in that case are manifold and apply, for example, to free fall,2 radial acceleration,3 several pendula,4,5 or the exploitation of everyday contexts.6 This paper supplements these applications and presents an experiment to study elastic and inelastic collisions. In addition to the masses of the two impact partners, their velocities before and after the collision are of importance, and these velocities can be determined by numerical integration of the measured acceleration profile.

1.
J.
Kuhn
,
“Relevant information about using a mobile phone acceleration sensor in physics experiments,”
Am. J. Phys.
82
(paper accepted).
2.
P.
Vogt
and
J.
Kuhn
,
“Analyzing free fall with a smartphone acceleration sensor,”
Phys. Teach.
50
,
182
183
(
March 2012
).
3.
P.
Vogt
and
J.
Kuhn
,
“Analyzing radial acceleration with a smartphone acceleration sensor,”
Phys. Teach.
51
,
182
183
(
March 2013
).
4.
P.
Vogt
and
J.
Kuhn
,
“Analyzing simple pendulum phenomena with a smartphone acceleration sensor,”
Phys. Teach.
50
,
439
440
(
Oct. 2012
).
5.
J.
Kuhn
and
P.
Vogt
,
“Analyzing spring pendulum phenomena with a smartphone acceleration sensor,”
Phys. Teach.
50
,
504
505
(
Nov. 2012
).
6.
J.
Kuhn
,
P.
Vogt
, and
A.
Müller
,
“Analyzing elevator oscillation with the smartphone acceleration sensor,‟
Phys. Teach.
52
,
55
56
(
Jan. 2014
).
7.
D.
Halliday
,
R.
Resnick
, and
K. S.
Krane
,
Physics
(
Wiley, Inc.
,
New York
,
2002
).
10.
Software Measure for measured values logging and data analysis; the data analysis is in the freeware version available without restriction (http://www.phywe.com/489n381/Services/Downloads/Software.htm).
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