Formulario Definitivo

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FORMULARIO FÍSICA ESTÁTICA

CINEMÁTICA MRU

𝐹π‘₯ = 𝐹 βˆ™ cos πœƒ ; 𝐹𝑦 = 𝐹 βˆ™ sen πœƒ 𝑣=

𝐹 = √𝐹π‘₯ 2 + 𝐹𝑦 2 +↑ βˆ‘πΉπ‘¦ = 0 ; β†’ βˆ‘πΉπ‘₯ = 0

π‘‰π‘š =

𝑑 𝑑

𝐹 𝑀 =π‘šβˆ™π‘” π‘š

LEY DE HOOKE 𝐹 =πΎβˆ™π‘₯ LEY DE GRAVITACIΓ“N UNIV.

π‘Žπ‘‘ 2 𝑑 = 𝑣0 𝑑 + 2

CONVERSIONES CELSIUS A KELVIN

ο‚·

π‘“π‘Ÿ = πœ‡ βˆ™ 𝐹𝑁

ο‚·

POTENCIA 𝑇 𝑑

𝑃=

𝐹𝑑 𝑑

FAHRENHEIT A CELSIUS

𝑃 = 𝐹𝑉

𝑐=

ENERGÍA MECÁNICA Y CONSERVACIΓ“N. 𝐸 = 𝐸𝑐 + 𝐸𝑝 𝐸=

1 π‘šπ‘£ 2 + π‘šπ‘” 2

1 1 π‘šπ‘‰ 2 + π‘šπ‘”β„Žπ‘œ = π‘šπ‘‰π‘“2 + π‘šπ‘”β„Žπ‘“ 2 π‘œ 2

IMPULSO E ÍMPETU 𝐼 = πΉβˆ™π‘‘

𝜌=π‘šβˆ™π‘£

𝐹 βˆ™ 𝑑 = π‘š βˆ™ 𝑉𝑓 βˆ’ π‘š βˆ™ π‘‰π‘œ

𝑄 βˆ†π‘‡

𝑐𝑒 =

𝑐 π‘š

π‘š 𝜌= 𝑉

𝑄 π‘šβˆ™βˆ†π‘‡

LEY DE CHARLES 𝑉 =𝐢; 𝑇

𝑄 = π‘šπ‘π‘’ βˆ†π‘‡

𝑄 πœ†π‘‰ = π‘š TRABAJO TERMODINÁMICO π‘Š = 𝑃(𝑉𝐹 βˆ’ 𝑉𝑂 )

𝑃1 𝑃2 = 𝑇1 𝑇2

1 1 1 = + 𝑓 𝑝 𝑝′ LENTES OBJETO Y LENTE 1 1 1 = + 𝑓 𝑝 𝑝′ LENTE Y FOCO 1 1 1 = βˆ’ 𝑓 𝑝 𝑝′ DIVERGENTES

LEY DE BOYLE 𝑃𝑉 = 𝐢 ; 𝑃1 𝑉1 = 𝑃2 𝑉2

𝑄 π‘š

CALOR LATENTE DE VAPORIZACIΓ“N

𝑉1 𝑉2 = 𝑇1 𝑇2

LEY DE GAY LUSSAC 𝑃 =𝐢; 𝑇

𝑐 sen 𝑖 →𝑛= 𝑣 sen π‘Ÿ

ESPEJOS ESFÉRICOS

𝑃𝑉 𝑃1 βˆ™ 𝑉1 𝑃2 βˆ™ 𝑉2 = 𝐢; = 𝑇 𝑇1 𝑇2

CALOR LATENTE DE FUSIΓ“N πœ†π‘“ =

INDICE DE REFRACCIΓ“N 𝑛=

LEY GENERAL DE ESTADO GASEOSO

πœ† 𝑇

Γ“PTICA

GASES IDEALES

βˆ†π‘‡ = 𝑇𝑓 βˆ’ π‘‡π‘œ

𝑐𝑒 =

𝑣 = πœ†βˆ™π‘“; 𝑣 =

TEORIA CINETICA DE LOS GASES

CALOR ESPECÍFICO

ENERGÍA POTENCIAL 𝐸𝑝 = π‘€β„Ž

VELOCIDAD DE PROPAGACION

𝑇 𝑄1 βˆ’ 𝑄2 𝑇1 βˆ’ 𝑇2 𝑒= = = 𝑄1 𝑄1 𝑇1

CAPACIDAD CALORIFICA

1 𝐸𝑐 = π‘šπ‘£ 2 2

1 1 ∴ 𝑇= 𝑇 𝑓

SEGUNDA LEY

𝑇𝐹 βˆ’ 32 𝑇𝐢 = 1.8

ENERGÍA CINΓ‰TICA

𝐸𝑝 = π‘šπ‘”β„Ž

𝑓=

PRIMERA LEY

CELSIUS A FAHRENHEIT

9 𝑇𝐹 = 𝑇𝐢 + 32 Γ³ 𝑇𝐹 = 1.8𝑇𝐢 + 32 5

π‘‰π‘œ sin πœƒ 𝑔

FRECUENCIA

𝑉𝑓2 = π‘‰π‘œ2 βˆ’ 2π‘”β„Ž

𝑇𝐢 = 𝑇𝐾 βˆ’ 273

1 1 1 = βˆ’ 𝑓 𝑝′ 𝑝

HIDRÁULICA DENSIDAD 𝜌=

π‘š 𝛾 𝜌= 𝑣 𝑔

PESO ESP. 𝛾=

𝑀 𝑣

2

ONDAS

𝑔𝑑 2 𝑉𝑓 = π‘‰π‘œ βˆ’ 𝑔𝑑 2

KELVIN A CELSIUS

ο‚·

π‘“π‘Ÿ πœ‡= 𝐹𝑁

β„Ž = π‘‰π‘œ 𝑑 βˆ’

(𝑉0 sin πœƒ) 2𝑔

π‘‰π‘œ2 sin 2πœƒ 𝑔

𝑑=

π‘‰π‘œ 𝑉02 𝑔 = βˆ’ 𝑑𝑠 = β„Žπ‘šπ‘Žπ‘₯ = 𝑔 2𝑔

TERMOLOGÍA

𝑇𝐾 = 𝑇𝐢 + 273

𝑇 = 𝐹 βˆ™ 𝑑 βˆ™ cos πœƒ

π‘₯=

βˆ†π‘ˆ = 𝑄 βˆ’ π‘Š

COEFICIENTE DE FRICCIΓ“N

𝑃=

𝑑 𝑑 = (𝑣0 + 𝑣𝑓 ) 2

π‘š1 βˆ™ 𝑒1 + π‘š2 βˆ™ 𝑒2 = π‘š1 βˆ™ 𝑣1 + π‘š2 βˆ™ 𝑣2

TRABAJO 𝑇 = 𝐹𝑑

π‘Œπ‘šπ‘Žπ‘₯ =

𝑔𝑑 2 2β„Ž 𝑑=√ 𝑣 = √2π‘”β„Ž 2 𝑔

β„Ž=

CONSERVACION DE LA CANTIDAD DE MOVIMIENTO

ο‚·

𝑇 2 = π‘˜π‘Ÿ 3

𝑣 = 𝑔𝑑

TIRO VERTICAL

2 + 𝐹𝑦 2 𝑣𝑓2 = 𝑣02 + 2π‘Žπ‘‘πΉ = π‘£π‘“βˆšπΉπ‘₯ = 𝑣0 + π‘Žπ‘‘

π‘š1 βˆ™ π‘š2 𝐹=𝐺 𝑑2 TERCERA LEY DE KEPLER

𝑔=+

𝑑 = 𝑣𝑑

MRUA

DINÁMICA

𝐹 =π‘šβˆ™π‘Ž π‘Ž=

𝑑 𝑣

π‘‘π‘‘π‘œπ‘‘π‘Žπ‘™ 𝑑1 + 𝑑2 + 𝑑3 + β‹― + 𝑑𝑛 = π‘‘π‘‘π‘œπ‘‘π‘Žπ‘™ 𝑑1 + 𝑑2 + 𝑑3 + β‹― + 𝑑𝑛

𝑀 = 𝐹 βˆ™ 𝑑 ; +β†Ί π‘€π‘œ = 0

2Β° LEY DE NEWTON

𝑑=

TIRO PARABΓ“LICO

CAIDA LIBRE

PRESIΓ“N

PRENSA HID.

𝐹 𝑃= 𝐴

𝑓1 𝐹2 = π‘Ž1 𝐴2

PRESIΓ“N HIDROSTÁTICA

ARQUIMIDES

π‘ƒβ„Ž = 𝛾 βˆ™ β„Ž π‘ƒβ„Ž = 𝜌 βˆ™ 𝑔 βˆ™ β„Ž

𝐸 =π›Ύβˆ™π‘‰ 𝐸 = πœŒβˆ™π‘”βˆ™π‘‰

FORMULARIO FÍSICA HIDRÁULICA

ELECTROMAGNETISMO

% SUMERGIDO

CONTINUIDAD

𝜌 = 𝐾 βˆ™ πœŒπ‘“

𝑉1 βˆ™ 𝐴1 = 𝑉2 βˆ™ 𝐴2

HIDRODINÁMICA

BERNOULLI

GASTO

𝐸𝐢1 + 𝐸𝑃1 + 𝑃1 = 𝐸𝐢2 + 𝐸𝑃2 + 𝑃2

𝑉 𝑄 =π‘‰βˆ™π΄β†’π‘„= 𝑑

𝑉12 𝑃1 𝑉22 𝑃2 + π‘”β„Ž1 + = + π‘”β„Ž2 + 2 𝜌 2 𝜌 𝐹 = √𝐹π‘₯ 2 + 𝐹𝑦 2 TORRICELLI

FLUJO 𝐹𝑙 =

π‘š 𝑑

LEY DE COULOMB 𝐹=𝐾

π‘ž1 βˆ™ π‘ž2 𝑑2

LEY DE OHM 𝐼=

CAMPO ELΓ‰CTRICO 𝐸=

𝐹 π‘ž

𝐸=𝐾

π‘œ

π‘ž 𝑑2

𝑃 = 𝑉𝐼

CIRCUITOS EN SERIE

𝑃 = 𝐼2 βˆ™ 𝑅

INTENSIDAD

𝑃=

𝐼 = 𝐼1 = 𝐼2 = 𝐼3 = 𝐼𝑛

𝑉 𝐹𝑙 = 𝑑

RESISTENCIA 𝑅𝑑 = 𝑅1 + 𝑅2 + 𝑅3 + β‹― + 𝑅𝑛

NOTAS EXTRA GASES IDEALES

1m

=

100 cm

1m

=

1000 mm

1 cm

=

10 mm

1 km

=

1000 m

𝑅 = 8.31

𝑅 = 0.0821

π‘Žπ‘‘π‘šπΏ π‘šπ‘œπ‘™πΎ

𝐹 =π΅βˆ™π‘žβˆ™π‘£

CIRCUITOS EN PARALELO INTENSIDAD

=

3.28 ft

1m

=

1.093 yarda

1 pie (ft)

=

30.48 cm

1 pie (ft)

=

12 pulg (in)

1 pulg (in)

=

2.54 cm

1 milla

=

1.609 km

ELECTRO MAGNETISMO

1 libra (lb) 1 kg

= =

454 g 2.2 lb

1 π‘π‘š3

=

1 ml

π‘π‘š2 𝐾 = 9π‘₯109 2 𝑐

𝑉𝑑 = 𝑉1 = 𝑉2 = 𝑉3 = β‹― = 𝑉𝑛

ÁNGULOS NOTABLES

CAPACITORES

PRESION ATM.

𝐼𝑑 = 𝐼1 + 𝐼2 + 𝐼3 + β‹― + 𝐼𝑛

1 π‘Žπ‘‘π‘š = 760π‘šπ‘š 𝑑𝑒 𝐻𝑔

RESISTENCIA

1 π‘Žπ‘‘π‘š = 101325 π‘ƒπ‘Ž

1 1 1 1 1 = + + +β‹―+ 𝑅𝑑 𝑅1 𝑅2 𝑅3 𝑅𝑛

1 litro

=

1000 π‘π‘š

1 litro

=

1 π‘‘π‘š3

A

SEN

COS

1 π‘š3

=

1000 litros

0Β°

0

1

1 galΓ³n

=

3.785 litros

30Β°

0.5

0.8660

1N

=

100000 dinas

45Β°

0.7071

0.7071

60Β°

0.8660

0.5

90Β°

1

0

1 π‘˜π‘”π‘“

=

9.8 N

1 𝑙𝑏𝑓

=

0.454 π‘˜π‘”π‘“

1 ton

=

1000 kg

√3 = 1.7320

π‘π‘š2 𝐺 = 6.67π‘₯10βˆ’11 ; π‘π‘œπ‘›π‘ π‘‘π‘Žπ‘›π‘‘π‘’ 𝑑𝑒 π‘”π‘Ÿπ‘Žπ‘£. π‘˜π‘”2 CALOR ESPECÍFICO 𝐢𝑒𝐻20 = 1

√2 = 1.4140

𝐸=

𝑉𝑑 = 𝑉1 + 𝑉2 + 𝑉3 + β‹― + 𝑉𝑛

1m

3

INDUCCIΓ“N DE CAMPOS 𝐡=

πœ‡βˆ™πΌ 2πœ‹ βˆ™ 𝑑

POR BOBINAS 𝐡=

π‘βˆ™πœ‡βˆ™πΌ 2π‘Ÿ

POR SOLENOIDE 𝐡=

𝑄 𝑉

𝐹 π‘ž

𝐸 = π΅βˆ™π‘£

DIF. DE POTENCIAL

𝐢=

𝑉2 𝑅

CAMPO MAGNÉTICO Y CAMPO ELÉCTRICO

DIF. DE POTENCIAL

π‘ƒπ‘Žπ‘š3 π‘šπ‘œπ‘™πΎ

𝑉 = 𝐼𝑅

POTENCIA ELÉCTRICA

𝑣 = √2π‘”β„Ž

𝐹𝑙 = 𝜌 βˆ™ 𝑄

𝑉 𝑅

π‘βˆ™πœ‡βˆ™πΌ 𝐿

LEY DE FARADAY

CAPACITORES EN SERIE πœ€=βˆ’ 1 1 1 1 1 = + + + β‹―+ 𝐢𝑇 𝐢1 𝐢2 𝐢3 𝐢𝑛

βˆ†πœ‘ βˆ†π‘‘

CAPACITORES EN PARALELO 𝐢𝑑 = 𝐢1 + 𝐢2 + 𝐢3 + β‹― + 𝐢𝑛 TERMOLOGÍA

(π‘π‘Žπ‘™)

Proceso adiabΓ‘tico: βˆ†π‘„ = 0 β†’ βˆ†π‘Š = βˆ’βˆ†π‘ˆ

𝑔°𝐢

CALOR LATENTE DE FUSION πœ†π‘“π»20 = 80

(π‘π‘Žπ‘™)

Proceso isocΓ³rico: βˆ†π‘‰ = 𝑐𝑑𝑒 β†’ βˆ†π‘Š = 0 β†’ βˆ†π‘„ = βˆ†π‘ˆ

𝑔

CALOR LATENTE DE VAPORIZACIΓ“N πœ†π‘£π»20 = 540

(π‘π‘Žπ‘™) 𝑔

Proceso tΓ©rmico isobΓ‘rico = PresiΓ³n cte. Proceso isotΓ©rmico = βˆ†π‘‡ = 𝑐𝑑𝑒 β†’ βˆ†π‘ˆ = 0 β†’ βˆ†π‘„ = βˆ†π‘Š

𝐸𝑝 𝑒𝑛 𝑒𝑙 π‘ π‘’π‘’π‘™π‘œ = 0 EQUILIBRIO TERMICO 𝐸𝑐 π‘π‘’π‘Žπ‘›π‘‘π‘œ π‘›π‘œ β„Žπ‘Žπ‘¦ π‘šπ‘œπ‘£π‘–π‘šπ‘–π‘’π‘›π‘‘π‘œ = 0 π‘‡π‘’π‘ž =

π‘š1 𝑇1 + π‘š2 𝑇2 π‘š1 + π‘š2

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