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	<title>ap Archives - www.TiNspireApps.com - Stepwise Math &amp; Science Solutions</title>
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	<description>Step by Step Math &#38; Science &#38; Finance using the TiNspire CX</description>
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		<title>AP Physics calculator program</title>
		<link>https://tinspireapps.com/blog/ap-physics-calculator-program/</link>
					<comments>https://tinspireapps.com/blog/ap-physics-calculator-program/#respond</comments>
		
		<dc:creator><![CDATA[tinspireguru]]></dc:creator>
		<pubDate>Thu, 29 Feb 2024 01:35:17 +0000</pubDate>
				<category><![CDATA[physics]]></category>
		<category><![CDATA[ap]]></category>
		<category><![CDATA[app]]></category>
		<category><![CDATA[calculator]]></category>
		<category><![CDATA[program]]></category>
		<guid isPermaLink="false">https://tinspireapps.com/blog/?p=1807</guid>

					<description><![CDATA[<p>Physics Made Easy for the Ti-Nspire CX and the Ti-Nspire CX II is the perfect to master the challenging AP Physics topics such as Mechanics, Kinematics, Waves . Additionally, the app solves problems involving Fluids, Energy, Electricity, Magnetism, Circuits and Laws, Planets, Gas Laws and much more Learn from the step by step solutions to &#8230; <a href="https://tinspireapps.com/blog/ap-physics-calculator-program/" class="more-link">Continue reading<span class="screen-reader-text"> "AP Physics calculator program"</span></a></p>
<p>The post <a href="https://tinspireapps.com/blog/ap-physics-calculator-program/">AP Physics calculator program</a> appeared first on <a href="https://tinspireapps.com/blog">www.TiNspireApps.com - Stepwise Math &amp; Science Solutions </a>.</p>
]]></description>
										<content:encoded><![CDATA[
<p>Physics Made Easy for the Ti-Nspire CX and the Ti-Nspire CX II is the perfect to master the challenging AP Physics topics such as Mechanics, Kinematics, Waves . Additionally, the app solves problems involving Fluids, Energy, Electricity, Magnetism, Circuits and Laws, Planets, Gas Laws and much more  </p>



<p>Learn from the step by step solutions to your AP Chem problems. </p>



<p>Download: <a href="https://www.tinspireapps.com/?a=PHYME" target="_blank" rel="noreferrer noopener"><a href="https://www.tinspireapps.com/?a=PHYME" target="_blank" rel="noreferrer noopener">Tinspireapps.com/?a=PHYME</a></a></p>



<p>Watch the video below how the app will help you:</p>



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<iframe title="Physics - Step by Step  -  with the Ti-Nspire CX" width="840" height="473" src="https://www.youtube.com/embed/qJ2zeXBnjiE?feature=oembed" frameborder="0" allow="accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share" allowfullscreen></iframe>
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<p>In Summary:</p>



<ul>
<li>Find Center of Mass</li>



<li>Read about Vectors</li>



<li>Vector Solver: Ax,Ay and Angle A</li>



<li>All in one Vector Explorer</li>



<li>Find Norm, Unit Vector, Dot Product, Cross Product, etc</li>



<li>Vector Differentiation</li>



<li>All in one 2-Vectors Explorer</li>



<li>Read: Newton&#8217;s 3 Laws of Motion</li>



<li>Newtons 2. Law: F=m*a</li>



<li>Centripetal Force: F=m*v^2/r</li>



<li>Centripetal Force: F=lambda*v^2*r</li>



<li>Find Net Force/Resultant</li>



<li>Pressure Solver</li>



<li>Friction Solver: F=mu*N</li>



<li>Momentum: p=m*v</li>



<li>Momentum: m1*v1=m2*v2</li>



<li>Conservation of Momentum: m1*v1i+m2*v2i=m1*v1f+m2*v2f</li>



<li>Elastic and Inelastic Collisions : Find Angle , Velocity, Conservation of Momentum.</li>



<li>Impulse</li>



<li>Impulse &amp; Force</li>



<li>Torque: T=F*r*sin(lambda)</li>



<li>Circular Motion: Velocity v=2pr/t</li>



<li>Circular Motion: Acceleration a=v^2/r</li>



<li>Projectile at Angle</li>



<li>Find Tensions of 2 Hanging Y-shaped cables</li>



<li>Find Hanging Mass given Tensions and Angles</li>



<li>Centripetal Force</li>



<li>Centripetal Force, Acceleration, Angular Velocity</li>



<li>Read: The Big 5 Equations</li>



<li>Average Speed=Distance/Time : v=d/t</li>



<li>Linear Motion: vf^2=vo^2+2*a*d</li>



<li>Linear Motion: v=vo+a*t</li>



<li>Linear Motion: d=(vo^2+vf^2)/2 * t</li>



<li>Linear Motion: lambdax=v0t + 1/2at^2</li>



<li>Linear Motion: v=v(2*g*h)</li>



<li>Rotational Kinetic Energy K=1/2*I*lambda^2</li>



<li>APPS: Diver enters Water</li>



<li>APPS: Helicopter Rescue</li>



<li>APPS: Block sliding down Ramp with Friction (and along Ground)</li>



<li>Harmonic Motion: T=2p/lambda</li>



<li>Harmonic Motion: E=1/2*k*A^2</li>



<li>Harmonic Motion: T=2p*v(l/g)</li>



<li>Harmonic Motion: f=1/T</li>



<li>Harmonic Motion: T=2*p*v(m/k)</li>



<li>Harmonic Motion: T=2*p*v(I/mgd)</li>



<li>Harmonic Motion: x=A*cos(lambdat+F)</li>



<li>Harmonic Motion: v=v(A^2-x^2)</li>



<li>Harmonic Motion: Max Velocity</li>



<li>Harmonic Motion: Max Acceleration</li>



<li>Harmonic Motion: Read Formulas</li>



<li>Period of Spring T=2*pv(mass/spring constant)</li>



<li>Spring F=k*x</li>



<li>PotentialEnergy of Spring Us=1/2*k*x^2</li>



<li>Spring Time T=2*p*v(l/g)</li>



<li>Time Frequency T=1/f</li>



<li>Wave Length lambda=v/f</li>



<li>Time T=2*p*v(m/k)</li>



<li>Waves+Vibrations: v=v(T*(m/L))</li>



<li>Waves+Vibrations: k=2*p/lambda</li>



<li>Waves+Vibrations: lambda=2pf</li>



<li>Speed Of Light: E=m*c^2</li>



<li>Light sin(theta_1)/sin(theta_2)=v_1/v_2</li>



<li>Light Theta=lambda/L</li>



<li>Light: E=P/(4pr^2)</li>



<li>Light: I2=I1cos(theta)^2</li>



<li>Light: f_obs=f(1+-v/c)</li>



<li>Light: n=c/f</li>



<li>Light: lambda_obs-lambda=+-v/c*lambda</li>



<li>Light: n1*sin(theta1)=n2*sin(theta2)</li>



<li>Light: sin(theta)=n1/n2</li>



<li>Light: n=c/v</li>



<li>Light: 1/f=1/d1+1/d2</li>



<li>Light: M=hi/ho</li>



<li>Light: lambda=xd/L</li>



<li>Light Diffraction: 2*x1=(2lambdaL)/w</li>



<li>Light: lambda=d*sin(theta)</li>



<li>Light: x_obj=1.22*lambda*L/D</li>



<li>Optics: Read about Reflection</li>



<li>Optics: Refraction: Refraction Index</li>



<li>Optics: Refraction: Snell&#8217;s Law</li>



<li>Optics: Total Internal Reflection</li>



<li>Optics: Wave Optics: Maxima</li>



<li>Optics: Wave Optics: Minima</li>



<li>Optics: Band Distance on Screen lambda/d=x/L</li>



<li>Optics: Read about Focal Points</li>



<li>Optics: Optical Instruments: Focal Length</li>



<li>Optics: Optical Instruments: Magnification</li>



<li>Optics: Interference &amp; 2 Slit Experiment</li>



<li>Sound: Doppler Effect</li>



<li>Sound: l_b-l_a=1/2*lambda</li>



<li>Sound: beta=10*log(I1/I2)</li>



<li>Sound: lambda=v/f</li>



<li>Sound: f1=f/(1+-s/c)</li>



<li>Sound: v=v(B/lambda)</li>



<li>Sound: lambdaP=rho*v*omega*s_max</li>



<li>Sound: I=lambdaP_max^2/(2*rho*v)</li>



<li>Sound: I=P/(4*p*r^2)</li>



<li>Sound: Standing Sound Waves</li>



<li>Fluids: lambda=m/V</li>



<li>Fluids: P=F/A</li>



<li>Fluids: F2=F1*A2/A1</li>



<li>Fluids: Fb=Fa*r_b^2/r_a^2</li>



<li>Fluids: P=Po+p*h*g</li>



<li>Fluids: F=lambda*V*g</li>



<li>Fluids: p+(1/2)*lambda*v^2+lambda*g*h=a</li>



<li>Fluids: Ds/Di=h_sub/h_s</li>



<li>Fluids: Q=p*r^4*(P1-P2)/8*mu*L</li>



<li>Fluids: T=F/L</li>



<li>Fluids: lambda1*A1*v1=lambda2*A2*v2</li>



<li>Fluids: Flow Rate Q=v*A = Flow Velocity * Flow Area</li>



<li>Fluids: Bernoullis Principle</li>



<li>Fluids: Darcy Weisbach Equation</li>



<li>Fluids: Colebrook Equation</li>



<li>Kinetic: Translational</li>



<li>Kinetic: Rotational</li>



<li>E_pot=E_kin : lambdax^2=m/k*v^2</li>



<li>Potential Energy</li>



<li>Potential: Spring (Us)</li>



<li>Potential: Universal Gravitat. (UG)</li>



<li>Heat: Q=m*c*T</li>



<li>Heat: Q=m*L</li>



<li>Heat: W=P*d*V</li>



<li>Heat: E=Q-W</li>



<li>Heat: Conduction</li>



<li>Heat: Convection</li>



<li>Heat: Radiation</li>



<li>Heat: w=-n*r*t*ln(vf/vi)</li>



<li>Miscellaneous: Heat (H)</li>



<li>Read Dissipated Energy</li>



<li>Miscellaneous: W=F*s*cos(theta)</li>



<li>Miscellaneous: W=F*s*sin(theta)</li>



<li>Miscellaneous: Power=W/t</li>



<li>Miscellaneous: E=mu*dx</li>



<li>Work Energy Theorem</li>



<li>Photon Energy: E=h*c/lambda</li>



<li>Engine Indicative Horsepower (PLANK)</li>



<li>Electricity &amp; Induction</li>



<li>Electricity: Coulombs Law</li>



<li>Electricity: Voltage V=E*d</li>



<li>Electricity: Voltage V=W/q</li>



<li>Electricity: V=Q/C</li>



<li>Electricity: P=Po*[1+a*(T-To)]</li>



<li>Electricity: q=Q*exp(-t/(R*C))</li>



<li>Electricity: q=Q*(1-exp(-t/(RC))</li>



<li>Electricity: C=K*eo*A/d</li>



<li>Electricity: E=1/2*C*V^2</li>



<li>Electricity: R=lambda*1/A</li>



<li>Electricity: Flux F=E*A</li>



<li>Electricity: E=Q/(4pr^2eo)</li>



<li>Electricity: F=s*Q/eo</li>



<li>Electricity: F=s*Q/eo</li>



<li>Electricity: F=E*q</li>



<li>Electric Field</li>



<li>Induction: EMF=B(L)(V)</li>



<li>Induction: I=V/R</li>



<li>Induction: Pac=1/2(Pacmax))</li>



<li>Induction: Pac=I_eff^2*R</li>



<li>Induction: I_eff=v(1/2Imax^2)</li>



<li>Induction: V_eff=v(1/2(Vmax)^2)</li>



<li>Induction: Vs/Vp=Ns/Np</li>



<li>Induction: Vp*Ip=Vs*Is</li>



<li>Magnetism: F=q*v*B*sin(theta)</li>



<li>Magnetism: r= mv/(qB)</li>



<li>Magnetism: v=E/B</li>



<li>Magnetism: F=B*I*L*sin(theta)</li>



<li>Magnetism: N=T*A*m</li>



<li>Magnetism: t=F*r</li>



<li>Magnetism: t=B*I*A*sin(theta)</li>



<li>Magnetism: t=B*I*A*N*sin(theta)</li>



<li>Magnetism: B=muo*I/2pr</li>



<li>Magnetism: F/l=o*I1*I2/(2pd)</li>



<li>Magnetism: B=muo*I/2R</li>



<li>Magnetism: B=N*muo*I/2R</li>



<li>Magnetism: B=muo*N/l*I</li>



<li>Magnetism: F=B*A*cos(theta)</li>



<li>Magnetism: lambda_F=BA(costhetaf-costhetai)</li>



<li>Magnetism: e=-N*(F)/(t)</li>



<li>Magnetism: F=I*B*l</li>



<li>Magnetism: Emf=NBA*delta*sin(deltat)</li>



<li>Magnetism: Emf=-L*(lambdaI)/(lambdat)</li>



<li>Magnetism: R=P*l/A</li>



<li>Circuits &amp; Laws: P=V*I</li>



<li>Circuits &amp; Laws: V=R*I</li>



<li>Circuits &amp; Laws: P=I^2*R</li>



<li>Circuits &amp; Laws: P=V^2/R</li>



<li>Circuits &amp; Laws: Vc=(V*R2)/(R1+R2)</li>



<li>Circuits &amp; Laws: Read 1. Kirchhoff Law</li>



<li>Circuits &amp; Laws: Read 2. Kirchhoff Law</li>



<li>Circuits: Parallel &amp; Series</li>



<li>Circuits: Resistence, Current, Voltage</li>



<li>Planets: Sun</li>



<li>Planets: Mercury</li>



<li>Planets: Venus</li>



<li>Planets: Earth</li>



<li>Planets: Moon</li>



<li>Planets: Mars</li>



<li>Planets: Jupiter</li>



<li>Planets: Saturn</li>



<li>Planets: Uranus</li>



<li>Planets: Neptune</li>



<li>Planets: Pluto</li>



<li>Gravitation &amp; Orbits: F=g*m1*m2/r^2</li>



<li>Gravitation &amp; Orbits: v=v(g*m/r)</li>



<li>Gravitation &amp; Orbits: v=2pr/t</li>



<li>Gravitation &amp; Orbits: P1^2/P2^2=R1^3/R2^3</li>



<li>Volume of Gas</li>



<li>Boyle&#8217;s Gas Law</li>



<li>Avogadro&#8217;s Gas Law</li>



<li>Charles&#8217; Gas Law</li>



<li>GayLussac Gas Law</li>



<li>Combined Gas Law</li>



<li>Ideal Gas Law</li>



<li>Adiabatic Expansion of Ideal Gas Law</li>



<li>Gas Sum / Dalton Law</li>



<li>Graham&#8217;s Gas Law</li>



<li>Periodic Table of Elements: Symbol</li>



<li>Periodic Table of Elements: Element Name</li>



<li>Read: Useful Constants</li>



<li>Find Absolute Error and % Error</li>



<li>Convert: Normal to Scientific Notation &amp; back</li>



<li>Density=Mass/Volume Solver</li>



<li>Moles &amp; Representative Particles</li>



<li>Atoms to Moles Conversion</li>



<li>Relativity: Time-Dilation</li>



<li>Relativity: Mass-Dilation</li>



<li>Decay / Half-Life Equation</li>



<li>Inverse Square Law</li>



<li>Continuity Equation</li>



<li>Barometric Formula</li>
</ul>
<p>The post <a href="https://tinspireapps.com/blog/ap-physics-calculator-program/">AP Physics calculator program</a> appeared first on <a href="https://tinspireapps.com/blog">www.TiNspireApps.com - Stepwise Math &amp; Science Solutions </a>.</p>
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