In a circular tube the diameter changes abruptly from D1 = 2 m to D2 = 3 m. The flow velocity in the part with smaller diameter is vi = 3 m/s. Determine if for water in the both parts of the tube there is laminar flow or tubulent flow. The kinematic viscosity of water is v= 1.24. 10^-6

Answer:

b) zero

Explanation:

The horizontal component of acceleration during projectile motion is usually assumed to be zero.Because in projectile motion horizontal component of velocity will remain the constant and we know that rate of change of velocity with time is called acceleration.So when velocity is constant then acceleration will be zero.

In projectile motion ,gravitational acceleration will be in only vertical direction.

Answer:

2% to 20% Ni

Explanation:

If we will talk about steel then ,for increasing the toughness property  of steel generally 2% to 20% Ni added  .Ni also increase resistance to corrosion and oxidation, impact strength and strength.

We know that steel is an alloy of iron and carbon.But to improve the property of steel different alloying elements added by this steel become desirable to use at different situations.

Answer:

The coefficient of thermal expansion tells us how much a material can expand due to heat.

Explanation:

Thermal expansion occurs when a material is subjected to heat and changes it's shape, area and volume as a result of that heat. How much that material changes is dependent on it's coefficient of thermal expansion.

Different materials have different coefficients of thermal expansion (i.e. It is a material property and differs from one material to the next). It is important to understand how materials behave when heated, especially for engineering applications when a change in dimension might pose a problem or risk (eg. building large structures).

Answer:

Piston movement of TDC to BDC is called stroke.

Explanation:

Step1

In any engine fuel is burned inside the cylinder and forces the piston to move from top dead center to bottom dead center. First piston is moved from top dead center to bottom dead center to allow the suction of fuel inside the cylinder. Then piston move toward top dead center and compresses the fuel. This process is called compression of fuel. Then fuel is burned with the spark inside the cylinder and the piston moves toward bottom dead center. This process is called expansion process. Last process is the expansion process that allows the exhaust out of the cylinder.

Step2

The piston reciprocates from bottom position of the cylinder to top position of the cylinder and vice versa. So, the motion of piston from top center to bottom center is called stroke. One movement of piston from TDC to BDC is called one stroke. There are total four strokes in petrol engine and diesel engine. So, two strokes are equal to one cycle or one rotation of crank and four strokes are equal to two rotation of crank.

Thus, piston movement of TDC to BDC is called stroke.

Answer:

The return stroke

Explanation:

Motion from top dead center to bottom dead center is called the return stroke because motion from the bottom to the top is the forward stroke.

Answer:

36 kg

Explanation:

For water to boil at 105 C it needs a pressure of 121 kPa (this is the vapor pressure of water at 105 C).

In the lid there will be a difference of pressure from one side to the other, this will be compensated by the weight of the lid.

Δp = pwater - patm

Δp = 121 - 101 = 20 kPa

The pressure caused by the weigh of the lid is:

Δp = w / A

Δp = m * g / A

Rearranging

m = Δp * A / g

m = Δp * π/4 * d^2 / g

m = 20000 * π/4 * 0.15^2 / 9.81 = 36 kg

Answer:

The laminar flow is generally given in high viscosity fluids such as honey or oil, it has the characteristic of flowing in an orderly manner, the walls of the tube have a zero speed while in the center it has a maximum speed.

turbulent flow is characterized by fluid velocity vectors presenting themselves in a disorderly manner and in all directions.

I attached the drawings for the velocity profile in laminar and turbulent flow.

Answer:

Zero.

Explanation:

Lets take velocity V is given as in 2 dimensional flow

  V=u i +v j

V=f(x,y)

u=f(x,y)

v=f(x,y)

Rotational ability ω given as

[tex]\omega =\dfrac{1}{2}\left (\dfrac{\partial v}{\partial x}-\dfrac{\partial u} {\partial x}\right)[/tex]

If

ω=0 ,then flow will be  irrotational.

ω ≠0 ,then flow will be rotational.

So we can say that , ω will be zero every where for  irrotational  two dimensional flow .

Answer:

TRUE

Explanation:

Polymers can be natural as well as synthetic

The polymer which are found in nature are called natural polymer tease polymer are not synthesized, they are found in nature

Example of natural polymers is cellulose, proteins etc

On the other hand synthetic polymers are not found in nature they are synthesized in market

There are many example of synthetic polymer

Example : nylon, Teflon etc  

So it is a true statement

Answer:

C.Cooling of thermal energy

Explanation:

In evaporative cooling liquid water convert into vapor by using thermal energy.In this out side air is used to evaporate the water.

Hot air enters from outside and this hot air gets contact with wet matrix .In wet matrix temperature of air will reduce and temperature of water will increases .After wet matrix heat transfer take place between air and water .After that by using force convection air pushed out and produce cooling.

Answer:

Q=36444.11 Btu

Explanation:

Given that

Initial temperature = 60° F

Final temperature = 110° F

Specific heat of water = 0.999 Btu/lbm.R

Volume of water = 90 gallon

Mass = Volume x density

[tex]1\ gallon = 0.13ft^3[/tex]

Mass ,m= 90 x 0.13 x 62.36 lbm

m=729.62 lbm

We know that sensible heat given as

Q= m Cp ΔT

Now by putting the values

Q= 729.62 x 0.999 x (110-60) Btu

Q=36444.11 Btu

The angular speed of a flywheel rotating at 300 revolutions per minute is calculated by converting revolutions to radians and minutes to seconds, resulting in an angular speed of 10π rad/s.

The question asks to determine the angular rate of rotation of a searchlight on a boat when targeting an automobile that is 3000 ft away and moving at 80 ft/s. This involves understanding the relationship between linear velocity, radius, and angular velocity, which is a crucial concept in trigonometry and physics.

To find the angular speed of the flywheel rotating at 300 revolutions per minute, we first convert revolutions per minute (rpm) to radians per second, knowing that one revolution is 2π radians and there are 60 seconds in a minute. Therefore:

Angular speed = 300 rpm × (2π radians/revolution) × (1 minute/60 seconds) = 300 × 2π / 60 rad/s = 10π rad/s.

Answer:

natural frequency = 2.55 Hz

period of vibration = 0.3915 s

Explanation:

given data

weight = 20 lb

distance = 1 in = [tex]\frac{1}{12}[/tex] ft

weight = 30 lb

to find out

Determine the natural frequency and the period of vibration

solution

we first calculate here stiffness k by given formula that is

k = [tex]\frac{weight}{diatnace}[/tex]  ..........1

k = [tex]\frac{20}{1/12}[/tex]

k = 240 lb/ft

so

frequency = [tex]\sqrt{\frac{k}{m} }[/tex]   ..................2

put here value k and mass m = [tex]\frac{weight}{g}[/tex]

frequency = [tex]\sqrt{\frac{240}{30/32.2} }[/tex]  

frequency = 16.05 rad/s

and

period of vibration = [tex]\frac{2* \pi }{frequency}[/tex]

period of vibration = [tex]\frac{2* \pi }{16.05}[/tex]

period of vibration = 0.3915 s

and

natural frequency = [tex]\frac{1 }{period of vibration}[/tex]

natural frequency = [tex]\frac{1 }{0.3915}[/tex]

natural frequency = 2.55 Hz

Answer:

Hybrid topology is the connection of one or more than one topology.

Explanation:

Topology:

 Topology is the arrangement of network.These network connects by line and nodes.

Type of topology:

1.Bus topology

2.Star topology

3.Ring topology

4.Mesh topology

Along with given above topology one topology is also used is known as hybrid topology.Hybrid topology is the connection of one or more than two one above given topology.

Answer:

The length of bar will be 2.82 m

Explanation:

Given that

d= 15 mm

r= 7.5 mm

Shear stress = 110 MPa

θ =  30°                                  (30°   = 30°  x π/180°  =0.523 rad)

θ = 0.523 rad

G for steel

G= 79.3 GPa

We know that

[tex]\dfrac{\tau}{r}=\dfrac{G\theta }{L}[/tex]

[tex]\dfrac{110}{7.5\times 10^{-3}}=\dfrac{79.3\times 10^3\times 0.523 }{L}[/tex]

L= 2. 82 m

The length of bar will be 2.82 m

Answer:

W=-280.67 KJ

Explanation:

Given that

Initial pressure = 150 KPa

Final pressure = 600 KPa

Temperature T= 285 K

Mass m=2.4 Kg

We know that ,work in isothermal process given as

[tex]W=mRT\ ln\dfrac{P_1}{P_2}[/tex]

Gas constant for nitrogen gas R=0.296 KJ/kgK

Now by putting the values

[tex]W=mRT\ ln\dfrac{P_1}{P_2}[/tex]

[tex]W=2.4\times 0.296\times 285\ ln\dfrac{150}{600}[/tex]

W=-280.67 KJ

Negative sign indicates that it is compression process and work is done on the gas.

Answer:29,930 kJ

Explanation:

Given

Car starts with an initial elevation of 500 m and drives up a hill to reach a final elevation of 2000 m

Final velocity (V)=20 m/s

Energy of car increases by 100 kJ

mass of car(m)=2000 kg

[tex]Total Energy =\Delta PE+\Delta KE+\Delta U[/tex]

[tex]\Delta PE=mg(\Delta h)=2000\times 9.81\times (2000-500)[/tex]

[tex]\Delta PE=29,430 kJ[/tex]

[tex]\Delta KE=m\frac{v_2^2-v_1^2}{2}[/tex]

[tex]\Delta KE=2000\times \frac{20^2-0^2}{2}[/tex]

[tex]\Delta KE=400 kJ[/tex]

[tex]\Delta U=100 kJ[/tex]

Total Energy=29,430+400+100=29,930 kJ

Answer:

The maximum length of the specimen is 0.2927 m or 292.7 mm

Solution:

Modulus of elasticity, E = 126 GPa = [tex]126\times 10^{9}[/tex]

Diameter of the cross-section, D = 4.0 mm = [tex]4.0\times 10^{- 3} m[/tex]

Force due to tension, F = 2380 N

Maximum elongation, [tex]\Delta L = 0.44 mm = 0.44\times 10^{- 3} m[/tex]

Now,

The maximum length of the specimen, [tex]L_{m}[/tex] can be calculated as follows:

The cross-sectional area, [tex]A_{c} = \frac{\pi D^{2}}{4} = \frac{\pi\times (4.0\times 10^{- 3})^{2}}{4} = 1.256\times 10^{- 5} m^{2}[/tex]

Now, the stress on the specimen, [tex]\sigma_{s} = \frac{F}{A_{c}} = \frac{2380}{1.256+\times 10^{- 5}}[/tex]

[tex]\sigma_{s} = 1.89\times 10^{8} N/m^{2}[/tex]

Now,

The strain on the specimen, [tex]\epsilon_{s}[/tex]:

[tex]\epsilon_{s} = \frac{\Delta L}{L_{m}}[/tex]

Also, from Hooke's law:

[tex]E = \frac{\sigma_{s}}{epsilon_{s}}[/tex]

⇒ [tex]E = \frac{1.89\times 10^{8}}{\frac{\Delta L}{L_{m}}}[/tex]

⇒ [tex]L_{m} = \frac{\Delta Ltimes E}{1.89\times 10^{8}}[/tex]

⇒ [tex]L_{m} = \frac{0.44\times 10^{- 3}\times 126\times 10^{9}}{1.89\times 10^{8}} = 0.2927 m[/tex]

The maximum length of the specimen before deformation is:           292.72 mm (0.2927 m).

For solving this question, it's necessary to know some concepts about the material's properties.

The tensile stress (σ) is determined from the ratio between load and original area before the load applied (σ=[tex]\frac{F}{Ao}[/tex]). Depending on the load applied, the material can have an elastic deformation (temporary deformation) and plastic deformation (permanent deformation). Both deformations can be calculated by the equation: ε=ΔL/Lo, where ΔL= deformation elongation and Lo= the original length before the load applied.

When the material is in the elastic portion, there is a linear relationship between stress and strain given by: σ=Eε. Due to this relationship, it is possible to find the elastic deformation (ε) when we know the stress (σ) and elastic modulus (E).

Now you have the necessary information to solve your question.

The question gives:

E (elastic modulus) =126 GPA

d (original cross-sectional diameter)=4 mm

F (tensile load)=2380 N

ΔL (maximum allowable elongation) =0.44 mm

       1. Find the area of the cylindrical specimen.

       2. Find the tensile stress.

          σ= [tex]\frac{F}{Ao} =\frac{2380 N }{12.57 mm^2} =189.39 MPa[/tex]

      3. Calculate the maximum length of the specimen before deformation.

       Knowing that  ε=ΔL/Lo and σ=Eε, you can rewrite these equations as:

                                      σ= E * (ΔL/Lo)

                                      σ= (E * ΔL)/Lo

   The question asks the maximum length of the specimen before deformation, therefore you should find Lo. Thus,

                                     Lo= (E * ΔL)/σ

                  [tex]Lo=\frac{126*10^3 MPa*0.44 mm}{189.39 MPa} =292.72 mm= 0.2927 m[/tex]

Read more about the tensile stress here:

https://brainly.com/question/19756298

Answer:

Cartesian coordinate system is used to specify any point on a plane.

In two dimensional plane,the two types of axes or coordinates are [tex]x[/tex] and [tex]y[/tex] axis.

Explanation:

Cartesian coordinate system specifies each point and every point on axes.

A Cartesian Coordinate system in two dimension also named as rectangular coordinate system.

The two types of axes or coordinates are [tex]x[/tex] and [tex]y[/tex] axis.

The horizontal axis is [tex]x[/tex]-axis and vertical axis is named as [tex]y[/tex]-axis.

The coordinate system specifies each point as a set of numerical coordinates in a plane which are signed from negative to positive. that is from  ([tex]-\infty[/tex],[tex]\infty[/tex]).

In three dimensional plane, [tex]x[/tex], [tex]y[/tex] and [tex]z[/tex] coordinates are used and in two dimensional plane, [tex]x[/tex] and [tex]y[/tex]coordinates are used to address any point in the interval ([tex]-\infty[/tex],[tex]\infty[/tex]).

For defining both the coordinates, the two perpendicular directed lines [tex]x[/tex]- axis and [tex]x[/tex]-axis are drawn.

Now, for example [tex](3,4)[/tex] is a point in which indicates that the value of [tex]x[/tex] is [tex]3[/tex] and [tex]y[/tex] is [tex]4[/tex].

It is drawn by moving [tex]3[/tex] units right from the origin to positive [tex]x[/tex] axis and [tex]4[/tex] units upwards from the origin [tex](0,0)[/tex] to positive [tex]y[/tex]-axis.

Answer:

Q=1312.5 W

Explanation:

Given that

Cooling load or power input = 750 W

COP=1.75

We know that COP can be given as

COP is the ratio of cooling effect to the input power .

Lets take cooling effect is Q.So now by using COP formula

COP=Q/750

1.75=Q/750

Q=1312.5 W

So the cooling effect produce by air conditioning will be 1312.5 W.

The net effect on laboratory,the laboratory temperature will reduce.

Answer:

W=-940.36 KJ

Explanation:

Given that

[tex]P_1=1\ bar,V_1=4.25 {m^3}[/tex]

[tex]P_2=6.8\ bar[/tex]

Process follows pv=constant

So this is the isothermal process and work in isothermal process given as

[tex]W=P_1V_1\ln \dfrac{P_1}{P_2}[/tex]

Now by putting the values                (1.4 bar =140 KPa)

[tex]W=P_1V_1\ln \dfrac{P_1}{P_2}[/tex]

[tex]W=140\times 4.25 \ln \dfrac{1.4}{6.8}[/tex]

W=-940.36 KJ

Negative sign indicates that this is a compression process and work will given to the system.

The question requires calculating expressions using metric units and prefixes, converting them into SI units with appropriate prefixes, and ensuring these calculations are accurate to three significant figures.

The question involves evaluating expressions with different units and converting them to SI units with appropriate prefixes, which requires a good understanding of metric prefixes and significant figures. Furthermore, examples of such conversions are provided to aid in this process.

Each conversion is an exercise in carefully applying metric prefixes and understanding how to manipulate them within calculations.

Answer:

water=14.1 kg

air=0.1348kg

Explanation:

Through laboratory tests, thermodynamic tables were developed, these allow to know all the thermodynamic properties of a substance (entropy, enthalpy, pressure, specific volume, internal energy etc ..)

through prior knowledge of two other properties such as pressure and temperature.

To solve this exercise we must find the specific volume of water and air in the two states and then subtract them and multiply them by the volume of the tank to find the change in mass, the following equation is inferred

Δm=V(ρ2-ρ1)

Where V= tank volume=500L=0.5m^3

ρ2= density of fluid in state 2

ρ1=density of fluid in state 1

Δm=change of mass

for water

ρ1=971.8kg/m^3(80C)

ρ2=1000kg/m^3(5C)

Δm=0.5(1000-971.8)

Δm=14.1 kg

for air

ρ1=0.9994kg/m^3(80C)

ρ2=1.269kg/m^3(5C)

Δm=0.5(1.269-0.9994)

Δm=0.1348kg

Answer:

Explanation:

Solar energy is one of the Renewable sources of energy and it is sufficient to meet the entire needs of the world.

But it is not used extensively because of the inconsistency. Inconsistency means that sun rays are not consistent throughout the year. If the weather is not good or in winters earth does not receive sun rays continuously.

And another reason to not to set up solar energy is that it is very expensive not everyone can afford it.  

The two basic network administration models are centralized and decentralized, each with distinct advantages and challenges that affect network performance, security, and scalability.

The two basic network administration models are centralized and decentralized. In a centralized model, network control and decision-making are located at a single point, typically within a dedicated device or group of servers. Conversely, a decentralized model distributes control across multiple nodes, allowing for individual nodes to operate independently while still being part of the overall network.

Understanding these models is crucial for designing efficient networks that cater to specific organizational needs and for implementing dynamics on network models, such as discrete state/time models or continuous state/time models. Each model presents different advantages and challenges that can influence network performance, security, and scalability.

The modulus of elasticity for the aluminum bar is calculated using the relationship between stress and strain, given by Young's modulus formula. The given values are substituted in the formula to find that the modulus of elasticity for the aluminum is approximately 60 GPa.

Calculating the Modulus of Elasticity for Aluminum

To calculate the modulus of elasticity (also known as Young's modulus) for the aluminum bar, we can use the relationship described by Hooke's Law for elastic deformation, where stress is directly proportional to strain. The formula to find Young's modulus (Y) is:

Y = (F \/ A) \/ (\u0394L \/ L0)

Here, F is the force applied, A is the cross-sectional area, \u0394L is the change in length, and L0 is the original length of the bar.

Using the given values:

The calculation is as follows:

Y = (66,700 N / 272.25 x 10-6 m2) / (0.43 x 10-3 m / 0.125 m)

When the calculations are done, we find that the modulus of elasticity for the aluminum bar is approximately 60 GPa (Gigapascals), which is within the typical range for aluminum.

Calculate the modulus of elasticity of aluminum given specific values for force, length, cross-sectional area, and elongation during tension.

Young's modulus is a measure of a material's stiffness and is calculated using the formula: Y = (F * Lo) / (A * AL). Substituting the given values, we can find the modulus of elasticity of aluminum to be approximately 68 GPa.

Answer:

The pressure inside the tire is [tex]0.304\frac{N}{mm^{2}}[/tex]

Explanation:

The pressure gauge indicates the difference between the atmospheric pressure and the pressure inside the tire, so we have the following equation:

Pressure inside the tire = Gauge pressure + Atmospheric pressure

Where the gauge pressure is given in the problem and is 29.35psi and the atmospheric pressure is 14.7psi.

Replacing the values, we have:

Pressure inside the tire = 29.35psi + 14.7psi

Pressure inside the tire =  44.05psi

Now we have to convert from psi to [tex]\frac{N}{mm^{2}}[/tex], so:

44.05psi = [tex]44.05\frac{lbf}{in^{2}}[/tex]

[tex]44.05\frac{lbf}{in^{2}}*(\frac{1in}{25.4mm})^{2}*\frac{4.4482N}{lbf}=0.304\frac{N}{mm^{2}}[/tex]

Answer:

Chord ratio:

  It is the ratio of thickness to the chord.It is also knows as thickness ratio.

Chord ratio measure the performance of wing when it is operating at the transonic speed.

When the speed cross the speed of sound wave then that wave creates the shock wave and these shock leads to produce drag force on the aerofoil profile.When Mach number is one then it means that if Mach increase then it will leads increase then drag force.

Answer:

The volume up to cylindrical portion is approx  32355 liters.

Explanation:

The tank is shown in the attached figure below

The volume of the whole tank is is sum of the following volumes

1) Hemisphere top

Volume of hemispherical top of radius 'r' is

[tex]V_{hem}=\frac{2}{3}\pi r^3[/tex]

2) Cylindrical Middle section

Volume of cylindrical middle portion of radius 'r' and height 'h'

[tex]V_{cyl}=\pi r^2\cdot h[/tex]

3) Conical bottom

Volume of conical bottom of radius'r' and angle [tex]\theta [/tex] is

[tex]V_{cone}=\frac{1}{3}\pi r^3\times \frac{1}{tan(\frac{\theta }{2})}[/tex]

Applying the given values we obtain the volume of the container up to cylinder is

[tex]V=\pi 1.5^2\times 4.0+\frac{1}{3}\times \frac{\pi 1.5^{3}}{tan30}=32.355m^{3}[/tex]

Hence the capacity in liters is [tex]V=32.355\times 1000=32355Liters[/tex]

Answer:

shunt resistor is 432µΩ

correct option is  432µΩ

Explanation:

given data

resistance R = 24.0 Ω

full scale deflection current Ig = 180 μA

galvanometer current I = 10.0 A

to find out

what shunt resistor is required

solution

we will apply here full scale deflection current  formula that is

Ig = I × [tex]\frac{r}{r + R}[/tex]    ...............1

here r is shunt current and R is resistance and I is galvanometer

put here all value

180 × [tex]10^{-6}[/tex] = 10 × [tex]\frac{r}{r + 24}[/tex]

r = 18 ×  [tex]10^{-6}[/tex]  × 24

r = 432 ×  [tex]10^{-6}[/tex] Ω

so shunt resistor is 432µΩ

correct option is  432µΩ

Shunt resistor required for 10.0 A ammeter: approximately 432 μΩ.

To construct an ammeter using a galvanometer, a shunt resistor is connected in parallel to the galvanometer. The shunt resistor diverts most of the current, allowing only a fraction of the current to pass through the galvanometer, thus enabling it to measure higher currents.

The relationship between the current passing through the galvanometer and the shunt resistor can be expressed using the formula:

[tex]\[I_{\text{total}} = I_{\text{g}} + I_{\text{s}}\][/tex]

Where:

[tex]- \(I_{\text{total}}\)[/tex] is the total current (10.0 A)

[tex]- \(I_{\text{g}}\)[/tex] is the current passing through the galvanometer (180 μA)

[tex]- \(I_{\text{s}}\)[/tex]  is the current passing through the shunt resistor

Given that the galvanometer resistance [tex]\(R_{\text{g}} = 24.0 Ω\)[/tex]  and full-scale deflection current \[tex](I_{\text{g}} = 180 μA\),[/tex] we can calculate the shunt resistance required using Ohm's Law:

[tex]\[I_{\text{g}} = \frac{V_{\text{g}}}{R_{\text{g}}}\][/tex]

Where:

- [tex]\(V_{\text{g}}\)[/tex] is the voltage across the galvanometer

Since the galvanometer is designed to deflect full-scale at 180 μA, the voltage across it is:

[tex]\[V_{\text{g}} = I_{\text{g}} \times R_{\text{g}}\]\[V_{\text{g}} = (180 \times 10^{-6}) \times 24\]\[V_{\text{g}} = 0.00432 \, \text{V}\][/tex]

The current passing through the shunt resistor can be calculated using:

[tex]\[I_{\text{s}} = \frac{V_{\text{total}}}{R_{\text{s}}}\][/tex]

Since the total current is 10.0 A and the voltage across the shunt resistor is the same as the voltage across the galvanometer (as they are in parallel), we have:

[tex]\[I_{\text{s}} = \frac{10.0}{R_{\text{s}}}\][/tex]

Now, the total current equals the sum of the currents through the galvanometer and shunt resistor:

[tex]\[10.0 = 180 \times 10^{-6} + \frac{0.00432}{R_{\text{s}}}\][/tex]

Solving for [tex]\(R_{\text{s}}\):[/tex]

[tex]\[R_{\text{s}} = \frac{0.00432}{10.0 - 180 \times 10^{-6}}\]\[R_{\text{s}} ≈ \frac{0.00432}{10.0}\]\[R_{\text{s}} ≈ 432 \, \text{μΩ}\][/tex]

So, the required shunt resistor is approximately 432 μΩ. Therefore, the closest answer is 432 μΩ.

Answer:

a) 152000 slugs

b) 2220000 kg or 2220 metric tons

Explanation:

A body with a weight of 4.9*10^6 lbf has a mass of

4.9*10^6 lbm * 1 lbf/lbm = 4.9*10^6 lbm

This mass value can then be converted to other mass values.

1 slug is 32.17 lbm

Therefore:

4.9*10^6 lbm * 1 slug / (32.17 lbm) = 152000 slugs

1 lb is 0.453 kg

Therefore:

4.9*10^6 lbm / (1/0.453) * kg/lbm = 2220000 kg